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Effect of Conformational Entropy on the Nanomechanics of Microcantilever-Based Single-Stranded DNA Sensors

机译:构象熵对基于微悬臂梁的单链DNA传感器的纳米力学的影响。

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An entropy-controlled bending mechanism is presented to study the nanomechanics of microcantilever-based single-stranded DNA (ssDNA) sensors. First; the conformational free energy of the ssDNA layer is given with an improved scaling theory of thermal blobs considering the curvature effect; and the mechanical energy of the non-biological layer is described by Zhang’s two-variable method for laminated beams. Then; an analytical model for static deflections of ssDNA microcantilevers is formulated by the principle of minimum energy. The comparisons of deflections predicted by the proposed model; Utz–Begley’s model and Hagan’s model are also examined. Numerical results show that the conformational entropy effect on microcantilever deflections cannot be ignored; especially at the conditions of high packing density or long chain systems; and the variation of deflection predicted by the proposed analytical model not only accords with that observed in the related experiments qualitatively; but also appears quantitatively closer to the experimental values than that by the preexisting models. In order to improve the sensitivity of static-mode biosensors; it should be as small as possible to reduce the substrate stiffness.
机译:提出了一种熵控制的弯曲机制,以研究基于微悬臂梁的单链DNA(ssDNA)传感器的纳米力学。第一;考虑到曲率效应,利用改进的热斑点定标理论给出了ssDNA层的构象自由能。而非生物层的机械能用张的二重层梁法来描述。然后;根据最小能量原理,建立了ssDNA微悬臂梁静态变形的解析模型。所提出的模型预测的挠度的比较;还检查了Utz–Begley模型和Hagan模型。数值结果表明,构象熵对微悬臂梁挠度的影响不容忽视。特别是在高堆积密度或长链系统的条件下;所提出的分析模型预测的挠度变化不仅与相关实验定性相符。但是在数量上也比以前的模型更接近实验值。为了提高静态模式生物传感器的灵敏度;它应尽可能小以降低基材刚度。

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