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本文引用的文献

1
Insights into the Mechanical Properties of the Kinesin Neck Linker Domain from Sequence Analysis and Molecular Dynamics Simulations.通过序列分析和分子动力学模拟洞察驱动蛋白颈部连接域的力学性质
Cell Mol Bioeng. 2009 Jun 1;2(2):177-189. doi: 10.1007/s12195-009-0059-5.
2
Loop L5 acts as a conformational latch in the mitotic kinesin Eg5.环 L5 在有丝分裂驱动蛋白 Eg5 中充当构象闩。
J Biol Chem. 2011 Feb 18;286(7):5242-53. doi: 10.1074/jbc.M110.192930. Epub 2010 Dec 9.
3
Structural basis for inhibition of Eg5 by dihydropyrimidines: stereoselectivity of antimitotic inhibitors enastron, dimethylenastron and fluorastrol.二氢嘧啶类抑制 Eg5 的结构基础:抗有丝分裂抑制剂恩曲他滨、二甲烯氟苯及氟他胺的立体选择性。
J Med Chem. 2010 Aug 12;53(15):5676-83. doi: 10.1021/jm100421n.
4
The conserved L5 loop establishes the pre-powerstroke conformation of the Kinesin-5 motor, eg5.保守的 L5 环建立了 Eg5 驱动蛋白-5 的预动力冲程构象。
Biophys J. 2010 Jun 2;98(11):2619-27. doi: 10.1016/j.bpj.2010.03.014.
5
Allosteric drug discrimination is coupled to mechanochemical changes in the kinesin-5 motor core.变构药物识别与驱动蛋白-5运动核心的机械化学变化相关联。
J Biol Chem. 2010 Jun 11;285(24):18650-61. doi: 10.1074/jbc.M109.092072. Epub 2010 Mar 18.
6
ATP hydrolysis in Eg5 kinesin involves a catalytic two-water mechanism.Eg5 驱动蛋白的 ATP 水解涉及催化双水分子机制。
J Biol Chem. 2010 Feb 19;285(8):5859-67. doi: 10.1074/jbc.M109.071233. Epub 2009 Dec 15.
7
An allosteric transition trapped in an intermediate state of a new kinesin-inhibitor complex.一种变构跃迁被捕获在一种新的驱动蛋白抑制剂复合物的中间状态中。
Biochem J. 2009 Dec 14;425(1):55-60. doi: 10.1042/BJ20091207.
8
Motor domain phosphorylation and regulation of the Drosophila kinesin 13, KLP10A.果蝇驱动蛋白13(KLP10A)的运动结构域磷酸化与调控
J Cell Biol. 2009 Aug 24;186(4):481-90. doi: 10.1083/jcb.200902113. Epub 2009 Aug 17.
9
9-Angström structure of a microtubule-bound mitotic motor.一种与微管结合的有丝分裂马达的9埃结构。
J Mol Biol. 2009 May 1;388(2):218-24. doi: 10.1016/j.jmb.2009.03.008. Epub 2009 Mar 10.
10
ATPase cycle of the nonmotile kinesin NOD allows microtubule end tracking and drives chromosome movement.非运动性驱动蛋白NOD的ATP酶循环允许微管末端追踪并驱动染色体移动。
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分析 Eg5 环 5 与核苷酸位点的相互作用。

Analysis of the interaction of the Eg5 Loop5 with the nucleotide site.

机构信息

Voiland School of Chemical Engineering and Bioengineering, Washington State University, Pullman, WA 99164, USA.

出版信息

J Theor Biol. 2011 Nov 21;289:107-15. doi: 10.1016/j.jtbi.2011.08.017. Epub 2011 Aug 23.

DOI:10.1016/j.jtbi.2011.08.017
PMID:21872609
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3191284/
Abstract

Loop 5 (L5) is a conserved loop that projects from the α2-helix adjacent to the nucleotide site of all kinesin-family motors. L5 is critical to the function of the mitotic kinesin-5 family motors and is the binding site for several kinesin-5 inhibitors that are currently in clinical trials. Its conformational dynamics and its role in motor function are not fully understood. Our previous work using EPR spectroscopy suggested that L5 alters the nucleotide pocket conformation of the kinesin-5 motor Eg5 (Larson et al., 2010). EPR spectra of a spin-labeled nucleotide analog bound at the nucleotide site of Eg5 display a highly immobilized component that is absent if L5 is shortened or if the inhibitor STLC is added (Larson et al., 2010), which X-ray structures suggest stabilizes an L5 conformation pointing away from the nucleotide site. These data, coupled with the proximity of L5 to the nucleotide site suggest L5 could interact with a bound nucleotide, modulating function. Here we use molecular dynamics (MD) simulations of Eg5 to explore the interaction of L5 with the nucleotide site in greater detail. We performed MD simulations in which the L5-domain of the Eg5·ADP X-ray structure was manually deformed via backbone bond rotations. The L5-domain of Eg5 was sufficiently lengthy that portions of L5 could be located in proximity to bound ADP. The MD simulations evolved to thermodynamically stable structures at 300 K showing that L5 can interact directly with bound nucleotide with significant impingement on the ribose hydroxyls, consistent with the EPR spectroscopy results. Taken together, these data provide support for the hypothesis that L5 modulates Eg5 function via interaction with the nucleotide-binding site.

摘要

环 5(L5)是一个保守的环,从邻近所有驱动蛋白家族马达核苷酸位点的α2-螺旋伸出。L5 对有丝分裂驱动蛋白-5 家族马达的功能至关重要,也是几种目前处于临床试验阶段的驱动蛋白-5 抑制剂的结合位点。其构象动力学及其在马达功能中的作用尚未完全了解。我们之前使用电子顺磁共振(EPR)光谱学的工作表明,L5 改变了驱动蛋白-5 马达 Eg5 的核苷酸口袋构象(Larson 等人,2010)。在 Eg5 的核苷酸位点结合的自旋标记核苷酸类似物的 EPR 光谱显示出高度固定的成分,如果 L5 缩短或添加抑制剂 STLC,则该成分不存在(Larson 等人,2010),X 射线结构表明该成分稳定了指向远离核苷酸位点的 L5 构象。这些数据,加上 L5 与核苷酸位点的接近程度表明,L5 可以与结合的核苷酸相互作用,从而调节功能。在这里,我们使用 Eg5 的分子动力学(MD)模拟更详细地探讨 L5 与核苷酸位点的相互作用。我们进行了 MD 模拟,其中 Eg5·ADP X 射线结构的 L5 结构域通过骨干键旋转手动变形。Eg5 的 L5 结构域足够长,因此 L5 的部分可以位于与结合的 ADP 接近的位置。MD 模拟在 300K 下演化为热力学稳定的结构,表明 L5 可以与结合的核苷酸直接相互作用,对核糖羟基有显著的影响,与 EPR 光谱学结果一致。总之,这些数据为 L5 通过与核苷酸结合位点相互作用来调节 Eg5 功能的假说提供了支持。