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Role of the intracellular cavity in potassium channel conductivity.细胞内腔在钾通道电导率中的作用。
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A storable encapsulated bilayer chip containing a single protein nanopore.一种包含单个蛋白质纳米孔的可储存封装双层芯片。
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Application of the Poisson-Nernst-Planck theory with space-dependent diffusion coefficients to KcsA.将具有空间相关扩散系数的泊松-能斯特-普朗克理论应用于KcsA通道。
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5
Role of the amino latch of staphylococcal alpha-hemolysin in pore formation: a co-operative interaction between the N terminus and position 217.葡萄球菌α-溶血素的氨基锁在孔形成中的作用:N端与第217位之间的协同相互作用。
J Biol Chem. 2006 Jan 27;281(4):2195-204. doi: 10.1074/jbc.M510841200. Epub 2005 Oct 14.
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Poisson-Nernst-Planck theory approach to the calculation of current through biological ion channels.用于计算通过生物离子通道电流的泊松-能斯特-普朗克理论方法。
IEEE Trans Nanobioscience. 2005 Mar;4(1):81-93. doi: 10.1109/tnb.2004.842495.
7
Imaging alpha-hemolysin with molecular dynamics: ionic conductance, osmotic permeability, and the electrostatic potential map.利用分子动力学对α-溶血素进行成像:离子电导、渗透通透性和静电势图。
Biophys J. 2005 Jun;88(6):3745-61. doi: 10.1529/biophysj.104.058727. Epub 2005 Mar 11.
8
Ion permeation through the alpha-hemolysin channel: theoretical studies based on Brownian dynamics and Poisson-Nernst-Plank electrodiffusion theory.离子通过α-溶血素通道的渗透:基于布朗动力学和泊松-能斯特-普朗克电扩散理论的理论研究。
Biophys J. 2004 Oct;87(4):2299-309. doi: 10.1529/biophysj.104.044008.
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Electrostatic influence on ion transport through the alphaHL channel.静电对离子通过α-溶血素通道运输的影响。
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10
Prolonged residence time of a noncovalent molecular adapter, beta-cyclodextrin, within the lumen of mutant alpha-hemolysin pores.一种非共价分子适配体β-环糊精在突变型α-溶血素孔腔内的停留时间延长。
J Gen Physiol. 2001 Nov;118(5):481-94. doi: 10.1085/jgp.118.5.481.

基于模型的六聚体状态下α-溶血素结构预测。

Model-based prediction of the alpha-hemolysin structure in the hexameric state.

作者信息

Furini Simone, Domene Carmen, Rossi Michele, Tartagni Marco, Cavalcanti Silvio

机构信息

Department of Electronics, Computer Science and Systems, University of Bologna, Bologna, Italy.

出版信息

Biophys J. 2008 Sep;95(5):2265-74. doi: 10.1529/biophysj.107.127019. Epub 2008 May 23.

DOI:10.1529/biophysj.107.127019
PMID:18502806
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2517045/
Abstract

The alpha-hemolysin toxin self-assembles in lipid bilayers to form water-filled pores. In recent years, alpha-hemolysin has received great attention, mainly due to its possible usage as a sensing element. We measured the ion currents through single alpha-hemolysin channels and confirmed the presence of two different subpopulations of channels with conductance levels of 465 +/- 30 pS and 280 +/- 30 pS. Different oligomerization states could be responsible for these two conductances. In fact, a heptameric structure of the channel was revealed by x-ray crystallography, whereas atomic force microscopy revealed a hexameric structure. Due to the low resolution of atomic force microscopy the atomic details of the hexameric structure are still unknown, and are here predicted by computational methods. Several possible structures of the hexameric channel were defined, and were simulated by molecular dynamics. The conductances of these channel models were computed by a numerical method based on the Poisson-Nernst-Planck electrodiffusion theory, and the values were compared to experimental data. In this way, we identified a model of the alpha-hemolysin hexameric state with conductance characteristics consistent with the experimental data. Since the oligomerization state of the channel may affect its behavior as a molecular sensor, knowing the atomic structure of the hexameric state will be useful for biotechnological applications of alpha-hemolysin.

摘要

α-溶血素毒素在脂质双层中自组装形成充满水的孔道。近年来,α-溶血素受到了极大关注,主要因其有可能用作传感元件。我们测量了通过单个α-溶血素通道的离子电流,并确认存在两种不同亚群的通道,其电导水平分别为465±30 pS和280±30 pS。不同的寡聚化状态可能导致这两种电导。事实上,X射线晶体学揭示了该通道的七聚体结构,而原子力显微镜则揭示了六聚体结构。由于原子力显微镜的分辨率较低,六聚体结构的原子细节仍然未知,本文通过计算方法对其进行了预测。定义了六聚体通道的几种可能结构,并通过分子动力学进行了模拟。这些通道模型的电导通过基于泊松-能斯特-普朗克电扩散理论的数值方法计算,并将计算值与实验数据进行比较。通过这种方式,我们确定了一种α-溶血素六聚体状态的模型,其电导特性与实验数据一致。由于通道的寡聚化状态可能影响其作为分子传感器的行为,了解六聚体状态的原子结构将有助于α-溶血素的生物技术应用。