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首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >An integrated reaction-transport model for DNA surface hybridization: implications for DNA microarrays.
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An integrated reaction-transport model for DNA surface hybridization: implications for DNA microarrays.

机译:DNA表面杂交的集成反应运输模型:对DNA芯片的影响。

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摘要

DNA microarrays have the potential to revolutionize medical diagnostics and development of individualized medical treatments. However, accurate quantification of scantily expressed genes and precise measurement of small differences between different treatments is not currently feasible. A major challenge remains the understanding of physicochemical processes and rate-limiting steps of hybridization of complex mixtures of DNA targets on immobilized DNA probes. To this end, we developed a mathematical model to describe the effects of molecular orientation and transport on the kinetics and efficiency of hybridization. First, we calculated the hybridization rate constant based on the distance between the complementary nucleotides of the target and probe DNA. The surface reaction rate was then integrated with translational and rotational transport of target DNA to the surface to calculate the kinetics of hybridization. Our model predicts that hybridization of short DNA targets is diffusion limited but long targets are kinetically limited. In addition, for DNA targets with wide size distribution, it may be difficult to distinguish between specific binding of long targets from nonspecific binding of short ones. Our model provides novel insight into the process of DNA hybridization and suggests operating conditions to improve the sensitivity and accuracy of microarray experiments.
机译:DNA微阵列具有革新医学诊断和开发个性化医学疗法的潜力。但是,目前尚无法准确定量表达表达不足的基因,并精确测量不同治疗方法之间的细微差别。一个主要的挑战仍然是对物理化学过程的理解以及固定化DNA探针上DNA靶标的复杂混合物杂交的限速步骤。为此,我们开发了一个数学模型来描述分子取向和转运对杂交动力学和效率的影响。首先,我们根据靶标和探针DNA互补核苷酸之间的距离计算杂交速率常数。然后将表面反应速率与目标DNA到表面的平移和旋转运输相结合,以计算杂交的动力学。我们的模型预测,短DNA靶的杂交受扩散限制,但长靶受动力学限制。另外,对于具有宽尺寸分布的DNA靶,可能难以区分长靶的特异性结合与短靶的非特异性结合。我们的模型提供了对DNA杂交过程的新颖见解,并提出了可改善微阵列实验灵敏度和准确性的操作条件。

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