纳米孔
回转半径
钙调蛋白
化学物理
分子动力学
生物物理学
分子
化学
振幅
螺旋(腹足类)
高分子
材料科学
纳米技术
钙
计算化学
物理
聚合物
生物化学
蜗牛
有机化学
生物
量子力学
生态学
作者
Pradeep Waduge,Rui Hu,Prasad Bandarkar,Hirohito Yamazaki,Benjamin Cressiot,Qing Zhao,Paul C. Whitford,Meni Wanunu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2017-05-04
卷期号:11 (6): 5706-5716
被引量:238
标识
DOI:10.1021/acsnano.7b01212
摘要
Proteins are structurally dynamic macromolecules, and it is challenging to quantify the conformational properties of their native state in solution. Nanopores can be efficient tools to study proteins in a solution environment. In this method, an electric field induces electrophoretic and/or electro-osmotic transport of protein molecules through a nanopore slightly larger than the protein molecule. High-bandwidth ion current measurement is used to detect the transit of each protein molecule. First, our measurements reveal a correlation between the mean current blockade amplitude and the radius of gyration for each protein. Next, we find a correlation between the shape of the current signal amplitude distributions and the protein fluctuation as obtained from molecular dynamics simulations. Further, the magnitude of the structural fluctuations, as probed by experiments and simulations, correlates with the ratio of α-helix to β-sheet content. We highlight the resolution of our measurements by resolving two states of calmodulin, a canonical protein that undergoes a conformational change in response to calcium binding.
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