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Bioinspired graphene nanopores with voltage-tunable ion selectivity for Na~+ and K~+

机译:生物启发的石墨烯纳米孔,对Na〜+和K〜+具有电压可调的离子选择性

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Biological protein channels have many remarkable properties such as gating, high permeability, and selectivity, which have motivated researchers to mimic their functions for practical applications. Herein, using molecular dynamics simulations, we design bioinspired nanopores in graphene sheets that can discriminate between Na~+ and K~+, two ions with very similar properties. The simulation results show that, under transmembrane voltage bias, a nanopore containing four carbonyl groups to mimic the selectivity filter of the KcsA K~+ channel preferentially conducts K~+ over Na~+. A nanopore functionalized by four negatively charged carboxylate groups to mimic the selectivity filter of the NavAb Na ~+ channel selectively binds Na~+ but transports K ~+ over Na~+. Surprisingly, the ion selectivity of the smaller diameter pore containing three carboxylate groups can be tuned by changing the magnitude of the applied voltage bias. Under lower voltage bias, it transports ions in a single-file manner and exhibits Na~+ selectivity, dictated by the knock-on ion conduction and selective blockage by Na~+. Under higher voltage bias, the nanopore is K~+- selective, as the blockage by Na~+ is destabilized and the stronger affinity for carboxylate groups slows the passage of Na~+ compared with K~+. The computational design of biomimetic ion-selective nanopores helps to understand the mechanisms of selectivity in biological ion channels and may also lead to a wide range of potential applications such as sensitive ion sensors, nanofiltration membranes for Na~+/K~+ separation, and voltage-tunable nanofluidic devices.
机译:生物蛋白质通道具有许多非凡的特性,例如门控,高渗透性和选择性,这些特性促使研究人员模仿其功能以用于实际应用。本文中,我们使用分子动力学模拟,在石墨烯片中设计了生物启发性的纳米孔,可以区​​分Na〜+和K〜+,这两种离子的性质非常相似。仿真结果表明,在跨膜偏压下,一个模拟四个KcsA K〜+通道选择性过滤器的含四个羰基的纳米孔比Na〜+优先传导K〜+。被四个带负电荷的羧酸盐基团官能化的纳米孔,以模仿NavAb Na +通道的选择性过滤器,选择性地结合Na +,但在Na +上转运K〜+。出人意料的是,可以通过改变施加的电压偏置的幅度来调整包含三个羧酸根基团的小直径孔的离子选择性。在较低的偏压下,它以单脉冲方式传输离子并表现出Na〜+选择性,这取决于敲除离子的传导和Na〜+的选择性阻滞。在较高的偏压下,纳米孔具有K〜+-选择性,因为Na〜+的阻滞作用不稳定,并且与羧酸根的亲和力强,与Na〜+相比,Na〜+的通道更慢。仿生离子选择性纳米孔的计算设计有助于理解生物离子通道中选择性的机理,还可能导致广泛的潜在应用,例如灵敏的离子传感器,用于Na〜+ / K〜+分离的纳滤膜和电压可调纳米流体设备。

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