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<article article-type="research-article" dtd-version="1.1" specific-use="sps-1.9" xml:lang="en" xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">
	<front>
		<journal-meta>
			<journal-id journal-id-type="publisher-id">dyna</journal-id>
			<journal-title-group>
				<journal-title>DYNA</journal-title>
				<abbrev-journal-title abbrev-type="publisher">Dyna rev.fac.nac.minas</abbrev-journal-title>
			</journal-title-group>
			<issn pub-type="ppub">0012-7353</issn>
			<issn pub-type="epub">2346-2183</issn>
			<publisher>
				<publisher-name>Universidad Nacional de Colombia</publisher-name>
			</publisher>
		</journal-meta>
		<article-meta>
			<article-id pub-id-type="doi">10.15446/dyna.v91n231.110842</article-id>
			<article-categories>
				<subj-group subj-group-type="heading">
					<subject>Articles</subject>
				</subj-group>
			</article-categories>
			<title-group>
				<article-title>Effects of saline and water stress on sweet sorghum</article-title>
				<trans-title-group xml:lang="es">
					<trans-title>Efectos del estrés salino e hídrico en el sorgo dulce</trans-title>
				</trans-title-group>
			</title-group>
			<contrib-group>
				<contrib contrib-type="author">
					<contrib-id contrib-id-type="orcid">0000-0001-5846-3399</contrib-id>
					<name>
						<surname>Vieira de Sousa</surname>
						<given-names>Leonardo</given-names>
					</name>
					<xref ref-type="aff" rid="aff1"><sup>a</sup></xref>
				</contrib>
				<contrib contrib-type="author">
					<contrib-id contrib-id-type="orcid">0000-0001-7239-0990</contrib-id>
					<name>
						<surname>Silva</surname>
						<given-names>Rodrigo Rafael da</given-names>
					</name>
					<xref ref-type="aff" rid="aff1"><sup>a</sup></xref>
				</contrib>
				<contrib contrib-type="author">
					<contrib-id contrib-id-type="orcid">0000-0003-3316-6093</contrib-id>
					<name>
						<surname>Pires de Souza</surname>
						<given-names>Maria Vanessa</given-names>
					</name>
					<xref ref-type="aff" rid="aff2"><sup>b</sup></xref>
				</contrib>
				<contrib contrib-type="author">
					<contrib-id contrib-id-type="orcid">0000-0003-0794-8729</contrib-id>
					<name>
						<surname>Queiroz</surname>
						<given-names>Gabriela Carvalho Maia de</given-names>
					</name>
					<xref ref-type="aff" rid="aff1"><sup>a</sup></xref>
				</contrib>
				<contrib contrib-type="author">
					<contrib-id contrib-id-type="orcid">0000-0002-2869-1478</contrib-id>
					<name>
						<surname>Batista Clemente</surname>
						<given-names>Maria Isabela</given-names>
					</name>
					<xref ref-type="aff" rid="aff1"><sup>a</sup></xref>
				</contrib>
				<contrib contrib-type="author">
					<contrib-id contrib-id-type="orcid">0000-0003-1202-8783</contrib-id>
					<name>
						<surname>Medeiros</surname>
						<given-names>José Francismar de</given-names>
					</name>
					<xref ref-type="aff" rid="aff1"><sup>a</sup></xref>
				</contrib>
			</contrib-group>
			<aff id="aff1">
				<label>a</label>
				<institution content-type="original"> Federal Rural University of the Semi-Arid, Mossoró, Rio Grande do Norte, Brazil. leoigt@hotmail.com, rodrigosilva_rafael@hotmail.com, gabriela.queiroz@alunos.ufersa.edu.br, maria.clemente@alunos.ufersa.edu.br, jfmedeir@ufersa.edu.br</institution>
				<institution content-type="normalized">Universidade Federal Rural do Semi-Árido</institution>
				<institution content-type="orgname">Federal Rural University of the Semi-Arid</institution>
				<addr-line>
					<city>Rio Grande do Norte</city>
				</addr-line>
				<country country="BR">Brazil</country>
				<email>gabriela.queiroz@alunos.ufersa.edu.br</email>
				<email>maria.clemente@alunos.ufersa.edu.br</email>
				<email>jfmedeir@ufersa.edu.br</email>
			</aff>
			<aff id="aff2">
				<label>b</label>
				<institution content-type="original"> Federal University of Ceará, Fortaleza, Ceará, Brazil. vanessa.pires1993@gmail.com</institution>
				<institution content-type="normalized">Universidade Federal do Ceará</institution>
				<institution content-type="orgname">Federal University of Ceará</institution>
				<addr-line>
					<city>Fortaleza</city>
					<state>Ceará</state>
				</addr-line>
				<country country="BR">Brazil</country>
			</aff>
			<pub-date date-type="pub" publication-format="electronic">
				<day>24</day>
				<month>01</month>
				<year>2024</year>
			</pub-date>
			<pub-date date-type="collection" publication-format="electronic">
				<season>Jan-Mar</season>
				<year>2024</year>
			</pub-date>
			<volume>91</volume>
			<issue>231</issue>
			<fpage>69</fpage>
			<lpage>75</lpage>
			<history>
				<date date-type="received">
					<day>29</day>
					<month>08</month>
					<year>2023</year>
				</date>
				<date date-type="rev-recd">
					<day>16</day>
					<month>01</month>
					<year>2024</year>
				</date>
				<date date-type="accepted">
					<day>24</day>
					<month>01</month>
					<year>2024</year>
				</date>
			</history>
			<permissions>
				<license license-type="open-access" xlink:href="https://creativecommons.org/licenses/by-nc-nd/4.0/" xml:lang="en">
					<license-p>This is an open-access article distributed under the terms of the Creative Commons Attribution License</license-p>
				</license>
			</permissions>
			<abstract>
				<title>Abstract</title>
				<p>Sweet sorghum (<italic>Sorghum bicolor</italic> [L.] Moench) is a plant that can be an alternative for the production of bioethanol in semi-arid regions. The objective of this work was to evaluate sweet sorghum 'BRS 506' under salt and water stress. The experimental design was in randomized blocks, in a factorial scheme (4x4), with the first factor referring to the electrical conductivities of the irrigation water (1.5; 3.0; 4.5; and 6.0 dS m<sup>-1</sup>) and the second refers to irrigation depths (53, 67, 85 and 95% of crop evapotranspiration). Gas exchange, leaf water status, leaf sugars and plant growth were evaluated. Salt and water stress cause negative effects on the growth of sweet sorghum 'BRS 506'. Salt stress causes disturbances in gas exchange and sugar levels. Sweet sorghum 'BRS 506' is tolerant to combined salt and water stress.</p>
			</abstract>
			<trans-abstract xml:lang="es">
				<title>Resumen</title>
				<p>El sorgo dulce (<italic>Sorghum bicolor</italic> [L.] Moench) es una planta que puede ser una alternativa para la producción de bioetanol en regiones semiáridas. El objetivo de este trabajo fue evaluar el sorgo dulce 'BRS 506' bajo estrés hídrico y salino. El diseño experimental fue en bloques al azar, en esquema factorial (4x4), siendo el primer factor referido a las conductividades eléctricas del agua de riego (1.5; 3.0; 4.5; y 6.0 dS m<sup>-1</sup>) y el segundo a las aspas de riego (53, 67, 85 y 95% de la evapotranspiración del cultivo). Se evaluaron el intercambio de gases, el estado hídrico de las hojas, los azúcares de las hojas y el crecimiento de las plantas. El estrés salino e hídrico provoca efectos negativos en el crecimiento del sorgo dulce 'BRS 506'. El estrés salino provoca alteraciones en el intercambio de gases y en los niveles de azúcar. El sorgo dulce 'BRS 506' es tolerante al estrés salino y hídrico conjunto.</p>
			</trans-abstract>
			<kwd-group xml:lang="en">
				<title>Keywords:</title>
				<kwd><italic>Sorghum bicolor</italic></kwd>
				<kwd>water deficit</kwd>
				<kwd>salinity</kwd>
				<kwd>gas exchange</kwd>
			</kwd-group>
			<kwd-group xml:lang="es">
				<title>Palabras clave:</title>
				<kwd><italic>Sorghum bicolor</italic></kwd>
				<kwd>déficit de agua</kwd>
				<kwd>salinidad</kwd>
				<kwd>intercambio de gases</kwd>
			</kwd-group>
			<counts>
				<fig-count count="6"/>
				<table-count count="4"/>
				<equation-count count="2"/>
				<ref-count count="40"/>
				<page-count count="7"/>
			</counts>
		</article-meta>
	</front>
	<body>
		<sec sec-type="intro">
			<title>1. Introduction</title>
			<p>Sweet sorghum (<italic>Sorghum bicolor</italic> [L.] Moench) is a C4 plant widely cultivated in the world, having high concentrations of soluble sugars (sucrose, glucose and fructose) contained in its stems [<xref ref-type="bibr" rid="B1">1</xref>]. Most of the worlds ethanol production is extracted from corn and sugarcane [<xref ref-type="bibr" rid="B2">2</xref>]. However, sweet sorghum presents itself as an alternative for the production of bioethanol of plant origin from its sugary stem [<xref ref-type="bibr" rid="B3">3</xref>,<xref ref-type="bibr" rid="B4">4</xref>]. Since it has greater drought tolerance and requires less water compared to the other two crops [<xref ref-type="bibr" rid="B5">5</xref>].</p>
			<p>Sorghum is generally cultivated in arid and semi-arid regions, where there are often limiting factors for the development of agriculture, such as irregular rainfall and water with inferior qualities [<xref ref-type="bibr" rid="B6">6</xref>,<xref ref-type="bibr" rid="B7">7</xref>]. However, it is a plant adapted to these regions and produces even under adverse conditions of low water availability and brackish water [<xref ref-type="bibr" rid="B8">8</xref>].</p>
			<p>Salt and water stress cause a variety of problems in sorghum plants, which can unbalance cellular homeostasis, leading to morphological, physiological and molecular changes [<xref ref-type="bibr" rid="B9">9</xref>,<xref ref-type="bibr" rid="B10">10</xref>]. These changes have a negative impact on plant growth and development, with a decrease in production [<xref ref-type="bibr" rid="B11">11</xref>,<xref ref-type="bibr" rid="B12">12</xref>].</p>
			<p>Some studies were carried out to evaluate the physiology and growth of sorghum under saline stress conditions. The authors reported that the variables of: membrane damage [<xref ref-type="bibr" rid="B13">13</xref>], relative water content [<xref ref-type="bibr" rid="B14">14</xref>-<xref ref-type="bibr" rid="B16">16</xref>], gas exchange [<xref ref-type="bibr" rid="B11">11</xref>,<xref ref-type="bibr" rid="B17">17</xref>] and growth [<xref ref-type="bibr" rid="B15">15</xref>] are negatively affected.</p>
			<p>On the other hand, other studies addressed the effects of water stress in sorghum, where the results showed that membrane damage, relative water content, sugars [<xref ref-type="bibr" rid="B12">12</xref>], gas exchange and growth [<xref ref-type="bibr" rid="B18">18</xref>] suffered reductions as water stress was high. However, plants develop some protective mechanisms to reduce the harmful effects of stress [<xref ref-type="bibr" rid="B10">10</xref>,<xref ref-type="bibr" rid="B13">13</xref>], such as the accumulation of sugars in response to salt and water stress [<xref ref-type="bibr" rid="B11">11</xref>,<xref ref-type="bibr" rid="B19">19</xref>].</p>
			<p>Increasingly, water resources, whether by quality or quantity, are becoming limited for agriculture, and it is essential to understand plant responses to saline and water stress, in order to develop alternatives for the production of agricultural crops in adverse conditions [<xref ref-type="bibr" rid="B20">20</xref>,<xref ref-type="bibr" rid="B21">21</xref>]. Increasing tolerance to abiotic stresses (saline and water) in sorghum is of great importance, and it is essential to obtain information on how stresses influence physiological and growth processes in sorghum plants [<xref ref-type="bibr" rid="B10">10</xref>,<xref ref-type="bibr" rid="B19">19</xref>].</p>
			<p>In general, the studies have focused on the development of research on salt and water stress in isolation and not jointly. Thus, the objective of this work was to evaluate the variables of leaf water status, sugars, gas exchange and growth in sweet sorghum (<italic>Sorghum bicolor</italic> [L.] Moench) 'BRS 506' under salt and water stress.</p>
		</sec>
		<sec sec-type="materials|methods">
			<title>2. Material and methods</title>
			<sec>
				<title>2.1. Experimental area</title>
				<p>The experiment was carried out between September and December 2020, in the experimental area of the Cumaru farm (5°33'30'' S, 37°11'56'' W), located in the rural area in Upanema, Rio Grande do Norte, Brazil (<xref ref-type="fig" rid="f1">Fig. 1</xref>).</p>
				<p>
					<fig id="f1">
						<label>Figure 1</label>
						<caption>
							<title>Location of the experimental area at the Cumaru farm, Upanema, Rio Grande do Norte, Brazil.</title>
						</caption>
						<graphic xlink:href="2346-2183-dyna-91-231-69-gf1.gif"/>
						<attrib>Source: The authors.</attrib>
					</fig>
				</p>
				<p>
					<fig id="f2">
						<label>Figure 2</label>
						<caption>
							<title>Climatic conditions of temperature and relative humidity during the experimental test period.</title>
						</caption>
						<graphic xlink:href="2346-2183-dyna-91-231-69-gf2.gif"/>
						<attrib>Source: The authors.</attrib>
					</fig>
				</p>
				<p>The soil of the experimental area is classified as Cambisol [<xref ref-type="bibr" rid="B23">23</xref>], before the installation of the experiment, composite soil samples were taken, where physical and chemical soil analyzes were carried out. For the 0-20 cm layer, the following physical characteristics were presented: sand = 71.77%; silt = 6.54%; clay = 21.69%. While for the 20-40 cm layer, the results were: sand = 61.67%; silt = 4.95%; clay = 33.38%. For the 0-20 cm layer, the following results were obtained for the chemical characteristics: pH = 7.56; ECs = 0.57 dS m<sup>-1</sup>; organic matter = 1.87%; P = 0.05 cmol<sub>c</sub> dm<sup>-3</sup>; K<sup>+</sup> = 0.20 cmol<sub>c</sub> dm<sup>-3</sup>; Na<sup>+</sup> = 1.11 cmol<sub>c</sub> dm<sup>-3</sup>; Ca<sup>2+</sup> = 7.00 cmol<sub>c</sub> dm<sup>-3</sup>; Mg<sup>2+</sup> = 1.91 cmol<sub>c</sub> dm<sup>-3</sup>; and SB = 10.22 cmol<sub>c</sub> dm<sup>-3</sup>. For layer 20-40 cm the chemical characteristics obtained were: pH = 7.28; ECs = 0.36 dS m<sup>-1</sup>; organic matter = 1.40%; P = 0.03 cmol<sub>c</sub> dm<sup>-3</sup>; K<sup>+</sup> = 0.18 cmol<sub>c</sub> dm<sup>-3</sup>; Na<sup>+</sup> = 0.95 cmol<sub>c</sub> dm<sup>-3</sup>; Ca<sup>2+</sup> = 5.96 cmol<sub>c</sub> dm<sup>-3</sup>; Mg<sup>2+</sup> = 1.77 cmol<sub>c</sub> dm<sup>-3</sup>; and SB = 8.86 cmol<sub>c</sub> dm<sup>-3</sup>.</p>
			</sec>
			<sec>
				<title>2.2. Plant material and soil preparation</title>
				<p>The sorghum cultivar [<italic>Sorghum bicolor</italic> (L.) Moench] used in the experiment was the saccharin cultivar 'BRS 506'. This cultivar can be used to complement the production of ethanol, having as characteristics succulent stems and a high concentration of sugars, with emphasis on its short cycle (90 to 130 days), with wide edaphoclimatic adaptation and high efficiency in water use [<xref ref-type="bibr" rid="B3">3</xref>,<xref ref-type="bibr" rid="B24">24</xref>].</p>
				<p>Before the installation of the experiment, the soil was prepared, consisting of plowing and harrowing and a foundation fertilizer with 104 kg ha<sup>-1</sup> of P<sub>2</sub>O<sub>5</sub> and 22 kg ha<sup>-1</sup> of N, using MAP as a source. In addition, cover fertilization was carried out via fertirrigation, applying 30 kg ha<sup>-1</sup> of K<sub>2</sub>O, using potassium chloride as source and 40 kg ha<sup>-1</sup> of N, using urea as source.</p>
			</sec>
			<sec>
				<title>2.3. Salt stress management</title>
				<p>The application of saline stresses started 21 days after sowing. The water used in irrigation management was prepared as follows: the lowest concentration (1.5 dS m<sup>-1</sup>) came from a tubular well that supplies the Cumaru farm, originating from the calciferous sandstone aquifer. The waters with the other electrical conductivities (3.0; 4.5 and 6.0 dS m<sup>-1</sup>) were prepared from the addition of NaCl, CaCl.2H<sub>2</sub>O and MgSO<sub>4</sub>.7H<sub>2</sub>O salts [<xref ref-type="bibr" rid="B25">25</xref>]. The water with the highest concentration was based on the salinity tolerance of the sorghum crop for a potential yield of 50% [<xref ref-type="bibr" rid="B26">26</xref>], while the other waters had intermediate electrical conductivities (<xref ref-type="table" rid="t1">Table 1</xref>).</p>
				<p>
					<table-wrap id="t1">
						<label>Table 1</label>
						<caption>
							<title>Chemical characteristics of the water used in the irrigation of the experiment.</title>
						</caption>
						<table>
							<colgroup>
								<col/>
								<col/>
								<col/>
								<col/>
								<col/>
								<col/>
								<col/>
								<col/>
							</colgroup>
							<thead>
								<tr>
									<th align="center">EC</th>
									<th align="center">Na<sup>+</sup></th>
									<th align="center">Ca<sup>2+</sup></th>
									<th align="center">Mg<sup>2+</sup></th>
									<th align="center">K<sup>+</sup></th>
									<th align="center">Cl<sup>-</sup></th>
									<th align="center">SO<sub>4</sub>
 <sup>2-</sup></th>
									<th align="center">HCO<sub>3</sub>
 <sup>-</sup></th>
								</tr>
								<tr>
									<th align="center">dS m<sup>-1</sup></th>
									<th align="center" colspan="7">------------------------------- mmol<sub>c</sub> ------------------------------- </th>
								</tr>
							</thead>
							<tbody>
								<tr>
									<td align="center">1,5</td>
									<td align="center">5,0</td>
									<td align="center">8,0</td>
									<td align="center">2,0</td>
									<td align="center">0,12</td>
									<td align="center">8,1</td>
									<td align="center">0,3</td>
									<td align="center">7,0</td>
								</tr>
								<tr>
									<td align="center">3,0</td>
									<td align="center">19,0</td>
									<td align="center">8,0</td>
									<td align="center">3,0</td>
									<td align="center">0,12</td>
									<td align="center">22,1</td>
									<td align="center">1,3</td>
									<td align="center">6,9</td>
								</tr>
								<tr>
									<td align="center">4,5</td>
									<td align="center">28,5</td>
									<td align="center">12,0</td>
									<td align="center">4,5</td>
									<td align="center">0,12</td>
									<td align="center">35,6</td>
									<td align="center">2,8</td>
									<td align="center">6,9</td>
								</tr>
								<tr>
									<td align="center">6,0</td>
									<td align="center">38,0</td>
									<td align="center">16,0</td>
									<td align="center">6,0</td>
									<td align="center">0,12</td>
									<td align="center">49,1</td>
									<td align="center">4,3</td>
									<td align="center">6,8</td>
								</tr>
							</tbody>
						</table>
						<table-wrap-foot>
							<fn id="TFN1">
								<p>EC: electrical conductivity of irrigation water; Na<sup>+</sup>: sodium; Ca<sup>2+</sup>: calcium; Mg<sup>2+</sup>: magnesium; K<sup>+</sup>: potassium; Cl<sup>-</sup>: chlorine; SO<sub>4</sub>
 <sup>2-</sup>: sulfates; HCO<sub>3</sub>
 <sup>-</sup>: bicarbonates.</p>
							</fn>
							<fn id="TFN2">
								<p>Source: The authors.</p>
							</fn>
						</table-wrap-foot>
					</table-wrap>
				</p>
			</sec>
			<sec>
				<title>2.4 Water stress management</title>
				<p>The application of the different irrigation depths started at 7 days after sowing (DAS). The irrigation depths were applied based on the maximum evapotranspiration of the sorghum crop (ETc), adjusting the conditions of the experiment and the irrigation system (53, 67, 85 and 95% of the total estimated ETc for the crop cycle). ETc was estimated daily from the estimate of daily reference evapotranspiration (ETo), by the Penman-Monteith method according to [<xref ref-type="bibr" rid="B27">27</xref>]. ETo was estimated daily from data collected at a meteorological station installed in the experiment area. Whereas, the daily crop coefficient (Kc) was determined by the dual Kc method, assuming the length of phenological phases I, II, III and IV to be 28, 32, 20 and 10 days, respectively, and the crop coefficients baseline for phase III and end of the cycle, 1.00 and 0.70.</p>
			</sec>
			<sec>
				<title>2.5 Experimental design</title>
				<p>The experimental design was in randomized blocks (DBC), in a factorial scheme (4x4), with the first factor referring to the electrical conductivities of the irrigation water (ECw - 1.5; 3.0; 4.5; and 6.0 dS m<sup>-1</sup>), and the second factor refers to the irrigation depths (ETc - 53, 67, 85 and 95%). Using two blocks with two replications within the blocks, totaling 16 treatments and 64 experimental plots.</p>
			</sec>
			<sec>
				<title>2.6 Variables analyzed</title>
				<sec>
					<title>2.6.1. Gas exchange</title>
					<p>Leaf gas exchange was measured by a portable infrared gas analyzer (IRGA, GFS-300, WALZ, Germany). Measurements were made between 08:00 and 10:00 am, in two plants per plot on the flag leaf. The IRGA settings were defined as follows: temperature of 25 ºC; relative humidity of 60%; flow rate of 750 µmol/min; light intensity of 1200 μmol m<sup>-2</sup> s<sup>-1</sup>; impeller speed of 7; CO<sub>2</sub> concentration of 400 ppm and reading area of 8 cm<sup>2</sup>.</p>
					<p>The gas exchange variables were evaluated at 62 DAS. Leaf temperature (LT - ºC), vapor pressure deficit (VPD - kPa), stomatal conductance (<italic>gs</italic> - mmol H<sub>2</sub>O m<sup>-2</sup> s<sup>-1</sup>), transpiration rate (<italic>E</italic> - mmol H<sub>2</sub>O m<sup>-2</sup> s<sup>-1</sup>), CO<sub>2</sub> assimilation rate (<italic>A</italic> - μmol CO<sub>2</sub> m<sup>-2</sup> s<sup>-1</sup>), water use efficiency (WUE - <italic>A</italic>/<italic>E</italic>) and intrinsic water-use efficiency (WUEi - <italic>A</italic>/<italic>gs</italic>) were measured.</p>
				</sec>
				<sec>
					<title>2.6.2. Leaf water status</title>
					<p>At 59 days after sowing (DAS), the end of phenological phase II, beginning of flowering, the leaf water status variables were evaluated: membrane damage (MD) and relative water content (RWC). MD was determined by the electrolyte extravasation method, according to the methodology proposed by [<xref ref-type="bibr" rid="B28">28</xref>].</p>
					<p>Where:</p>
					<p>
						<disp-formula id="e1">
							<graphic xlink:href="2346-2183-dyna-91-231-69-e1.jpg"/>
						</disp-formula>
					</p>
					<p>MD: membrane damage, %;</p>
					<p>C1: initial electrical conductivity, dS m<sup>-1</sup>;</p>
					<p>C2: final electrical conductivity, dS m<sup>-1</sup>.</p>
					<p>While, RWC was evaluated through leaf discs, by the equation proposed by [<xref ref-type="bibr" rid="B29">29</xref>]. Where:</p>
					<p>
						<disp-formula id="e2">
							<graphic xlink:href="2346-2183-dyna-91-231-69-e2.jpg"/>
						</disp-formula>
					</p>
					<p>RWC: relative water content, %;</p>
					<p>FM: fresh mass, g;</p>
					<p>DS: dry mass, g;</p>
					<p>TM: turgid mass, g.</p>
				</sec>
				<sec>
					<title>2.6.3. Sugars</title>
					<p>From leaf samples collected at 69 DAS, measurements of total sugars, reducing sugars, non-reducing sugars and starch were made. The samples were placed in paper bags and placed to dry in an oven with forced air circulation at 65 ºC for 72 hours, and subsequently ground in a Willye-type mill.</p>
					<p>Total sugars (TS): were determined by the Antrona method, according to the methodology proposed by [<xref ref-type="bibr" rid="B30">30</xref>].</p>
					<p>Reducing sugars (RS): determined by the Somogyi-Nelson method [<xref ref-type="bibr" rid="B31">31</xref>].</p>
					<p>Non-reducing sugars (NRS): obtained through the equation proposed by [<xref ref-type="bibr" rid="B32">32</xref>]. On what:</p>
					<p>
						<fig id="ch">
							<graphic xlink:href="2346-2183-dyna-91-231-69-gch.jpg"/>
						</fig>
					</p>
					<p>Where:</p>
					<p>NRS: non-reducing sugars, %;</p>
					<p>TS: total sugars, %;</p>
					<p>RS: reducing sugars, %.</p>
					<p>Starch (ST): determined by the Somoghy-Nelson method [<xref ref-type="bibr" rid="B31">31</xref>], with values expressed in mg/g.</p>
				</sec>
				<sec>
					<title>2.6.4. Plant growth</title>
					<p>At 73 DAS, the following variables were evaluated: plant height (cm): measuring from the base of the plant to the apex of the leaf meristem; and stem height (cm): measuring the entire length of the stem up to the last leaf insertion.</p>
					<p>The leaf, stem, root and total dry mass (g) were evaluated at 69 DAS, where the parts of the plants were separated and then placed in paper bags and placed to dry in an oven with circulation of forced air temperature for 72 hours at 65 °C.</p>
				</sec>
			</sec>
			<sec>
				<title>2.7. Statistical analysis</title>
				<p>Data were submitted to analysis of variance by F test at a 5% significance level, in case of significant effects, regression analysis was performed using the R<sup>®</sup> software version 4.1.3 [<xref ref-type="bibr" rid="B33">33</xref>], and the graphics produced with SigmaPlot<sup>®</sup> software version 12.3 [<xref ref-type="bibr" rid="B34">34</xref>].</p>
			</sec>
		</sec>
		<sec sec-type="results">
			<title>3. Results</title>
			<p>According to the variance analysis (<xref ref-type="table" rid="t2">Table 2</xref>), for the leaf gas exchange variables, there were isolated effects of the data for the different electrical conductivities of the irrigation water (ECw) in the variables leaf temperature, water use efficiency and intrinsic water-use efficiency.</p>
			<p>For leaf temperature (<xref ref-type="fig" rid="f3">Fig. 3</xref>A), the highest values were observed in the lowest ECa of 1.5 dS m<sup>-1</sup>, while the highest value was obtained in the treatment containing ECa of 3.0 dS m<sup>-1</sup>, however there was no trend defined, although there was a statistical difference between the means.</p>
			<p>Similar effects occurred for WUE and WUEi gas exchange variables, subjected to different ECws, with the highest values (23.96 and 0.41 μmol CO<sub>2</sub> m<sup>-2</sup> s<sup>-1</sup>/mmol H<sub>2</sub>O m<sup>-2</sup> s<sup>-1</sup>) being obtained in ECw of 4.5 dS m<sup>-1</sup>, while the lowest values (20.16 and 0.34 μmol CO<sub>2</sub> m<sup>-2</sup> s<sup>-1</sup>/mmol H<sub>2</sub>O m<sup>-2</sup> s<sup>-1</sup>) were observed at an intermediate ECw of 3.0 dS m<sup>-1</sup>, for WUE and WUEi, respectively. However, the values obtained did not fit the linear or quadratic model, despite the significant effects obtained (<xref ref-type="fig" rid="f3">Figs. 3</xref>B and <xref ref-type="fig" rid="f3">3</xref>C).</p>
			<p>
				<fig id="f3">
					<label>Figure 3</label>
					<caption>
						<title>Leaf temperature (A), water use efficiency (B) and intrinsic water-use efficiency (C) as a function of electrical conductivities of irrigation water (ECw) in sweet sorghum (<italic>Sorghum bicolor</italic> L.) 'BRS 506'.</title>
					</caption>
					<graphic xlink:href="2346-2183-dyna-91-231-69-gf3.jpg"/>
					<attrib>Source: The authors.</attrib>
				</fig>
			</p>
			<p>According to the analysis of variance (<xref ref-type="table" rid="t3">Table 3</xref>), there was a significant isolated effect only for the variable of total sugars when subjected to different electrical conductivities of irrigation water (ECw).</p>
			<p>
				<table-wrap id="t2">
					<label>Table 2</label>
					<caption>
						<title>Analysis of variance summary (ANAVA) for leaf temperature (LF), vapor pressure deficit (VPD), stomatal conductance (<italic>gs</italic>), transpiration rate (<italic>E</italic>), CO<sub>2</sub> assimilation rate (<italic>A</italic>), water use efficiency (WUE) and intrinsic water-use efficiency (WUEi) as a function of electrical conductivities of irrigation water (ECw) and irrigation depths (ETc) in sweet sorghum (<italic>Sorghum bicolor</italic> L.) 'BRS 506'.</title>
					</caption>
					<table>
						<colgroup>
							<col span="9"/>
						</colgroup>
						<thead>
							<tr>
								<th align="center" colspan="9">Variables </th>
							</tr>
							<tr>
								<th align="center">SV</th>
								<th align="center">DF</th>
								<th align="center">LF</th>
								<th align="center">VPD</th>
								<th align="center"><italic>gs</italic></th>
								<th align="center"><italic>E</italic></th>
								<th align="center"><italic>A</italic></th>
								<th align="center">WUE</th>
								<th align="center">WUEi</th>
							</tr>
							<tr>
								<th align="center" colspan="9">F Statistic</th>
							</tr>
						</thead>
						<tbody>
							<tr>
								<td align="left">ECw</td>
								<td align="center">3</td>
								<td align="center">3,91<sup>*</sup></td>
								<td align="center">2,10<sup>ns</sup></td>
								<td align="center">1,90<sup>ns</sup></td>
								<td align="center">2,60<sup>ns</sup></td>
								<td align="center">1,41<sup>ns</sup></td>
								<td align="center">3,82<sup>*</sup></td>
								<td align="center">2,92<sup>*</sup></td>
							</tr>
							<tr>
								<td align="left">ETc</td>
								<td align="center">3</td>
								<td align="center">1,42<sup>ns</sup></td>
								<td align="center">0,16<sup>ns</sup></td>
								<td align="center">0,03<sup>ns</sup></td>
								<td align="center">1,35<sup>ns</sup></td>
								<td align="center">0,78<sup>ns</sup></td>
								<td align="center">0,94<sup>ns</sup></td>
								<td align="center">1,16<sup>ns</sup></td>
							</tr>
							<tr>
								<td align="left">ECwxETc</td>
								<td align="center">9</td>
								<td align="center">1,95<sup>ns</sup></td>
								<td align="center">0,61<sup>ns</sup></td>
								<td align="center">0,55<sup>ns</sup></td>
								<td align="center">1,95<sup>ns</sup></td>
								<td align="center">0,59<sup>ns</sup></td>
								<td align="center">0,98<sup>ns</sup></td>
								<td align="center">0,91<sup>ns</sup></td>
							</tr>
							<tr>
								<td align="left">CV%</td>
								<td align="center">-</td>
								<td align="center">1,64</td>
								<td align="center">18,19</td>
								<td align="center">19,45</td>
								<td align="center">4,14</td>
								<td align="center">14,08</td>
								<td align="center">25,86</td>
								<td align="center">21,53</td>
							</tr>
						</tbody>
					</table>
					<table-wrap-foot>
						<fn id="TFN3">
							<p>SV: source of variation; DF: degree of freedom; CV: coefficient of variation; ECw: electrical conductivity of irrigation water; ETc: irrigation depth; (<sup>ns</sup>) not significant; (<sup>*</sup>) significant at the 5% level; (<sup>**</sup>) significant at the 1% level; (<sup>***</sup>) significant at the 0.1% level.</p>
						</fn>
						<fn id="TFN4">
							<p>Source: The authors.</p>
						</fn>
					</table-wrap-foot>
				</table-wrap>
			</p>
			<p>
				<table-wrap id="t3">
					<label>Table 3</label>
					<caption>
						<title>Analysis of variance summary (ANAVA) for membrane damage (MD), relative water content (RWC), total sugars (TS), reducing sugars (RS), non-reducing sugars (NRS) and starch (ST) as a function of electrical conductivities of irrigation water (ECw) and irrigation depths (ETc) in sweet sorghum (<italic>Sorghum bicolor</italic> L.) 'BRS 506'.</title>
					</caption>
					<table>
						<colgroup>
							<col span="8"/>
						</colgroup>
						<thead>
							<tr>
								<th align="center" colspan="8">Variables </th>
							</tr>
							<tr>
								<th align="center">SV</th>
								<th align="center">DF</th>
								<th align="center">MD</th>
								<th align="center">RWC</th>
								<th align="center">TS</th>
								<th align="center">RS</th>
								<th align="center">NRS</th>
								<th align="center">ST</th>
							</tr>
							<tr>
								<th align="center" colspan="8">F Statistic </th>
							</tr>
						</thead>
						<tbody>
							<tr>
								<td align="left">ECw</td>
								<td align="center">3</td>
								<td align="center">1,43<sup>ns</sup></td>
								<td align="center">1,39<sup>ns</sup></td>
								<td align="center">2,96<sup>*</sup></td>
								<td align="center">2,60<sup>ns</sup></td>
								<td align="center">1,29<sup>ns</sup></td>
								<td align="center">1,20<sup>ns</sup></td>
							</tr>
							<tr>
								<td align="left">ETc</td>
								<td align="center">3</td>
								<td align="center">1,24<sup>ns</sup></td>
								<td align="center">1,12<sup>ns</sup></td>
								<td align="center">0,23<sup>ns</sup></td>
								<td align="center">0,57<sup>ns</sup></td>
								<td align="center">0,57<sup>ns</sup></td>
								<td align="center">2,76<sup>ns</sup></td>
							</tr>
							<tr>
								<td align="left">ECwxETc</td>
								<td align="center">9</td>
								<td align="center">1,38<sup>ns</sup></td>
								<td align="center">1,81<sup>ns</sup></td>
								<td align="center">0,95<sup>ns</sup></td>
								<td align="center">1,16<sup>ns</sup></td>
								<td align="center">0,73<sup>ns</sup></td>
								<td align="center">0,96<sup>ns</sup></td>
							</tr>
							<tr>
								<td align="left">CV%</td>
								<td align="center">-</td>
								<td align="center">39,35</td>
								<td align="center">7,55</td>
								<td align="center">23,79</td>
								<td align="center">25,49</td>
								<td align="center">41,13</td>
								<td align="center">13,32</td>
							</tr>
						</tbody>
					</table>
					<table-wrap-foot>
						<fn id="TFN5">
							<p>SV: source of variation; DF: degree of freedom; CV: coefficient of variation; ECw: electrical conductivity of irrigation water; ETc: irrigation depth; (<sup>ns</sup>) not significant; (<sup>*</sup>) significant at the 5% level; (<sup>**</sup>) significant at the 1% level; (<sup>***</sup>) significant at the 0.1% level.</p>
						</fn>
						<fn id="TFN6">
							<p>Source: The authors.</p>
						</fn>
					</table-wrap-foot>
				</table-wrap>
			</p>
			<p>In <xref ref-type="fig" rid="f4">Fig. 4</xref>, it is possible to observe that there was a significant effect for total sugars, with the highest value (4.75%) being obtained at the ECw of 4.5 dS m<sup>-1</sup>, on the other hand, the lowest value (3.77%) was observed at ECw of 3.0 dS m<sup>-1</sup>. Despite this, the values did not fit into a defined model, even with statistical differences between the means.</p>
			<p>
				<fig id="f4">
					<label>Figure 4</label>
					<caption>
						<title>Total sugars as a function of electrical conductivities of irrigation water (ECw) in sweet sorghum (<italic>Sorghum bicolor</italic> L.) 'BRS 506'.</title>
					</caption>
					<graphic xlink:href="2346-2183-dyna-91-231-69-gf4.jpg"/>
					<attrib>Source: The authors.</attrib>
				</fig>
			</p>
			<p>
				<table-wrap id="t4">
					<label>Table 4</label>
					<caption>
						<title>Analysis of variance summary (ANAVA) for plant height (PH), stem height (SH), leaf dry mass (LDM), stem dry mass (SDM), root dry mass (RDM) and total dry mass (TDM) as a function of electrical conductivities of irrigation water (ECw) and irrigation depths (ETc) in sweet sorghum (<italic>Sorghum bicolor</italic> L.) 'BRS 506'.</title>
					</caption>
					<table>
						<colgroup>
							<col span="8"/>
						</colgroup>
						<thead>
							<tr>
								<th align="center" colspan="8">Variables </th>
							</tr>
							<tr>
								<th align="center">SV</th>
								<th align="center">DF</th>
								<th align="center">PH</th>
								<th align="center">SH</th>
								<th align="center">LDM</th>
								<th align="center">SDM</th>
								<th align="center">RDM</th>
								<th align="center">TDM</th>
							</tr>
							<tr>
								<th align="center" colspan="8">F Statistic</th>
							</tr>
						</thead>
						<tbody>
							<tr>
								<td align="left">ECw</td>
								<td align="center">3</td>
								<td align="center">1,63<sup>ns</sup></td>
								<td align="center">0,82<sup>ns</sup></td>
								<td align="center">1,99<sup>ns</sup></td>
								<td align="center">1,07<sup>ns</sup></td>
								<td align="center">1,50<sup>ns</sup></td>
								<td align="center">2,74<sup>ns</sup></td>
							</tr>
							<tr>
								<td align="left">ETc</td>
								<td align="center">3</td>
								<td align="center">1,98<sup>ns</sup></td>
								<td align="center">2,28<sup>ns</sup></td>
								<td align="center">0,67<sup>ns</sup></td>
								<td align="center">0,53<sup>ns</sup></td>
								<td align="center">0,20<sup>ns</sup></td>
								<td align="center">1,13<sup>ns</sup></td>
							</tr>
							<tr>
								<td align="left">ECwxETc</td>
								<td align="center">9</td>
								<td align="center">2,69<sup>*</sup></td>
								<td align="center">2,12<sup>*</sup></td>
								<td align="center">0,55<sup>ns</sup></td>
								<td align="center">1,06<sup>ns</sup></td>
								<td align="center">0,89<sup>ns</sup></td>
								<td align="center">0,78<sup>ns</sup></td>
							</tr>
							<tr>
								<td align="left">CV%</td>
								<td align="center">-</td>
								<td align="center">5,08</td>
								<td align="center">7,87</td>
								<td align="center">20,56</td>
								<td align="center">20,71</td>
								<td align="center">38,96</td>
								<td align="center">21,11</td>
							</tr>
						</tbody>
					</table>
					<table-wrap-foot>
						<fn id="TFN7">
							<p>SV: source of variation; DF: degree of freedom; CV: coefficient of variation; ECw: electrical conductivity of irrigation water; ETc: irrigation depth; (<sup>ns</sup>) not significant; (<sup>*</sup>) significant at the 5% level; (<sup>**</sup>) significant at the 1% level; (<sup>***</sup>) significant at the 0.1% level.</p>
						</fn>
						<fn id="TFN8">
							<p>Source: The authors.</p>
						</fn>
					</table-wrap-foot>
				</table-wrap>
			</p>
			<p>For the growth variables, there was a significant effect for the interaction electrical conductivities of irrigation water (ECw) x irrigation depths (ETc) for plant height and stem height (<xref ref-type="table" rid="t4">Table 4</xref>).</p>
			<p>Plant height (<xref ref-type="fig" rid="f5">Fig. 5</xref>A) was affected by combined abiotic stresses (saline and water), with the highest values being obtained in the combination ECw 3.83 dS m<sup>-1</sup> and ETc 87.76% (284.51 cm), by on the other hand, the lowest values (257.97 cm) were found in the combination ECw 3.98 dS m<sup>-1</sup> and ETc 53%.</p>
			<p>
				<fig id="f5">
					<label>Figure 5</label>
					<caption>
						<title>Plant height (A) and stem height (B) as a function of electrical conductivities of irrigation water (ECw) and irrigation depths (ETc) in sweet sorghum (<italic>Sorghum bicolor</italic> L.) 'BRS 506'.</title>
					</caption>
					<graphic xlink:href="2346-2183-dyna-91-231-69-gf5.jpg"/>
					<attrib>Source: The authors.</attrib>
				</fig>
			</p>
			<p>Similarly to plant height, for stem height the highest value (270.18 cm) was observed in the combination with ECw of 3.98 dS m<sup>-1</sup> and 95% of ETc, at the same time that the highest height (232. 81 cm) was found in the combination of ECw of 3.67 dS m<sup>-1</sup> and 53% ETc (<xref ref-type="fig" rid="f5">Fig. 5</xref>B).</p>
			<p>6.0 dS m<sup>-1</sup>) were prepared from the addition of NaCl, CaCl.2H<sub>2</sub>O and MgSO<sub>4</sub>.7H<sub>2</sub>O salts [<xref ref-type="bibr" rid="B25">25</xref>]. The water with the highest concentration was based on the salinity tolerance of the sorghum crop for a potential yield of 50% [<xref ref-type="bibr" rid="B26">26</xref>], while the other waters had intermediate electrical conductivities (<xref ref-type="table" rid="t1">Table 1</xref>).</p>
		</sec>
		<sec sec-type="discussion">
			<title>4. Discussion</title>
			<p>Plants subjected to high levels of abiotic stresses, such as saline and water, generally show damage to the water conditions of the leaves. In some previous studies in sorghum, increases in membrane damage were reported under conditions of water [<xref ref-type="bibr" rid="B12">12</xref>] and salt [<xref ref-type="bibr" rid="B13">13</xref>]. On the other hand, the relative water content is reduced in sorghum leaves under saline [<xref ref-type="bibr" rid="B14">14</xref>,<xref ref-type="bibr" rid="B16">16</xref>] and water [<xref ref-type="bibr" rid="B12">12</xref>] stress. However, in the present study, leaf water status variables (membrane damage and relative water content) were not affected by salt and water stress.</p>
			<p>Salt and water stress cause reductions in soil water potential and leaf water potential, altering water relations and reducing plant turgor, leading to osmotic stress, and consequently reductions in leaf transpiration and gas exchange [<xref ref-type="bibr" rid="B35">35</xref>,<xref ref-type="bibr" rid="B36">36</xref>].</p>
			<p>Generally, strategies for the mechanism of tolerance to abiotic stresses involve actions at the cellular level, such as maintenance of osmotic balance through ion absorption, preservation of hydrolase enzymes, accumulation of compatible ions, in order to maintain active photosynthesis [<xref ref-type="bibr" rid="B37">37</xref>-<xref ref-type="bibr" rid="B39">39</xref>]. In addition, these plants may have greater osmotic homeostasis compared to sensitive plants, through the accumulation of soluble sugars, in response to salt and water stress [<xref ref-type="bibr" rid="B10">10</xref>,<xref ref-type="bibr" rid="B15">15</xref>,<xref ref-type="bibr" rid="B19">19</xref>].</p>
			<p>In our work, the total sugars showed an increase in the sorghum plants submitted to the highest electrical conductivities of the irrigation water. Corroborating the results found by [<xref ref-type="bibr" rid="B11">11</xref>], who reported greater accumulation of total soluble sugars in sorghum plants in response to salt stress. Total soluble sugars, especially non-reducing ones, are the main agents that contribute to the osmotic adjustment in sorghum leaves, being indispensable for the acclimatization of sorghum under conditions of abiotic stress [<xref ref-type="bibr" rid="B19">19</xref>].</p>
			<p>Osmotic adjustment is essential for the acclimatization of sorghum to saline and water stress by maintaining turgor pressure and relative water content, as well as regulating physiological processes [<xref ref-type="bibr" rid="B15">15</xref>,<xref ref-type="bibr" rid="B17">17</xref>]. Changes in physiology and growth caused by salt and water stress generally depend on specific conditions, such as duration and intensity of stress, in addition to factors such as plant age and genotype [<xref ref-type="bibr" rid="B40">40</xref>].</p>
			<p>In the present work, the gas exchange variables LT, WUE and WUEi were altered under salt stress, while the variables plant height and stem height were negatively influenced by salt and water stress together. However, there were marked reductions in both gas exchange variables and growth variables.</p>
			<p>This behavior can be explained because the water potential in the leaves remained stable, not being affected by salt and water stress, resulting in the maintenance of gas exchange processes and the growth of sorghum plants. Showing that the sorghum cultivar ‘BRS 506’ can be cultivated under conditions of salt and water stress in semi-arid regions, without major losses in production [<xref ref-type="bibr" rid="B39">39</xref>].</p>
		</sec>
		<sec sec-type="conclusions">
			<title>5. Conclusions</title>
			<p>The results indicate that combined salt and water stress cause negative effects on the growth of sweet sorghum [<italic>Sorghum bicolor</italic> (L.) Moench] plants. Salt stress generates disturbances in gas exchange and sugar content in plant leaves. The sorghum plants subjected to salt and water stress under the conditions of our work did not suffer major changes in the variables studied (gas exchange, leaf water status, sugars in the leaf and growth). Being able to show that the sweet sorghum cultivar 'BRS 506' is tolerant to the abiotic stresses studied.</p>
		</sec>
	</body>
	<back>
		<ack>
			<title>Acknowledgments</title>
			<p>“This study was financed in part by the Coordenação de Aperfeiçoamento de Pessoal de Nível Superior - Brasil (CAPES) - Finance Code 001”.</p>
			<p>The National Council for Scientific and Technological Development (CNPq) and the Federal Rural University of the Semi-Arid (UFERSA) for the financial support granted.</p>
		</ack>
		<ref-list>
			<title>References</title>
			<ref id="B1">
				<label>[1]</label>
				<mixed-citation>[1] Naoura, G., Emendack, Y., Baloua, N., Vom Brocke, K., Hassan, M. A., Sawadogo, N., Nodjasse, A.D., Djinodji R., Trouche, G. and Laza, H.E., Characterization of semi-arid Chadian sweet sorghum accessions as potential sources for sugar and ethanol production. Scientific Reports, 10(1), pp. 14947, 2020. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1038/s41598-020-71506-9">https://doi.org/10.1038/s41598-020-71506-9</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Naoura</surname>
							<given-names>G</given-names>
						</name>
						<name>
							<surname>Emendack</surname>
							<given-names>Y</given-names>
						</name>
						<name>
							<surname>Baloua</surname>
							<given-names>N</given-names>
						</name>
						<name>
							<surname>Vom Brocke</surname>
							<given-names>K</given-names>
						</name>
						<name>
							<surname>Hassan</surname>
							<given-names>M. A</given-names>
						</name>
						<name>
							<surname>Sawadogo</surname>
							<given-names>N</given-names>
						</name>
						<name>
							<surname>Nodjasse</surname>
							<given-names>A.D</given-names>
						</name>
						<name>
							<surname>Djinodji</surname>
							<given-names>R</given-names>
						</name>
						<name>
							<surname>Trouche</surname>
							<given-names>G</given-names>
						</name>
						<name>
							<surname>Laza</surname>
							<given-names>H.E</given-names>
						</name>
					</person-group>
					<article-title>Characterization of semi-arid Chadian sweet sorghum accessions as potential sources for sugar and ethanol production</article-title>
					<source>Scientific Reports</source>
					<volume>10</volume>
					<issue>1</issue>
					<fpage>14947</fpage>
					<lpage>14947</lpage>
					<year>2020</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1038/s41598-020-71506-9">https://doi.org/10.1038/s41598-020-71506-9</ext-link>
				</element-citation>
			</ref>
			<ref id="B2">
				<label>[2]</label>
				<mixed-citation>[2] Silva, H.J.T., Santos, P.F.A., Nogueira Jr, E.C. and Vian, C.E.D.F., Aspectos técnicos e econômicos da produção de etanol de milho no Brasil. Revista de Política Agrícola, 29(4), pp. 142, 2020. </mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Silva</surname>
							<given-names>H.J.T.</given-names>
						</name>
						<name>
							<surname>Santos</surname>
							<given-names>P.F.A.</given-names>
						</name>
						<name>
							<surname>Nogueira</surname>
							<given-names>E.C.</given-names>
							<suffix>Jr</suffix>
						</name>
						<name>
							<surname>Vian</surname>
							<given-names>C.E.D.F</given-names>
						</name>
					</person-group>
					<article-title>Aspectos técnicos e econômicos da produção de etanol de milho no Brasil</article-title>
					<source>Revista de Política Agrícola</source>
					<volume>29</volume>
					<issue>4</issue>
					<fpage>142</fpage>
					<lpage>142</lpage>
					<year>2020</year>
				</element-citation>
			</ref>
			<ref id="B3">
				<label>[3]</label>
				<mixed-citation>[3] Batista, V.A.P., Batista, V.Z.P., Pimentel, L.D., Barros, A.F., Moreira, T.D.S. and Dias, L.A.D.S., Produção de açúcares no caldo de sorgo sacarino avaliado em duas épocas de corte. Revista Brasileira de Milho e Sorgo, 17(2), pp. 263-273, 2018. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.18512/1980-6477/rbms.v17n2p263-273">https://doi.org/10.18512/1980-6477/rbms.v17n2p263-273</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Batista</surname>
							<given-names>V.A.P.</given-names>
						</name>
						<name>
							<surname>Batista</surname>
							<given-names>V.Z.P.</given-names>
						</name>
						<name>
							<surname>Pimentel</surname>
							<given-names>L.D.</given-names>
						</name>
						<name>
							<surname>Barros</surname>
							<given-names>A.F.</given-names>
						</name>
						<name>
							<surname>Moreira</surname>
							<given-names>T.D.S.</given-names>
						</name>
						<name>
							<surname>Dias</surname>
							<given-names>L.A.D.S</given-names>
						</name>
					</person-group>
					<article-title>Produção de açúcares no caldo de sorgo sacarino avaliado em duas épocas de corte</article-title>
					<source>Revista Brasileira de Milho e Sorgo</source>
					<volume>17</volume>
					<issue>2</issue>
					<fpage>263</fpage>
					<lpage>273</lpage>
					<year>2018</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.18512/1980-6477/rbms.v17n2p263-273">https://doi.org/10.18512/1980-6477/rbms.v17n2p263-273</ext-link>
				</element-citation>
			</ref>
			<ref id="B4">
				<label>[4]</label>
				<mixed-citation>[4] Disasa, T., Feyissa, T., Admassu, B., Fetene, M. and Mendu, V., Mapping of QTLs associated with brix and biomass-related traits in sorghum using SSR markers. Sugar Tech, 20, pp. 275-285, 2018. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/s12355-018-0590-6">https://doi.org/10.1007/s12355-018-0590-6</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Disasa</surname>
							<given-names>T.</given-names>
						</name>
						<name>
							<surname>Feyissa</surname>
							<given-names>T.</given-names>
						</name>
						<name>
							<surname>Admassu</surname>
							<given-names>B.</given-names>
						</name>
						<name>
							<surname>Fetene</surname>
							<given-names>M.</given-names>
						</name>
						<name>
							<surname>Mendu</surname>
							<given-names>V</given-names>
						</name>
					</person-group>
					<article-title>Mapping of QTLs associated with brix and biomass-related traits in sorghum using SSR markers</article-title>
					<source>Sugar Tech</source>
					<volume>20</volume>
					<fpage>275</fpage>
					<lpage>285</lpage>
					<year>2018</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/s12355-018-0590-6">https://doi.org/10.1007/s12355-018-0590-6</ext-link>
				</element-citation>
			</ref>
			<ref id="B5">
				<label>[5]</label>
				<mixed-citation>[5] Briand, C.H., Geleta, S.B. and Kratochvil, R.J., Sweet sorghum (Sorghum bicolor [L.] Moench) a potential biofuel feedstock: analysis of cultivar performance in the Mid-Atlantic. Renewable Energy, 129, pp. 328-333, 2018. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.renene.2018.06.004">https://doi.org/10.1016/j.renene.2018.06.004</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Briand</surname>
							<given-names>C.H.</given-names>
						</name>
						<name>
							<surname>Geleta</surname>
							<given-names>S.B.</given-names>
						</name>
						<name>
							<surname>Kratochvil</surname>
							<given-names>R.J</given-names>
						</name>
					</person-group>
					<article-title>Sweet sorghum (Sorghum bicolor [L.] Moench) a potential biofuel feedstock: analysis of cultivar performance in the Mid-Atlantic</article-title>
					<source>Renewable Energy</source>
					<volume>129</volume>
					<fpage>328</fpage>
					<lpage>333</lpage>
					<year>2018</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.renene.2018.06.004">https://doi.org/10.1016/j.renene.2018.06.004</ext-link>
				</element-citation>
			</ref>
			<ref id="B6">
				<label>[6]</label>
				<mixed-citation>[6] Li, H., Li, Y., Ke, Q., Kwak, S.S., Zhang, S. and Deng, X., Physiological and differential proteomic analyses of imitation drought stress response in Sorghum bicolor root at the seedling stage. International Journal of Molecular Sciences, 21(23), pp. 9174, 2020. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3390/ijms21239174">https://doi.org/10.3390/ijms21239174</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Li</surname>
							<given-names>H.</given-names>
						</name>
						<name>
							<surname>Li</surname>
							<given-names>Y.</given-names>
						</name>
						<name>
							<surname>Ke</surname>
							<given-names>Q.</given-names>
						</name>
						<name>
							<surname>Kwak</surname>
							<given-names>S.S.</given-names>
						</name>
						<name>
							<surname>Zhang</surname>
							<given-names>S.</given-names>
						</name>
						<name>
							<surname>Deng</surname>
							<given-names>X</given-names>
						</name>
					</person-group>
					<article-title>Physiological and differential proteomic analyses of imitation drought stress response in Sorghum bicolor root at the seedling stage</article-title>
					<source>International Journal of Molecular Sciences</source>
					<volume>21</volume>
					<issue>23</issue>
					<fpage>9174</fpage>
					<lpage>9174</lpage>
					<year>2020</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3390/ijms21239174">https://doi.org/10.3390/ijms21239174</ext-link>
				</element-citation>
			</ref>
			<ref id="B7">
				<label>[7]</label>
				<mixed-citation>[7] Abreha, K.B., Enyew, M., Carlsson, A.S., Vetukuri, R.R., Feyissa, T., Motlhaodi, T., Ng’uni, D. and Geleta, M, Sorghum in dryland: morphological, physiological, and molecular responses of sorghum under drought stress. Planta, 255, pp. 1-23, 2022. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/s00425-021-03799-7">https://doi.org/10.1007/s00425-021-03799-7</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Abreha</surname>
							<given-names>K.B.</given-names>
						</name>
						<name>
							<surname>Enyew</surname>
							<given-names>M.</given-names>
						</name>
						<name>
							<surname>Carlsson</surname>
							<given-names>A.S.</given-names>
						</name>
						<name>
							<surname>Vetukuri</surname>
							<given-names>R.R.</given-names>
						</name>
						<name>
							<surname>Feyissa</surname>
							<given-names>T.</given-names>
						</name>
						<name>
							<surname>Motlhaodi</surname>
							<given-names>T.</given-names>
						</name>
						<name>
							<surname>Ng’uni</surname>
							<given-names>D.</given-names>
						</name>
						<name>
							<surname>Geleta</surname>
							<given-names>M</given-names>
						</name>
					</person-group>
					<article-title>Sorghum in dryland: morphological, physiological, and molecular responses of sorghum under drought stress</article-title>
					<source>Planta</source>
					<volume>255</volume>
					<fpage>1</fpage>
					<lpage>23</lpage>
					<year>2022</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/s00425-021-03799-7">https://doi.org/10.1007/s00425-021-03799-7</ext-link>
				</element-citation>
			</ref>
			<ref id="B8">
				<label>[8]</label>
				<mixed-citation>[8] Motsi, H., Molapo, M. and Phiri, E.E., A review on sweet sorghum adaptive capacity on improving food security and poverty alleviation in sub-Saharan Africa. South African Journal of Botany, 150, pp. 323-329, 2022. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.sajb.2022.07.040">https://doi.org/10.1016/j.sajb.2022.07.040</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Motsi</surname>
							<given-names>H.</given-names>
						</name>
						<name>
							<surname>Molapo</surname>
							<given-names>M.</given-names>
						</name>
						<name>
							<surname>Phiri</surname>
							<given-names>E.E</given-names>
						</name>
					</person-group>
					<article-title>A review on sweet sorghum adaptive capacity on improving food security and poverty alleviation in sub-Saharan Africa</article-title>
					<source>South African Journal of Botany</source>
					<volume>150</volume>
					<fpage>323</fpage>
					<lpage>329</lpage>
					<year>2022</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.sajb.2022.07.040">https://doi.org/10.1016/j.sajb.2022.07.040</ext-link>
				</element-citation>
			</ref>
			<ref id="B9">
				<label>[9]</label>
				<mixed-citation>[9] Bian, Y., Deng, X., Yan, X., Zhou, J., Yuan, L. and Yan, Y., Integrated proteomic analysis of Brachypodium distachyon roots and leaves reveals a synergistic network in the response to drought stress and recovery. Scientific Reports , 7(1), art. 46183, 2017. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1038/srep46183">https://doi.org/10.1038/srep46183</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Bian</surname>
							<given-names>Y.</given-names>
						</name>
						<name>
							<surname>Deng</surname>
							<given-names>X.</given-names>
						</name>
						<name>
							<surname>Yan</surname>
							<given-names>X.</given-names>
						</name>
						<name>
							<surname>Zhou</surname>
							<given-names>J.</given-names>
						</name>
						<name>
							<surname>Yuan</surname>
							<given-names>L.</given-names>
						</name>
						<name>
							<surname>Yan</surname>
							<given-names>Y</given-names>
						</name>
					</person-group>
					<article-title>Integrated proteomic analysis of Brachypodium distachyon roots and leaves reveals a synergistic network in the response to drought stress and recovery</article-title>
					<source>Scientific Reports</source>
					<volume>7</volume>
					<issue>1</issue>
					<comment>art. 46183</comment>
					<year>2017</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1038/srep46183">https://doi.org/10.1038/srep46183</ext-link>
				</element-citation>
			</ref>
			<ref id="B10">
				<label>[10]</label>
				<mixed-citation>[10] Harris-Shultz, K.R., Hayes, C.M. and Knoll, J.E., Mapping QTLs and identification of genes associated with drought resistance in sorghum. Sorghum: Methods and Protocols, 1931, pp. 11-40, 2019. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/978-1-4939-9039-9_2">https://doi.org/10.1007/978-1-4939-9039-9_2</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Harris-Shultz</surname>
							<given-names>K.R.</given-names>
						</name>
						<name>
							<surname>Hayes</surname>
							<given-names>C.M.</given-names>
						</name>
						<name>
							<surname>Knoll</surname>
							<given-names>J.E</given-names>
						</name>
					</person-group>
					<article-title>Mapping QTLs and identification of genes associated with drought resistance in sorghum</article-title>
					<source>Sorghum: Methods and Protocols</source>
					<volume>1931</volume>
					<fpage>11</fpage>
					<lpage>40</lpage>
					<year>2019</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/978-1-4939-9039-9_2">https://doi.org/10.1007/978-1-4939-9039-9_2</ext-link>
				</element-citation>
			</ref>
			<ref id="B11">
				<label>[11]</label>
				<mixed-citation>[11] Coelho, D.S., Simões, W.L., Salviano, A.M., Mesquita, A.C. and Alberto, K.D.C., Gas exchange and organic solutes in forage sorghum genotypes grown under different salinity levels. Revista Brasileira de Engenharia Agrícola e Ambiental, 22, pp. 231-236, 2018. DOI: <ext-link ext-link-type="uri" xlink:href="http://dx.doi.org/10.1590/1807-1929/agriambi.v22n4p231-236">http://dx.doi.org/10.1590/1807-1929/agriambi.v22n4p231-236</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Coelho</surname>
							<given-names>D.S.</given-names>
						</name>
						<name>
							<surname>Simões</surname>
							<given-names>W.L.</given-names>
						</name>
						<name>
							<surname>Salviano</surname>
							<given-names>A.M.</given-names>
						</name>
						<name>
							<surname>Mesquita</surname>
							<given-names>A.C.</given-names>
						</name>
						<name>
							<surname>Alberto</surname>
							<given-names>K.D.C</given-names>
						</name>
					</person-group>
					<article-title>Gas exchange and organic solutes in forage sorghum genotypes grown under different salinity level</article-title>
					<source>Revista Brasileira de Engenharia Agrícola e Ambiental</source>
					<volume>22</volume>
					<fpage>231</fpage>
					<lpage>236</lpage>
					<year>2018</year>
					<ext-link ext-link-type="uri" xlink:href="http://dx.doi.org/10.1590/1807-1929/agriambi.v22n4p231-236">http://dx.doi.org/10.1590/1807-1929/agriambi.v22n4p231-236</ext-link>
				</element-citation>
			</ref>
			<ref id="B12">
				<label>[12]</label>
				<mixed-citation>[12] Amoah, J.N. and Antwi-Berko, D., Comparative physiological, biochemical and transcript response to drought in sorghum genotypes. Biotechnology Journal International, 24(3), pp. 1-14, 2020. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.9734/BJI/2020/v24i330102">https://doi.org/10.9734/BJI/2020/v24i330102</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Amoah</surname>
							<given-names>J.N.</given-names>
						</name>
						<name>
							<surname>Antwi-Berko</surname>
							<given-names>D</given-names>
						</name>
					</person-group>
					<article-title>Comparative physiological, biochemical and transcript response to drought in sorghum genotypes</article-title>
					<source>Biotechnology Journal International</source>
					<volume>24</volume>
					<issue>3</issue>
					<fpage>1</fpage>
					<lpage>14</lpage>
					<year>2020</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.9734/BJI/2020/v24i330102">https://doi.org/10.9734/BJI/2020/v24i330102</ext-link>
				</element-citation>
			</ref>
			<ref id="B13">
				<label>[13]</label>
				<mixed-citation>[13] Stefanov, M.A., Rashkov, G.D., Yotsova, E.K., Borisova, P.B., Dobrikova, A.G. and Apostolova, E.L., Protective effects of sodium nitroprusside on photosynthetic performance of Sorghum bicolor L. under Salt Stress. Plants, 12(4), art. 832, 2023. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3390/plants12040832">https://doi.org/10.3390/plants12040832</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Stefanov</surname>
							<given-names>M.A.</given-names>
						</name>
						<name>
							<surname>Rashkov</surname>
							<given-names>G.D.</given-names>
						</name>
						<name>
							<surname>Yotsova</surname>
							<given-names>E.K.</given-names>
						</name>
						<name>
							<surname>Borisova</surname>
							<given-names>P.B.</given-names>
						</name>
						<name>
							<surname>Dobrikova</surname>
							<given-names>A.G.</given-names>
						</name>
						<name>
							<surname>Apostolova</surname>
							<given-names>E.L</given-names>
						</name>
					</person-group>
					<article-title>Protective effects of sodium nitroprusside on photosynthetic performance of Sorghum bicolor L. under Salt Stress</article-title>
					<source>Plants</source>
					<volume>12</volume>
					<issue>4</issue>
					<comment>art. 832</comment>
					<year>2023</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3390/plants12040832">https://doi.org/10.3390/plants12040832</ext-link>
				</element-citation>
			</ref>
			<ref id="B14">
				<label>[14]</label>
				<mixed-citation>[14] Mbinda, W. and Kimtai, M., Evaluation of morphological and biochemical characteristics of sorghum [Sorghum bicolor [L.] Moench] varieties in response salinity stress. Annual Research &amp; Review in Biology, 33(1), pp. 1-9, 2019. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.9734/ARRB/2019/v33i130110">https://doi.org/10.9734/ARRB/2019/v33i130110</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Mbinda</surname>
							<given-names>W.</given-names>
						</name>
						<name>
							<surname>Kimtai</surname>
							<given-names>M</given-names>
						</name>
					</person-group>
					<article-title>Evaluation of morphological and biochemical characteristics of sorghum [Sorghum bicolor [L.] Moench] varieties in response salinity stress</article-title>
					<source>Annual Research &amp; Review in Biology</source>
					<volume>33</volume>
					<issue>1</issue>
					<fpage>1</fpage>
					<lpage>9</lpage>
					<year>2019</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.9734/ARRB/2019/v33i130110">https://doi.org/10.9734/ARRB/2019/v33i130110</ext-link>
				</element-citation>
			</ref>
			<ref id="B15">
				<label>[15]</label>
				<mixed-citation>[15] Calone, R., Sanoubar, R., Lambertini, C., Speranza, M., Antisari, L.V., Vianello, G. and Barbanti, L., Salt tolerance and Na allocation in Sorghum bicolor under variable soil and water salinity. Plants, 9(5), art. 561, 2020. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3390/plants9050561">https://doi.org/10.3390/plants9050561</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Calone</surname>
							<given-names>R.</given-names>
						</name>
						<name>
							<surname>Sanoubar</surname>
							<given-names>R.</given-names>
						</name>
						<name>
							<surname>Lambertini</surname>
							<given-names>C.</given-names>
						</name>
						<name>
							<surname>Speranza</surname>
							<given-names>M.</given-names>
						</name>
						<name>
							<surname>Antisari</surname>
							<given-names>L.V.</given-names>
						</name>
						<name>
							<surname>Vianello</surname>
							<given-names>G.</given-names>
						</name>
						<name>
							<surname>Barbanti</surname>
							<given-names>L</given-names>
						</name>
					</person-group>
					<article-title>Salt tolerance and Na allocation in Sorghum bicolor under variable soil and water salinity</article-title>
					<source>Plants</source>
					<volume>9</volume>
					<issue>5</issue>
					<comment>art. 561</comment>
					<year>2020</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3390/plants9050561">https://doi.org/10.3390/plants9050561</ext-link>
				</element-citation>
			</ref>
			<ref id="B16">
				<label>[16]</label>
				<mixed-citation>[16] Dhaka, P., Tallapragada, S., Devi, S. and Dhaka, B.K., Implication of Jasmonic acid on physiological alterations on salt stressed fodder Sorghum (Sorghum bicolor L.). International Journal of Environment and Climate Change, 13(8), pp. 649-660, 2023. </mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Dhaka</surname>
							<given-names>P.</given-names>
						</name>
						<name>
							<surname>Tallapragada</surname>
							<given-names>S.</given-names>
						</name>
						<name>
							<surname>Devi</surname>
							<given-names>S.</given-names>
						</name>
						<name>
							<surname>Dhaka</surname>
							<given-names>B.K</given-names>
						</name>
					</person-group>
					<article-title>Implication of Jasmonic acid on physiological alterations on salt stressed fodder Sorghum (Sorghum bicolor L.)</article-title>
					<source>International Journal of Environment and Climate Change</source>
					<volume>13</volume>
					<issue>8</issue>
					<fpage>649</fpage>
					<lpage>660</lpage>
					<year>2023</year>
				</element-citation>
			</ref>
			<ref id="B17">
				<label>[17]</label>
				<mixed-citation>[17] Huang, R., Research progress on plant tolerance to soil salinity and alkalinity in sorghum. Journal of Integrative Agriculture, 17(4), pp. 739-746, 2018. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/S2095-3119(17)61728-3">https://doi.org/10.1016/S2095-3119(17)61728-3</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Huang</surname>
							<given-names>R</given-names>
						</name>
					</person-group>
					<article-title>Research progress on plant tolerance to soil salinity and alkalinity in sorghum</article-title>
					<source>Journal of Integrative Agriculture</source>
					<volume>17</volume>
					<issue>4</issue>
					<fpage>739</fpage>
					<lpage>746</lpage>
					<year>2018</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/S2095-3119(17)61728-3">https://doi.org/10.1016/S2095-3119(17)61728-3</ext-link>
				</element-citation>
			</ref>
			<ref id="B18">
				<label>[18]</label>
				<mixed-citation>[18] Silva, E.M., Magalhães, P.C., Castro, E.M., Ávila, R.G. and Almeida, L.G., Modifications in the root system, gas exchanges and productivity of sorghum hybrids cultivated under water déficit. Revista Brasileira de Milho e Sorgo , 17(3), pp. 380-389, 2018. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.18512/1980-6477/rbms.v17n3p380-389">https://doi.org/10.18512/1980-6477/rbms.v17n3p380-389</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Silva</surname>
							<given-names>E.M.</given-names>
						</name>
						<name>
							<surname>Magalhães</surname>
							<given-names>P.C.</given-names>
						</name>
						<name>
							<surname>Castro</surname>
							<given-names>E.M.</given-names>
						</name>
						<name>
							<surname>Ávila</surname>
							<given-names>R.G.</given-names>
						</name>
						<name>
							<surname>Almeida</surname>
							<given-names>L.G</given-names>
						</name>
					</person-group>
					<article-title>Modifications in the root system, gas exchanges and productivity of sorghum hybrids cultivated under water déficit</article-title>
					<source>Revista Brasileira de Milho e Sorgo</source>
					<volume>17</volume>
					<issue>3</issue>
					<fpage>380</fpage>
					<lpage>389</lpage>
					<year>2018</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.18512/1980-6477/rbms.v17n3p380-389">https://doi.org/10.18512/1980-6477/rbms.v17n3p380-389</ext-link>
				</element-citation>
			</ref>
			<ref id="B19">
				<label>[19]</label>
				<mixed-citation>[19] Mansour, M.M.F., Emam, M.M., Salama, K.H.A. and Morsy, A.A., Sorghum under saline conditions: responses, tolerance mechanisms, and management strategies. Planta, 254, pp. 1-38, 2021. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/s00425-021-03671-8">https://doi.org/10.1007/s00425-021-03671-8</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Mansour</surname>
							<given-names>M.M.F.</given-names>
						</name>
						<name>
							<surname>Emam</surname>
							<given-names>M.M.</given-names>
						</name>
						<name>
							<surname>Salama</surname>
							<given-names>K.H.A.</given-names>
						</name>
						<name>
							<surname>Morsy</surname>
							<given-names>A.A</given-names>
						</name>
					</person-group>
					<article-title>Sorghum under saline conditions: responses, tolerance mechanisms, and management strategies</article-title>
					<source>Planta</source>
					<volume>254</volume>
					<fpage>1</fpage>
					<lpage>38</lpage>
					<year>2021</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/s00425-021-03671-8">https://doi.org/10.1007/s00425-021-03671-8</ext-link>
				</element-citation>
			</ref>
			<ref id="B20">
				<label>[20]</label>
				<mixed-citation>[20] O’connell, E., Towards adaptation of water resource systems to climatic and socio-economic change. Water Resources Management, 31, pp. 2965-2984, 2017. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/s11269-017-1734-2">https://doi.org/10.1007/s11269-017-1734-2</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>O’connell</surname>
							<given-names>E</given-names>
						</name>
					</person-group>
					<article-title>Towards adaptation of water resource systems to climatic and socio-economic change</article-title>
					<source>Water Resources Management</source>
					<volume>31</volume>
					<fpage>2965</fpage>
					<lpage>2984</lpage>
					<year>2017</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/s11269-017-1734-2">https://doi.org/10.1007/s11269-017-1734-2</ext-link>
				</element-citation>
			</ref>
			<ref id="B21">
				<label>[21]</label>
				<mixed-citation>[21] Lu, S., Bai, X., Li, W. and Wang, N., Impacts of climate change on water resources and grain production. Technological Forecasting and Social Change, 143, pp. 76-84, 2019. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.techfore.2019.01.015">https://doi.org/10.1016/j.techfore.2019.01.015</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Lu</surname>
							<given-names>S.</given-names>
						</name>
						<name>
							<surname>Bai</surname>
							<given-names>X.</given-names>
						</name>
						<name>
							<surname>Li</surname>
							<given-names>W.</given-names>
						</name>
						<name>
							<surname>Wang</surname>
							<given-names>N</given-names>
						</name>
					</person-group>
					<article-title>Impacts of climate change on water resources and grain production</article-title>
					<source>Technological Forecasting and Social Change</source>
					<volume>143</volume>
					<fpage>76</fpage>
					<lpage>84</lpage>
					<year>2019</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.techfore.2019.01.015">https://doi.org/10.1016/j.techfore.2019.01.015</ext-link>
				</element-citation>
			</ref>
			<ref id="B22">
				<label>[22]</label>
				<mixed-citation>[22] Alvares, C.A., Stape, J.L., Sentelhas, P.C., Gonçalves, J.D.M. and Sparovek, G., Köppen’s climate classification map for Brazil. Meteorologische Zeitschrift, 22(6), pp. 711-728, 2013. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1127/0941-2948/2013/0507">https://doi.org/10.1127/0941-2948/2013/0507</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Alvares</surname>
							<given-names>C.A.</given-names>
						</name>
						<name>
							<surname>Stape</surname>
							<given-names>J.L.</given-names>
						</name>
						<name>
							<surname>Sentelhas</surname>
							<given-names>P.C.</given-names>
						</name>
						<name>
							<surname>Gonçalves</surname>
							<given-names>J.D.M.</given-names>
						</name>
						<name>
							<surname>Sparovek</surname>
							<given-names>G</given-names>
						</name>
					</person-group>
					<article-title>Köppen’s climate classification map for Brazil</article-title>
					<source>Meteorologische Zeitschrift</source>
					<volume>22</volume>
					<issue>6</issue>
					<fpage>711</fpage>
					<lpage>728</lpage>
					<year>2013</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1127/0941-2948/2013/0507">https://doi.org/10.1127/0941-2948/2013/0507</ext-link>
				</element-citation>
			</ref>
			<ref id="B23">
				<label>[23]</label>
				<mixed-citation>[23] Santos, H.G., Jacomine, P.K.T., Anjos, L.H.C., Oliveira, V.A., Lumbreras, J.F., Coelho, M.R., Almeida, J.A., Araujo Filho, J.C., Oliveira, J. B. and Cunha, T.J.F., Sistema brasileiro de classificação de solos. (5a ed.), Embrapa Solos, Rio de Janeiro, Brazil, 2018. </mixed-citation>
				<element-citation publication-type="book">
					<person-group person-group-type="author">
						<name>
							<surname>Santos</surname>
							<given-names>H.G.</given-names>
						</name>
						<name>
							<surname>Jacomine</surname>
							<given-names>P.K.T.</given-names>
						</name>
						<name>
							<surname>Anjos</surname>
							<given-names>L.H.C.</given-names>
						</name>
						<name>
							<surname>Oliveira</surname>
							<given-names>V.A.</given-names>
						</name>
						<name>
							<surname>Lumbreras</surname>
							<given-names>J.F.</given-names>
						</name>
						<name>
							<surname>Coelho</surname>
							<given-names>M.R.</given-names>
						</name>
						<name>
							<surname>Almeida</surname>
							<given-names>J.A.</given-names>
						</name>
						<name>
							<surname>Araujo</surname>
							<given-names>J.C.</given-names>
							<suffix>Filho</suffix>
						</name>
						<name>
							<surname>Oliveira</surname>
							<given-names>J. B.</given-names>
						</name>
						<name>
							<surname>Cunha</surname>
							<given-names>T.J.F</given-names>
						</name>
					</person-group>
					<source>Sistema brasileiro de classificação de solos</source>
					<edition>5</edition>
					<publisher-name>Embrapa Solos</publisher-name>
					<publisher-name>Rio de Janeiro, Brazil</publisher-name>
					<year>2018</year>
				</element-citation>
			</ref>
			<ref id="B24">
				<label>[24]</label>
				<mixed-citation>[24] Costa, A.R.F.C., and Medeiros, J.F., Água salina como alternativa para irrigação de sorgo para geração de energia no Nordeste brasileiro. Water Resources and Irrigation Management, 6(3), pp. 169-177, 2017.</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Costa</surname>
							<given-names>A.R.F.C.</given-names>
						</name>
						<name>
							<surname>Medeiros</surname>
							<given-names>J.F</given-names>
						</name>
					</person-group>
					<article-title>Água salina como alternativa para irrigação de sorgo para geração de energia no Nordeste brasileiro</article-title>
					<source>Water Resources and Irrigation Management</source>
					<volume>6</volume>
					<issue>3</issue>
					<fpage>169</fpage>
					<lpage>177</lpage>
					<year>2017</year>
				</element-citation>
			</ref>
			<ref id="B25">
				<label>[25]</label>
				<mixed-citation>[25] Silva Júnior, L.G.D.A., Gheyi, H.R. and Medeiros, J.F.D., Composição química de águas do cristalino do Nordeste Brasileiro. Revista Brasileira de Engenharia Agrícola e Ambiental , 3, pp. 11-17, 1999. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1590/1807-1929/agriambi.v3n1p11-17">https://doi.org/10.1590/1807-1929/agriambi.v3n1p11-17</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Silva</surname>
							<given-names>L.G.D.A.</given-names>
							<suffix>Júnior</suffix>
						</name>
						<name>
							<surname>Gheyi</surname>
							<given-names>H.R.</given-names>
						</name>
						<name>
							<surname>Medeiros</surname>
							<given-names>J.F.D</given-names>
						</name>
					</person-group>
					<article-title>Composição química de águas do cristalino do Nordeste Brasileiro</article-title>
					<source>Revista Brasileira de Engenharia Agrícola e Ambiental</source>
					<volume>3</volume>
					<fpage>11</fpage>
					<lpage>17</lpage>
					<year>1999</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1590/1807-1929/agriambi.v3n1p11-17">https://doi.org/10.1590/1807-1929/agriambi.v3n1p11-17</ext-link>
				</element-citation>
			</ref>
			<ref id="B26">
				<label>[26]</label>
				<mixed-citation>[26] Ayers, R.S. and Westcot, D.W., A qualidade de água na agricultura. 2a ed., FAO Irrigação e Drenagem, 29, UFPB, Campina Grande, Brazil, 1999. 153P. </mixed-citation>
				<element-citation publication-type="book">
					<person-group person-group-type="author">
						<name>
							<surname>Ayers</surname>
							<given-names>R.S.</given-names>
						</name>
						<name>
							<surname>Westcot</surname>
							<given-names>D.W</given-names>
						</name>
					</person-group>
					<source>A qualidade de água na agricultura</source>
					<edition>2</edition>
					<publisher-name>FAO Irrigação e Drenagem, 29, UFPB</publisher-name>
					<publisher-loc>Campina Grande, Brazil</publisher-loc>
					<year>1999</year>
					<fpage>153</fpage>
					<lpage>153</lpage>
				</element-citation>
			</ref>
			<ref id="B27">
				<label>[27]</label>
				<mixed-citation>[27] Allen, R.G., Pruitt, W.O., Wright, J.L., et al., A recommendation on standardized surface resistance for hourly calculation of reference ETo by the FAO56 Penman-Monteith method. Agricultural Water Management, 81(1-2), pp. 1-22, 2006. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.agwat.2005.03.007">https://doi.org/10.1016/j.agwat.2005.03.007</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Allen</surname>
							<given-names>R.G.</given-names>
						</name>
						<name>
							<surname>Pruitt</surname>
							<given-names>W.O.</given-names>
						</name>
						<name>
							<surname>Wright</surname>
							<given-names>J.L.</given-names>
						</name>
						<etal/>
					</person-group>
					<article-title>A recommendation on standardized surface resistance for hourly calculation of reference ETo by the FAO56 Penman-Monteith method</article-title>
					<source>Agricultural Water Management</source>
					<volume>81</volume>
					<issue>1-2</issue>
					<fpage>1</fpage>
					<lpage>22</lpage>
					<year>2006</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.agwat.2005.03.007">https://doi.org/10.1016/j.agwat.2005.03.007</ext-link>
				</element-citation>
			</ref>
			<ref id="B28">
				<label>[28]</label>
				<mixed-citation>[28] Lutts, S., Kinet, J.M. and Bouharmont, J., NaCl-induced senescence in leaves of rice (Oryza sativa L.) cultivars differing in salinity resistance. Annals of Botany, 78(3), pp. 389-398, 1996. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1006/anbo.1996.0134">https://doi.org/10.1006/anbo.1996.0134</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Lutts</surname>
							<given-names>S.</given-names>
						</name>
						<name>
							<surname>Kinet</surname>
							<given-names>J.M.</given-names>
						</name>
						<name>
							<surname>Bouharmont</surname>
							<given-names>J</given-names>
						</name>
					</person-group>
					<article-title>NaCl-induced senescence in leaves of rice (Oryza sativa L.) cultivars differing in salinity resistance</article-title>
					<source>Annals of Botany</source>
					<volume>78</volume>
					<issue>3</issue>
					<fpage>389</fpage>
					<lpage>398</lpage>
					<year>1996</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1006/anbo.1996.0134">https://doi.org/10.1006/anbo.1996.0134</ext-link>
				</element-citation>
			</ref>
			<ref id="B29">
				<label>[29]</label>
				<mixed-citation>[29] Čatský, J., Determination of water deficit in disks cut out from leaf blades. Biologia Plantarum, 2(1), pp. 76-78, 1960. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/BF02920701">https://doi.org/10.1007/BF02920701</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Čatský</surname>
							<given-names>J</given-names>
						</name>
					</person-group>
					<article-title>Determination of water deficit in disks cut out from leaf blades</article-title>
					<source>Biologia Plantarum</source>
					<volume>2</volume>
					<issue>1</issue>
					<fpage>76</fpage>
					<lpage>78</lpage>
					<year>1960</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1007/BF02920701">https://doi.org/10.1007/BF02920701</ext-link>
				</element-citation>
			</ref>
			<ref id="B30">
				<label>[30]</label>
				<mixed-citation>[30] Yemm, E.W. and Willis, A., The estimation of carbohydrates in plant extracts by anthrone. Biochemical Journal, 57(3), pp. 508, 1954. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1042/bj0570508">https://doi.org/10.1042/bj0570508</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Yemm</surname>
							<given-names>E.W.</given-names>
						</name>
						<name>
							<surname>Willis</surname>
							<given-names>A</given-names>
						</name>
					</person-group>
					<article-title>The estimation of carbohydrates in plant extracts by anthrone</article-title>
					<source>Biochemical Journal</source>
					<volume>57</volume>
					<issue>3</issue>
					<fpage>508</fpage>
					<lpage>508</lpage>
					<year>1954</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1042/bj0570508">https://doi.org/10.1042/bj0570508</ext-link>
				</element-citation>
			</ref>
			<ref id="B31">
				<label>[31]</label>
				<mixed-citation>[31] Somogyi, M. and Nelson, N., A photometric adaptation of the Somogyi method for the determination of glucose. Journal of Biological Chemistry, 153, pp. 375-380, 1944.</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Somogyi</surname>
							<given-names>M.</given-names>
						</name>
						<name>
							<surname>Nelson</surname>
							<given-names>N</given-names>
						</name>
					</person-group>
					<article-title>A photometric adaptation of the Somogyi method for the determination of glucose</article-title>
					<source>Journal of Biological Chemistry</source>
					<volume>153</volume>
					<fpage>375</fpage>
					<lpage>380</lpage>
					<year>1944</year>
				</element-citation>
			</ref>
			<ref id="B32">
				<label>[32]</label>
				<mixed-citation>[32] Tavares, J.T.D.Q., Cardoso, R.L., Costa, J.A., Fadigas, F.D.S. and Fonseca, A.A., Interferência do ácido ascórbico na determinação de açúcares redutores pelo método de Lane e Eynon. Química Nova, 33, pp. 805-809, 2010.</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Tavares</surname>
							<given-names>J.T.D.Q.</given-names>
						</name>
						<name>
							<surname>Cardoso</surname>
							<given-names>R.L.</given-names>
						</name>
						<name>
							<surname>Costa</surname>
							<given-names>J.A.</given-names>
						</name>
						<name>
							<surname>Fadigas</surname>
							<given-names>F.D.S.</given-names>
						</name>
						<name>
							<surname>Fonseca</surname>
							<given-names>A.A</given-names>
						</name>
					</person-group>
					<article-title>Interferência do ácido ascórbico na determinação de açúcares redutores pelo método de Lane e Eynon</article-title>
					<source>Química Nova</source>
					<volume>33</volume>
					<fpage>805</fpage>
					<lpage>809</lpage>
					<year>2010</year>
				</element-citation>
			</ref>
			<ref id="B33">
				<label>[33]</label>
				<mixed-citation>[33] R CORE TEAM. R: a language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria, 2022.</mixed-citation>
				<element-citation publication-type="book">
					<person-group person-group-type="author">
						<collab>R CORE TEAM</collab>
					</person-group>
					<source>R: a language and environment for statistical computing</source>
					<publisher-name>R Foundation for Statistical Computing</publisher-name>
					<publisher-loc>Vienna, Austria</publisher-loc>
					<year>2022</year>
				</element-citation>
			</ref>
			<ref id="B34">
				<label>[34]</label>
				<mixed-citation>[34] SYSTAT SOFTWARE. INC. SigmaPlot for Windows, version 12.3. Cranes, San Jose, Costa Rica, 2013. </mixed-citation>
				<element-citation publication-type="book">
					<person-group person-group-type="author">
						<collab>SYSTAT SOFTWARE. INC</collab>
					</person-group>
					<source>igmaPlot for Windows, version 12.3</source>
					<publisher-name>Cranes</publisher-name>
					<publisher-loc>San Jose, Costa Rica</publisher-loc>
					<year>2013</year>
				</element-citation>
			</ref>
			<ref id="B35">
				<label>[35]</label>
				<mixed-citation>[35] Navada, S., Vadstein, O., Gaumet, F., Tveten, A.K., Spanu, C., Mikkelsen, Ø. and Kolarevic, J., Biofilms remember: osmotic stress priming as a microbial management strategy for improving salinity acclimation in nitrifying biofilms. Water Research, 176, art. 115732, 2020. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.watres.2020.115732">https://doi.org/10.1016/j.watres.2020.115732</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Navada</surname>
							<given-names>S.</given-names>
						</name>
						<name>
							<surname>Vadstein</surname>
							<given-names>O.</given-names>
						</name>
						<name>
							<surname>Gaumet</surname>
							<given-names>F.</given-names>
						</name>
						<name>
							<surname>Tveten</surname>
							<given-names>A.K.</given-names>
						</name>
						<name>
							<surname>Spanu</surname>
							<given-names>C.</given-names>
						</name>
						<name>
							<surname>Mikkelsen</surname>
							<given-names>Ø.</given-names>
						</name>
						<name>
							<surname>Kolarevic</surname>
							<given-names>J</given-names>
						</name>
					</person-group>
					<article-title>Biofilms remember: osmotic stress priming as a microbial management strategy for improving salinity acclimation in nitrifying biofilms</article-title>
					<source>Water Research</source>
					<volume>176</volume>
					<comment>art. 115732</comment>
					<year>2020</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.watres.2020.115732">https://doi.org/10.1016/j.watres.2020.115732</ext-link>
				</element-citation>
			</ref>
			<ref id="B36">
				<label>[36]</label>
				<mixed-citation>[36] Pan, T., Liu, M., Kreslavski, V.D., Zharmukhamedov, S.K., Nie, C., Yu, M., Kuznetsov, V.V., Allakhverdiev, S.I. and Shabala, S., Non-stomatal limitation of photosynthesis by soil salinity. Critical Reviews in Environmental Science and Technology, 51(8), pp. 791-825, 2021. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1080/10643389.2020.1735231">https://doi.org/10.1080/10643389.2020.1735231</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Pan</surname>
							<given-names>T.</given-names>
						</name>
						<name>
							<surname>Liu</surname>
							<given-names>M.</given-names>
						</name>
						<name>
							<surname>Kreslavski</surname>
							<given-names>V.D.</given-names>
						</name>
						<name>
							<surname>Zharmukhamedov</surname>
							<given-names>S.K.</given-names>
						</name>
						<name>
							<surname>Nie</surname>
							<given-names>C.</given-names>
						</name>
						<name>
							<surname>Yu</surname>
							<given-names>M.</given-names>
						</name>
						<name>
							<surname>Kuznetsov</surname>
							<given-names>V.V.</given-names>
						</name>
						<name>
							<surname>Allakhverdiev</surname>
							<given-names>S.I.</given-names>
						</name>
						<name>
							<surname>Shabala</surname>
							<given-names>S</given-names>
						</name>
					</person-group>
					<article-title>Non-stomatal limitation of photosynthesis by soil salinity</article-title>
					<source>Critical Reviews in Environmental Science and Technology</source>
					<volume>51</volume>
					<issue>8</issue>
					<fpage>791</fpage>
					<lpage>825</lpage>
					<year>2021</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1080/10643389.2020.1735231">https://doi.org/10.1080/10643389.2020.1735231</ext-link>
				</element-citation>
			</ref>
			<ref id="B37">
				<label>[37]</label>
				<mixed-citation>[37] Isayenkov, S.V. and Maathuis, F.J.M., Plant salinity stress: many unanswered questions remain. Frontiers in Plant Science, 10, art. 80, 2019. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3389/fpls.2019.00080">https://doi.org/10.3389/fpls.2019.00080</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Isayenkov</surname>
							<given-names>S.V.</given-names>
						</name>
						<name>
							<surname>Maathuis</surname>
							<given-names>F.J.M</given-names>
						</name>
					</person-group>
					<article-title>Plant salinity stress: many unanswered questions remain</article-title>
					<source>Frontiers in Plant Science</source>
					<volume>10</volume>
					<comment>art. 80</comment>
					<year>2019</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3389/fpls.2019.00080">https://doi.org/10.3389/fpls.2019.00080</ext-link>
				</element-citation>
			</ref>
			<ref id="B38">
				<label>[38]</label>
				<mixed-citation>[38] Arif, Y., Singh, P., Siddiqui, H., Bajguz, A. and Hayat, S., Salinity induced physiological and biochemical changes in plants: An omic approach towards salt stress tolerance. Plant Physiology and Biochemistry, 156, pp. 64-77, 2020. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.plaphy.2020.08.042">https://doi.org/10.1016/j.plaphy.2020.08.042</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Arif</surname>
							<given-names>Y.</given-names>
						</name>
						<name>
							<surname>Singh</surname>
							<given-names>P.</given-names>
						</name>
						<name>
							<surname>Siddiqui</surname>
							<given-names>H.</given-names>
						</name>
						<name>
							<surname>Bajguz</surname>
							<given-names>A.</given-names>
						</name>
						<name>
							<surname>Hayat</surname>
							<given-names>S</given-names>
						</name>
					</person-group>
					<article-title>Salinity induced physiological and biochemical changes in plants: An omic approach towards salt stress tolerance</article-title>
					<source>Plant Physiology and Biochemistry</source>
					<volume>156</volume>
					<fpage>64</fpage>
					<lpage>77</lpage>
					<year>2020</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.plaphy.2020.08.042">https://doi.org/10.1016/j.plaphy.2020.08.042</ext-link>
				</element-citation>
			</ref>
			<ref id="B39">
				<label>[39]</label>
				<mixed-citation>[39] Queiroz, G.C.M., Medeiros, J.F., Silva, R.R., et al., Growth, solute accumulation, and ion distribution in sweet sorghum under salt and drought stresses in a Brazilian Potiguar Semiarid Area. Agriculture, 13(4), art. 803, 2023. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3390/agriculture13040803">https://doi.org/10.3390/agriculture13040803</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Queiroz</surname>
							<given-names>G.C.M.</given-names>
						</name>
						<name>
							<surname>Medeiros</surname>
							<given-names>J.F.</given-names>
						</name>
						<name>
							<surname>Silva</surname>
							<given-names>R.R.</given-names>
						</name>
						<etal/>
					</person-group>
					<article-title>Growth, solute accumulation, and ion distribution in sweet sorghum under salt and drought stresses in a Brazilian Potiguar Semiarid Area</article-title>
					<source>Agriculture</source>
					<volume>13</volume>
					<issue>4</issue>
					<comment>art. 803</comment>
					<year>2023</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.3390/agriculture13040803">https://doi.org/10.3390/agriculture13040803</ext-link>
				</element-citation>
			</ref>
			<ref id="B40">
				<label>[40]</label>
				<mixed-citation>[40] Challabathula, D., Analin, B., Mohanan, A. and Bakka, K., Differential modulation of photosynthesis, ROS and antioxidant enzyme activities in stress-sensitive and-tolerant rice cultivars during salinity and drought upon restriction of COX and AOX pathways of mitochondrial oxidative electron transport. Journal of Plant Physiology, 268, art. 153583, 2022. DOI: <ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.jplph.2021.153583">https://doi.org/10.1016/j.jplph.2021.153583</ext-link>
				</mixed-citation>
				<element-citation publication-type="journal">
					<person-group person-group-type="author">
						<name>
							<surname>Challabathula</surname>
							<given-names>D.</given-names>
						</name>
						<name>
							<surname>Analin</surname>
							<given-names>B.</given-names>
						</name>
						<name>
							<surname>Mohanan</surname>
							<given-names>A.</given-names>
						</name>
						<name>
							<surname>Bakka</surname>
							<given-names>K</given-names>
						</name>
					</person-group>
					<article-title>Differential modulation of photosynthesis, ROS and antioxidant enzyme activities in stress-sensitive and-tolerant rice cultivars during salinity and drought upon restriction of COX and AOX pathways of mitochondrial oxidative electron transport</article-title>
					<source>Journal of Plant Physiology</source>
					<volume>268</volume>
					<comment>art. 153583</comment>
					<year>2022</year>
					<ext-link ext-link-type="uri" xlink:href="https://doi.org/10.1016/j.jplph.2021.153583">https://doi.org/10.1016/j.jplph.2021.153583</ext-link>
				</element-citation>
			</ref>
		</ref-list>
		<fn-group>
			<fn fn-type="other" id="fn0">
				<label>How to cite:</label>
				<p> de Sousa, L.V., da Silva, R.R., de Souza, M.V.P., de Queiroz, G.C.M., Clemente, M.I.B. and de Medeiros, J.F. Effects of saline and water stress on sweet sorghum. DYNA, 91(231), pp. 69-75, January - March, 2024.</p>
			</fn>
		</fn-group>
		<fn-group>
			<fn fn-type="other" id="fn1">
				<label>L.V. Sousa</label>
				<p><bold>,</bold> is a BSc. in Agronomy in 2016, from the Federal Rural University of the Semi-Arid (UFERSA), Mossoró, Brazil. MSc. in Agronomy in 2019, from the Federal University of Paraiba (UFPB), Areia, Brazil, and PhD. in Phytotechnics from the UFERSA Mossoró, Brazil. He has experience in research related to salt and water stress in plants, water and soil conservation and salinity control in agriculture. ORCID: 0000-0001-5846-3399</p>
			</fn>
			<fn fn-type="other" id="fn2">
				<label>R.R. Silva</label>
				<p><bold>,</bold> is a BSc. in Agronomy in 2018, from the Bahia State University (UNEB), Juazeiro, Brazil. MSc. in Soil and Water Management in 2021, from the Federal Rural University of the Semi-Arid (UFERSA), Mossoró, Brazil, and is an student PhD. in Soil and Water Management at UFERSA. Works in the area of agronomy, with emphasis on agrometeorology, irrigation and salinity management. ORCID: 0000-0001-7239-0990</p>
			</fn>
			<fn fn-type="other" id="fn3">
				<label>M.V.P. Souza</label>
				<p><bold>,</bold> is a BSc. in Agronomy in 2019, from the University of International Integration of Afro-Brazilian Lusophony (UNILAB), Redenção, Brazil. MSc. in Phytotechnics in 2021, from the Federal Rural University of the Semi-Arid (UFERSA), Mossoró, Brazil, and is a student PhD. in Agricultural Engineering at Federal University of Ceará (UFC), Fortaleza, Brazil. He has experience in the areas of irrigation, nutrition, salinity of fertilizers in cultivated plants. ORCID: 0000-0003-3316-6093</p>
			</fn>
			<fn fn-type="other" id="fn4">
				<label>G.C.M. Queiroz</label>
				<p><bold>,</bold> is a BSc. in Agricultural and Environmental Engineering from the Federal Rural University of the Semi-Arid (UFERSA), Mossoró, Brazil in 2020, a MSc. in Phytotechnics from the UFERSA, 2023 and is a student PhD. in Phytotechnics from the UFERSA. Has experience in the areas of nutrition, irrigation and salinity in sorghum and garlic crops. ORCID: 0000-0003-0794-8729</p>
			</fn>
			<fn fn-type="other" id="fn5">
				<label>M.I.B. Clemente</label>
				<p><bold>,</bold> is a BSc. in Environmental Management in 2015, from the Rio Grande do Norte State University (UERN), Mossoró, Brazil. MSc. in Soil and Water Management in 2021, from the Federal Rural University of the Semi-Arid (UFERSA), Mossoró, Brazil, and is a student PhD. in Soil and Water Management from the UFERSA. Conducts research on the importance of using sustainable technologies to recover degraded areas, using the phytoremediation technique. ORCID: 0000-0002-2869-1478</p>
			</fn>
			<fn fn-type="other" id="fn6">
				<label>J.F. Medeiros</label>
				<p><bold>,</bold> is BSc. in Agronomy in 1985, from the Higher School of Agriculture of Mossoró (ESAM), Brazil. MSc. in Agricultural Engineering in 1992, from the Federal University of Paraiba (UFPB), Brazil, and PhD. in Agronomy in 1998, from the University of São Paulo (USP), Brazil. He is currently an agronomist at the Federal Rural University of the Semi-Arid (UFERSA), CNPq Researcher IA, permanent professor of the postgraduate programs in Phytotechnics and of the soil and water management at UFERSA, where he is leader of the research group &quot;Water and soil management in irrigated agriculture&quot;. He has experience in the field of Agricultural Engineering, with an emphasis on Irrigation and Drainage, acting mainly on the following themes: salinity, fertigation and irrigation management. ORCID: 0000-0003-1202-8783</p>
			</fn>
		</fn-group>
	</back>
</article>