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纳米缩口装置,通过电动力学平衡实现生理介质中蛋白质的快速预浓缩。

Nano-constriction device for rapid protein preconcentration in physiological media through a balance of electrokinetic forces.

机构信息

Electrical & Computer Engineering, University of Virginia, Charlottesville, VA, USA.

出版信息

Electrophoresis. 2012 Jul;33(13):1958-66. doi: 10.1002/elps.201100707.

Abstract

We describe a methodology to steeply enhance streptavidin protein preconcentration within physiological media over that achieved by negative dielectrophoresis (NDEP) through utilizing a DC offset to the AC field at nanoscale constriction gap devices. Within devices containing approximately 50-nm constriction gaps, we find that the addition of a critical DC field offset (1.5 V/cm) to the NDEP condition (∼200 V(pp) /cm at 1 MHz) results in an exponentially enhanced extent of protein depletion across the device to cause a rapid and steeply rising degree of protein preconcentration. Under these conditions, an elliptical-shaped protein depletion zone that is extended along the device centerline axis forms instantaneously around the constrictions to result in protein preconcentration along the constriction sidewall direction. Through a potential energy diagram to describe the electrokinetic force balance across the device, we find that the potential energy barrier due to NDEP is gradually tilted upon addition of DC fields, to cause successively steeper potential wells along the sidewall direction for devices containing smaller constriction gaps. Hence, for approximately 50-nm constriction gaps at a critical DC field, the ensuing narrow and deep potential energy wells enable steep protein preconcentration, due to depletion over an exponentially enhanced extent across the device.

摘要

我们描述了一种方法,通过在纳米尺度的缩颈间隙装置中对交流场施加直流偏置,来极大地提高生理介质中链霉亲和素蛋白的预浓缩程度,超过负介电泳(NDEP)所能达到的程度。在包含约 50nm 缩颈间隙的装置中,我们发现,在 NDEP 条件(在 1MHz 时约为 200V(pp)/cm)下,添加一个临界直流场偏置(1.5V/cm),会导致蛋白在整个装置中的耗尽程度呈指数级增强,从而导致蛋白预浓缩的快速和陡峭上升。在这些条件下,一个椭圆形的蛋白耗尽区会在缩颈处沿装置中心线轴瞬间形成,从而导致蛋白在缩颈侧壁方向上的预浓缩。通过一个描述跨装置的电动力量平衡的势能图,我们发现,在施加直流场后,由于 NDEP 的势能障碍逐渐倾斜,导致含有较小缩颈间隙的装置沿着侧壁方向的势能阱变得越来越陡。因此,对于大约 50nm 的缩颈间隙和临界直流场,随后的狭窄而深的势能阱使得蛋白能够进行陡峭的预浓缩,这是由于整个装置的耗尽程度呈指数级增强所致。

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