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Modeling Hybridization Kinetics of Gene Probes in a DNA Biochip Using FEMLAB

机译:使用FEMLAB对DNA生物芯片中基因探针的杂交动力学建模

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Microfluidic DNA biochips capable of detecting specific DNA sequences are useful in medical diagnostics, drug discovery, food safety monitoring and agriculture. They are used as miniaturized platforms for analysis of nucleic acids-based biomarkers. Binding kinetics between immobilized single stranded DNA on the surface and its complementary strand present in the sample are of interest. To achieve optimal sensitivity with minimum sample size and rapid hybridization, ability to predict the kinetics of hybridization based on the thermodynamic characteristics of the probe is crucial. In this study, a computer aided numerical model for the design and optimization of a flow-through biochip was developed using a finite element technique packaged software tool (FEMLAB; package included in COMSOL Multiphysics) to simulate the transport of DNA through a microfluidic chamber to the reaction surface. The model accounts for fluid flow, convection and diffusion in the channel and on the reaction surface. Concentration, association rate constant, dissociation rate constant, recirculation flow rate, and temperature were key parameters affecting the rate of hybridization. The model predicted the kinetic profile and signal intensities of eighteen 20-mer probes targeting vancomycin resistance genes (VRGs). Predicted signal intensities and hybridization kinetics strongly correlated with experimental data in the biochip (R 2 = 0.8131).
机译:能够检测特定DNA序列的微流体DNA生物芯片可用于医学诊断,药物发现,食品安全监测和农业。它们用作分析基于核酸的生物标志物的小型平台。固定在表面上的单链DNA与样品中存在的互补链之间的结合动力学令人关注。为了以最小的样本量和快速杂交获得最佳灵敏度,基于探针的热力学特性预测杂交动力学的能力至关重要。在这项研究中,使用有限元技术打包的软件工具(FEMLAB; COMSOL Multiphysics随附的软件包)开发了用于设计和优化流通式生物芯片的计算机辅助数值模型,以模拟DNA通过微流体腔室到反应表面。该模型考虑了通道内和反应表面上的流体流动,对流和扩散。浓度,缔合速率常数,解离速率常数,再循环流速和温度是影响杂交速率的关键参数。该模型预测了针对万古霉素抗性基因(VRG)的18个20-mer探针的动力学特征和信号强度。预测的信号强度和杂交动力学与生物芯片中的实验数据密切相关(R 2 = 0.8131)。

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