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Adsorption of DNA to Mica Mediated by Divalent Counterions: A Theoretical and Experimental Study

机译:二价抗衡离子介导的云母对DNA的吸附:理论和实验研究

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摘要

The adsorption of DNA molecules onto a flat mica surface is a necessary step to perform atomic force microscopy studies of DNA conformation and observe DNA-protein interactions in physiological environment. However, the phenomenon that pulls DNA molecules onto the surface is still not understood. This is a crucial issue because the DNA/surface interactions could affect the DNA biological functions. In this paper we develop a model that can explain the mechanism of the DNA adsorption onto mica. This model suggests that DNA attraction is due to the sharing of the DNA and mica counterions. The correlations between divalent counterions on both the negatively charged DNA and the mica surface can generate a net attraction force whereas the correlations between monovalent counterions are ineffective in the DNA attraction. DNA binding is then dependent on the fractional surface densities of the divalent and monovalent cations, which can compete for the mica surface and DNA neutralizations. In addition, the attraction can be enhanced when the mica has been pretreated by transition metal cations (Ni2+, Zn2+). Mica pretreatment simultaneously enhances the DNA attraction and reduces the repulsive contribution due to the electrical double-layer force. We also perform end-to-end distance measurement of DNA chains to study the binding strength. The DNA binding strength appears to be constant for a fixed fractional surface density of the divalent cations at low ionic strength (I < 0.1 M) as predicted by the model. However, at higher ionic strength, the binding is weakened by the screening effect of the ions. Then, some equations were derived to describe the binding of a polyelectrolyte onto a charged surface. The electrostatic attraction due to the sharing of counterions is particularly effective if the polyelectrolyte and the surface have nearly the same surface charge density. This characteristic of the attraction force can explain the success of mica for performing single DNA molecule observation by AFM. In addition, we explain how a reversible binding of the DNA molecules can be obtained with a pretreated mica surface.
机译:将DNA分子吸附到平坦的云母表面是进行DNA构象的原子力显微镜研究并观察生理环境中DNA-蛋白质相互作用的必要步骤。然而,仍然不了解将DNA分子拉到表面上的现象。这是一个至关重要的问题,因为DNA /表面相互作用可能会影响DNA的生物学功能。在本文中,我们开发了一个模型,该模型可以解释DNA吸附到云母上的机理。该模型表明DNA的吸引是由于DNA和云母抗衡离子的共享。带负电荷的DNA和云母表面上的二价抗衡离子之间的相关性可以产生净吸引力,而单价抗衡离子之间的相关性对DNA吸引无效。然后,DNA结合取决于二价和单价阳离子的部分表面密度,它们可以竞争云母表面和DNA中和作用。另外,当用过渡金属阳离子(Ni 2 + ,Zn 2 + )对云母进行预处理时,可以增强吸引力。云母预处理同时增强了DNA的吸引力,并由于双电层的作用力降低了排斥作用。我们还进行了DNA链的端到端距离测量,以研究结合强度。如模型所预测的,在低离子强度(I <0.1 M)下,对于二价阳离子的固定部分表面密度,DNA结合强度似乎是恒定的。但是,在较高的离子强度下,结合会因离子的屏蔽作用而减弱。然后,导出了一些方程式来描述聚电解质在带电表面上的结合。如果聚电解质和表面具有几乎相同的表面电荷密度,则由于抗衡离子的共享而引起的静电吸引特别有效。吸引力的这一特性可以解释云母通过AFM进行单DNA分子观察的成功。另外,我们解释了如何通过预处理的云母表面获得DNA分子的可逆结合。

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