Publicado

2020-01-01

Immobilization of DNA probes on a high frequency piezoelectric biosensor

Inmovilización de sondas de ADN en un biosensor de alta frecuencia

DOI:

https://doi.org/10.15446/dyna.v87n212.82309

Palabras clave:

DNA, self assembled monolayers SAM, biosensors, quartz crystal microbalances QCM, high frequency HFF QCM, genosensor (en)
ADN, monocapas autoensambladas, biosensores, microbalanza de cristal de cuarzo, alta frecuencia, genosensor (es)

Autores/as

In recent years, researchers have taken to biosensors as effective tools for detection due to their portability, low-cost, fast response, and practicality. Piezoelectricity gave way to quartz crystal microbalances (QCM), of which high-frequency QCMs (HFF-QCM 100MHz) are still being researched. In this paper, we use DNA immobilization on a HFF-QCM via self-assembled monolayers (SAM) technique. Immobilization was initially verified with ATR-FTIR. Then, DNA was immobilized in real time on the HFF-QCM crystals. A variation in the phase of the signal suggests fixation of DNA to the surface, in accordance with ATR-FTIR results. A density of 629 ng/cm2 was computed. Also, a positive correlation between immobilized DNA and DNA concentration, and the appearance of a saturation point between 1 and 5 μM were shown after analysis of different DNA concentrations.

En los últimos años, el interés en los biosensores ha aumentado ya que son efectivos, pueden ser portables y de bajo costo, tienen respuesta rápida y son de fácil uso. El fenómeno piezoeléctrico dio lugar a microbalanzas de cristal de cuarzo (QCM); QCM de alta frecuencia (HFF-QCM 100MHz) su comportamiento característico aún está en investigación. Se analizó la inmovilización de ADN para HFF-QCM. La inmovilización de ADN conjugado en cristales de cuarzo recubiertos de oro se realizó mediante monocapas autoensambladas (SAM). Luego, el ADN se inmovilizó en tiempo real en el HFF-QCM en cristales. La variación en la fase de la señal sugiere que el ADN se fijó efectivamente a la superficie, lo que es consistente con los resultados de ATR-FTIR. Se calculó una densidad de 629 ng /cm2. Finalmente, el análisis de diferentes concentraciones de ADN en tiempo real, muestra una correlación positiva entre el ADN inmovilizado y la concentración de ADN, y la aparición de un punto de saturación entre 1 y 5 μM.

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Cómo citar

IEEE

[1]
C. Ortiz Monsalve, J. M. Guerra González, y M. Jaramillo Grajales, «Immobilization of DNA probes on a high frequency piezoelectric biosensor», DYNA, vol. 87, n.º 212, pp. 163–168, ene. 2020.

ACM

[1]
Ortiz Monsalve, C., Guerra González, J.M. y Jaramillo Grajales, M. 2020. Immobilization of DNA probes on a high frequency piezoelectric biosensor. DYNA. 87, 212 (ene. 2020), 163–168. DOI:https://doi.org/10.15446/dyna.v87n212.82309.

ACS

(1)
Ortiz Monsalve, C.; Guerra González, J. M.; Jaramillo Grajales, M. Immobilization of DNA probes on a high frequency piezoelectric biosensor. DYNA 2020, 87, 163-168.

APA

Ortiz Monsalve, C., Guerra González, J. M. & Jaramillo Grajales, M. (2020). Immobilization of DNA probes on a high frequency piezoelectric biosensor. DYNA, 87(212), 163–168. https://doi.org/10.15446/dyna.v87n212.82309

ABNT

ORTIZ MONSALVE, C.; GUERRA GONZÁLEZ, J. M.; JARAMILLO GRAJALES, M. Immobilization of DNA probes on a high frequency piezoelectric biosensor. DYNA, [S. l.], v. 87, n. 212, p. 163–168, 2020. DOI: 10.15446/dyna.v87n212.82309. Disponível em: https://revistas.unal.edu.co/index.php/dyna/article/view/82309. Acesso em: 8 mar. 2026.

Chicago

Ortiz Monsalve, Camilo, Jorge Mario Guerra González, y Marisol Jaramillo Grajales. 2020. «Immobilization of DNA probes on a high frequency piezoelectric biosensor». DYNA 87 (212):163-68. https://doi.org/10.15446/dyna.v87n212.82309.

Harvard

Ortiz Monsalve, C., Guerra González, J. M. y Jaramillo Grajales, M. (2020) «Immobilization of DNA probes on a high frequency piezoelectric biosensor», DYNA, 87(212), pp. 163–168. doi: 10.15446/dyna.v87n212.82309.

MLA

Ortiz Monsalve, C., J. M. Guerra González, y M. Jaramillo Grajales. «Immobilization of DNA probes on a high frequency piezoelectric biosensor». DYNA, vol. 87, n.º 212, enero de 2020, pp. 163-8, doi:10.15446/dyna.v87n212.82309.

Turabian

Ortiz Monsalve, Camilo, Jorge Mario Guerra González, y Marisol Jaramillo Grajales. «Immobilization of DNA probes on a high frequency piezoelectric biosensor». DYNA 87, no. 212 (enero 1, 2020): 163–168. Accedido marzo 8, 2026. https://revistas.unal.edu.co/index.php/dyna/article/view/82309.

Vancouver

1.
Ortiz Monsalve C, Guerra González JM, Jaramillo Grajales M. Immobilization of DNA probes on a high frequency piezoelectric biosensor. DYNA [Internet]. 1 de enero de 2020 [citado 8 de marzo de 2026];87(212):163-8. Disponible en: https://revistas.unal.edu.co/index.php/dyna/article/view/82309

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5. Aseel Alnaimi, Ammar Al-Hamry, Yahia Makableh, Anurag Adiraju, Olfa Kanoun. (2022). Gold Nanoparticles-MWCNT Based Aptasensor for Early Diagnosis of Prostate Cancer. Biosensors, 12(12), p.1130. https://doi.org/10.3390/bios12121130.

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