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首页> 外文期刊>Angewandte Chemie >Control of the Conductance of Engineered Protein Nanopores through Concerted Loop Motions
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Control of the Conductance of Engineered Protein Nanopores through Concerted Loop Motions

机译:通过协调环运动控制工程蛋白纳米孔的电导

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摘要

Protein nanopores have attracted much interest for nucleic acid sequencing, chemical sensing, and protein folding at the single molecule level. The outer membrane protein OmpG from E. coli stands out because it forms a nanopore from a single polypeptide chain. This property allows the separate engineering of each of the seven extracellular loops that control access to the pore. The longest of these loops, loop 6, has been recognized as the main gating loop that closes the pore at low pH values and opens it at high pH values. A method was devised to pin each of the loops to the embedding membrane and measure the single-pore conductances of the resulting constructs. The electrophysiological and complementary NMR measurements show that the pinning of individual loops alters the structure and dynamics of neighboring and distant loops in a correlated fashion. Pinning loop 6 generates a constitutively open pore and patterns of concerted loop motions control access to the OmpG nanopore.
机译:蛋白质纳米孔吸引了人们对核酸测序,化学传感和单分子水平蛋白质折叠的兴趣。来自大肠杆菌的外膜蛋白OmpG脱颖而出,因为它由一条多肽链形成一个纳米孔。该特性允许对控制进入孔的七个细胞外环中的每一个进行单独工程设计。这些回路中最长的回路(回路6)被认为是主要的门控回路,它在低pH值时关闭孔,在高pH值时打开孔。设计了一种方法,将每个环固定到包埋膜上,并测量所得构建体的单孔电导率。电生理和互补NMR测量表明,单个环的固定会以相关方式改变相邻环和远环的结构和动力学。固定环6会产生一个组成性的开孔,并且协调的环运动模式会控制对OmpG纳米孔的进入。

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