首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Molecular Mechanism for the Actin-Binding Domain of alpha-Actinin Ain1 Elucidated by Molecular Dynamics Simulations and Mutagenesis Experiments
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Molecular Mechanism for the Actin-Binding Domain of alpha-Actinin Ain1 Elucidated by Molecular Dynamics Simulations and Mutagenesis Experiments

机译:分子动力学模拟和诱变实验阐明的α-肌动蛋白AIN1的肌动蛋白结合结构域的分子机制及诱变实验

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摘要

In the fission yeast Schizosaccharomyces pombe, alpha-actinin Ain1 bundles F-actin into the contractile ring (CR) in the middle of the cell. Previous studies have proposed that a conformational change of the actin-binding domain (ABD) of Ain1 enhances the actin-binding activity. However, the molecular mechanism of the conformational change remains to be unveiled at an atomic resolution due to the difficulties of experimental techniques to observe them. In the present study, we performed a set of microsecond-order molecular dynamics (MD) simulations for ABD of Ain1. Our MD simulations for a pathogenic point mutation (R216E) in ABD did not result in large domain motions as previously expected. However, local motions of the loop regions were detected. Besides the three conventional actin-binding sites, we found characteristic electrostatic interactions with the N-terminal of actin. The mutagenesis experiment in fission yeast showed that collapses of the electrostatic interactions at the binding site abolished the proper localization of Ain1 to the CR. Furthermore, the MD simulation of F-actin with the Ain1 ABD R216E indicated that the stronger affinity is caused by a direct interaction of the point mutation. Our findings might be applicable to other highly conserved ABP family proteins to explain their binding affinities.
机译:在裂殖酵母裂殖酵母,α-辅肌动蛋白束AIN1 F-肌动蛋白成在单元的中间的收缩环(CR)。以前的研究已经提出,肌动蛋白结合域AIN1的(ABD)的构象变化增强了肌动蛋白结合的活动。然而,构象变化的分子机制仍然在原子分辨率亮相,由于实验技术观察他们的困难。在本研究中,我们进行了一组微秒阶分子动力学(MD)模拟为AIN1的ABD。我们的MD模拟在ABD致病性点突变(R216E)如先前预期并没有导致大域运动。然而,被检测到的环形区域的局部运动。除了三种常规肌动蛋白结合位点,我们发现与肌动蛋白的N-末端特性的静电相互作用。在裂殖酵母的诱变实验表明,在结合位点的静电相互作用的崩塌废除AIN1的到CR正确定位。此外,F-肌动蛋白与AIN1 ABD R216E的MD模拟表明较强的亲和力是通过点突变的直接相互作用引起的。我们的研究结果可能也适用于其他高度保守的ABP家族蛋白来解释他们的结合亲和力。

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