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Bioconjugation techniques for microfluidic biosensors

机译:微流控生物传感器的生物共轭技术

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We have evaluated five bioconjugation chemistries for immobilizing DNA onto silicon substrates for microfluidic biosensing applications. Conjugation by organosilanes is compared with linkage by carbonyldiimidazole (CDI) activation of silanol groups and utilization of dendrimers. Chemistries were compared in terms of immobilization and hybridization density, stability under microfluidic flow-induced shear stress, and stability after extended storage in aqueous solutions. Conjugation by dendrimer tether provided the greatest hybridization efficiency; however, conjugation by aminosilane treated with glutaraldehyde yielded the greatest immobilization and hybridization densities, as well as enhanced stability to both shear stress and extended storage in an aqueous environment. Direct linkage by CDI activation provided sufficient immobilization and hybridization density and represents a novel DNA bioconjugation strategy. Although these chemistries were evaluated for use in microfluidic biosensors, the results provide meaningful insight to a number of nanobiotechnology applications for which microfluidic devices require surface biofunctionalization, for example vascular prostheses and implanted devices.
机译:我们已经评估了将DNA固定在硅基质上用于微流控生物传感应用的五个生物共轭化学。将有机硅烷的共轭与羰基二咪唑(CDI)活化硅烷醇基团和利用树枝状聚合物的键合进行了比较。比较了化学方法的固定化和杂交密度,在微流体流动引起的剪切应力下的稳定性以及在水溶液中长期储存后的稳定性。树枝状聚合物链的缀合提供了最大的杂交效率。然而,用戊二醛处理的氨基硅烷偶联产生最大的固定化和杂交密度,并增强了对剪切应力的稳定性和在水性环境中的长期储存。通过CDI激活的直接连接提供了足够的固定化和杂交密度,代表了一种新颖的DNA生物结合策略。尽管对这些化学方法进行了评估以用于微流控生物传感器,但结果为微流体装置需要表面生物功能化的许多纳米生物技术应用提供了有意义的见解,例如血管假体和植入装置。

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