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Computational Modeling and Simulation of Microfluidic Biochips for Parallel Biomolecular Synthesis

机译:平行生物分子合成微流体生物芯片的计算建模与仿真

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In this study, a novel microfluidics based biochip has been developed by the aid of analytical modeling and numerical simulation efforts for the purpose of massively parallel oligonucleotude-DNA (oDNA) syntheses. The microfluidic biochip consists of thousands of reaction sites interconnected by micro-channels and can be used as micro-reactors for various biochemical processes simultaneously. The impacts and implications of the efficiencies of each oDNA synthesis step during repeated synthesis cycles have been evaluated to improve the synthesis yield of final full-length products. The results from analytical model indicate the deprotection step during the oDNA synthesis cycle is a vital process for ensuring the high yield of full-length products. Numerical simulation results further reveal that the confinement of various chemical reagents within each reaction site can be well-controlled to minimize cross contamination from the neighboring reaction sites by the design of current microfluidic biochip.
机译:在本研究中,通过分析建模和数值模拟工作来开发了一种基于微流体基于的Biochip,用于巨大平行的寡核苷酸DNA(ODNA)合成。微流体Biochip由微通道相互互连的数千个反应位点组成,并且可以同时使用各种生物化学过程的微反应器。已经评估了在重复的合成循环期间对每种ODNA合成步骤的效率的影响和影响,以改善最终全长产物的合成产量。来自分析模型的结果表明oDNA合成循环期间的脱保护步骤是确保全长产品的高产率的重要过程。数值模拟结果进一步揭示了可以通过设计的微流体Biochip设计来局限地控制每个反应位点内各种化学试剂的限制,以使来自相邻反应部位的交叉污染。

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