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Nanomechanical behaviors of microcantilever-based single-stranded DNA chips induced by counterion osmotic effects

机译:反离子渗透作用诱导的基于微悬臂梁的单链DNA芯片的纳米力学行为

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Experiments show that deflections of microcantilever-DNA chip can be induced by many factors, such as grafting density, hybridization efficiency, concentration, length and sequence of DNA molecules, buffer salt concentration, time, and temperature variation. However, there are few theoretical works on microcantilever-DNA chips. The present paper is aimed to study the influence of counterion effects of single-stranded DNA (ssDNA) polyelectrolyte solution on the nanomechanical behaviors of microcantilever-based ssDNA chips during packing process. First, the effect of osmotic pressure induced by ingress of counterions into DNA brush structures is studied with Hagan’s model for a cylindrical polyelectrolyte brush system on the basis of Poisson-Boltzmann distribution hypothesis. Second, Zhang’s two-variable method for a laminated cantilever is used to formulate a four-layer energy model for ssDNA chips with weak interactions. Third, the influence of grafting density, ssDNA chain length, and salt concentration on packing deflection is investigated using the principle of minimum energy. The predictive tendency is qualitatively similar to those observed in some related ssDNA chip experiments. The difference between the four-layer model and the simplified two-layer model for ssDNA chips is also discussed.
机译:实验表明,微悬臂梁DNA芯片的变形可以由多种因素引起,例如接枝密度,杂交效率,浓度,DNA分子的长度和序列,缓冲盐浓度,时间和温度变化。然而,关于微悬臂DNA芯片的理论研究很少。本文旨在研究单链DNA(ssDNA)聚电解质溶液的抗衡离子效应对基于微悬臂的ssDNA芯片在包装过程中纳米力学行为的影响。首先,在Poisson-Boltzmann分布假设的基础上,使用Hagan的圆柱状聚电解质刷系统的模型研究了由抗衡离子进入DNA刷结构引起的渗透压的影响。其次,使用张的叠层悬臂的两变量方法来建立相互作用较弱的ssDNA芯片的四层能量模型。第三,利用最小能量原理研究了接枝密度,ssDNA链长和盐浓度对堆积变形的影响。该预测趋势在质量上与某些相关的ssDNA芯片实验中观察到的趋势相似。还讨论了ssDNA芯片的四层模型和简化的两层模型之间的区别。

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