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本文引用的文献

1
Potassium, sodium, calcium and glutamate-gated channels: pore architecture and ligand action.钾离子、钠离子、钙离子和谷氨酸门控通道:孔道结构与配体作用
J Neurochem. 2004 Feb;88(4):782-99. doi: 10.1111/j.1471-4159.2004.02261.x.
2
Constitutive activation of the Shaker Kv channel.Shaker钾离子通道的组成性激活。
J Gen Physiol. 2003 Nov;122(5):541-56. doi: 10.1085/jgp.200308905. Epub 2003 Oct 13.
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Gating of MscL studied by steered molecular dynamics.通过引导分子动力学研究大电导机械敏感性通道(MscL)的门控。
Biophys J. 2003 Oct;85(4):2087-99. doi: 10.1016/S0006-3495(03)74637-2.
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Crystal structure of the potassium channel KirBac1.1 in the closed state.处于关闭状态的钾通道KirBac1.1的晶体结构。
Science. 2003 Jun 20;300(5627):1922-6. doi: 10.1126/science.1085028. Epub 2003 May 8.
5
X-ray structure of a voltage-dependent K+ channel.电压依赖性钾离子通道的X射线结构
Nature. 2003 May 1;423(6935):33-41. doi: 10.1038/nature01580.
6
Potassium channel gating observed with site-directed mass tagging.通过定点质量标记观察钾通道门控
Nat Struct Biol. 2003 Apr;10(4):280-4. doi: 10.1038/nsb908.
7
Opening the KcsA K+ channel: tryptophan scanning and complementation analysis lead to mutants with altered gating.打开KcsA钾离子通道:色氨酸扫描和互补分析产生门控改变的突变体。
Biochemistry. 2002 Nov 19;41(46):13653-62. doi: 10.1021/bi026393r.
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Energetics of pore opening in a voltage-gated K(+) channel.电压门控钾离子通道中孔开放的能量学
Cell. 2002 Oct 18;111(2):231-9. doi: 10.1016/s0092-8674(02)01013-9.
9
Coupling between voltage sensors and activation gate in voltage-gated K+ channels.电压门控钾离子通道中电压传感器与激活门之间的偶联。
J Gen Physiol. 2002 Nov;120(5):663-76. doi: 10.1085/jgp.20028696.
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Open-state models of a potassium channel.钾通道的开放态模型。
Biophys J. 2002 Oct;83(4):1867-76. doi: 10.1016/S0006-3495(02)73951-9.

通过向内螺旋C末端施加侧向力对KcsA钾离子通道进行计算机模拟激活。

In silico activation of KcsA K+ channel by lateral forces applied to the C-termini of inner helices.

作者信息

Tikhonov Denis B, Zhorov Boris S

机构信息

Department of Biochemistry, McMaster University, Hamilton, Ontario L8N 3Z5, Canada.

出版信息

Biophys J. 2004 Sep;87(3):1526-36. doi: 10.1529/biophysj.103.037770.

DOI:10.1529/biophysj.103.037770
PMID:15345533
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1304559/
Abstract

Crystallographic studies of K(+) channels in the closed (KcsA) and open (MthK) states suggest that Gly(99) (KcsA numbering) in the inner helices serves as a gating hinge during channel activation. However, some P-loop channels have larger residues in the corresponding position. The comparison of x-ray structures of KcsA and MthK shows that channel activation alters backbone torsions and helical H-bonds in residues 95-105. Importantly, the changes in Gly(99) are not the largest ones. This raises questions about the mechanism of conformational changes upon channel gating. In this work, we have built a model of the open KcsA using MthK as a template and simulated opening and closing of KcsA by constraining C-ends of the inner helices at a gradually changing distance from the pore axis without restraining mobility of the helices along the axis. At each imposed distance, the energy was Monte Carlo-minimized. The channel-opening and channel-closing trajectories arrived to the structures in which the backbone geometry was close to that seen in MthK and KcsA, respectively. In the channel-opening trajectory, the constraints-induced lateral forces caused kinks at midpoints of the inner helices between Val(97) and Gly(104) but did not destroy interdomain contacts, the pore helices, and the selectivity filter. The simulated activation of the Gly(99)Ala mutant yielded essentially similar results. Analysis of interresidue energies shows that the N-terminal parts of the inner helices form strong attractive contacts with the pore helices and the outer helices. The lateral forces induce kinks at the position where the helix-breaking torque is maximal and the intersegment contacts vanish. This mechanism may be conserved in different P-loop channels.

摘要

对处于关闭状态(KcsA)和开放状态(MthK)的钾离子通道进行的晶体学研究表明,内部螺旋中的甘氨酸99(以KcsA的编号为准)在通道激活过程中充当门控铰链。然而,一些P环通道在相应位置具有更大的残基。KcsA和MthK的X射线结构比较表明,通道激活会改变95 - 105位残基的主链扭转和螺旋氢键。重要的是,甘氨酸99的变化并非最大的。这就引发了关于通道门控时构象变化机制的问题。在这项工作中,我们以MthK为模板构建了开放态KcsA的模型,并通过将内部螺旋的C端与孔轴的距离逐渐改变来模拟KcsA的开放和关闭,同时不限制螺旋沿轴的移动性。在每个设定的距离下,能量通过蒙特卡罗方法进行最小化。通道开放和通道关闭轨迹分别得到了主链几何结构接近MthK和KcsA中所见结构的结构。在通道开放轨迹中,约束诱导的侧向力在缬氨酸97和甘氨酸104之间的内部螺旋中点处产生扭结,但并未破坏结构域间的接触、孔螺旋和选择性过滤器。对甘氨酸99丙氨酸突变体的模拟激活产生了基本相似的结果。残基间能量分析表明,内部螺旋的N端部分与孔螺旋和外部螺旋形成了强烈的吸引性接触。侧向力在螺旋断裂扭矩最大且段间接触消失的位置诱导扭结。这种机制可能在不同的P环通道中是保守的。