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Mechanism of Deep-Sea Fish α-Actin Pressure Tolerance Investigated by Molecular Dynamics Simulations

机译:分子动力学模拟研究深海鱼α-肌动蛋白耐压机理

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摘要

The pressure tolerance of monomeric α-actin proteins from the deep-sea fish Coryphaenoides armatus and C. yaquinae was compared to that of non-deep-sea fish C. acrolepis, carp, and rabbit/human/chicken actins using molecular dynamics simulations at 0.1 and 60 MPa. The amino acid sequences of actins are highly conserved across a variety of species. The actins from C. armatus and C. yaquinae have the specific substitutions Q137K/V54A and Q137K/L67P, respectively, relative to C. acrolepis, and are pressure tolerant to depths of at least 6000 m. At high pressure, we observed significant changes in the salt bridge patterns in deep-sea fish actins, and these changes are expected to stabilize ATP binding and subdomain arrangement. Salt bridges between ATP and K137, formed in deep-sea fish actins, are expected to stabilize ATP binding even at high pressure. At high pressure, deep-sea fish actins also formed a greater total number of salt bridges than non-deep-sea fish actins owing to the formation of inter-helix/strand and inter-subdomain salt bridges. Free energy analysis suggests that deep-sea fish actins are stabilized to a greater degree by the conformational energy decrease associated with pressure effect.
机译:使用分子动力学模拟,将深海鱼Coryphaenoides armatus和矢车菊C. yaquinae的单体α-肌动蛋白蛋白与非深海C. acrolepis,鲤鱼和兔/人/鸡肌动蛋白的耐压性进行了比较。 0.1和60 MPa。肌动蛋白的氨基酸序列在多种物种中高度保守。相比之下,来自A. armatus和C. yaquinae的肌动蛋白具有特定的取代基Q137K / V54A和Q137K / L67P,并且对至少6000 m的深度具有耐压性。在高压下,我们观察到深海鱼肌动蛋白的盐桥模式发生了显着变化,这些变化有望稳定ATP结合和亚域排列。在深海鱼类肌动蛋白中形成的ATP和K137之间的盐桥,即使在高压下也有望稳定ATP的结合。在高压下,由于螺旋/链间和亚域间盐桥的形成,深海鱼类肌动蛋白也比非深海鱼类肌动蛋白形成了更多的盐桥。自由能分析表明,与压力效应相关的构象能量降低,使深海鱼类肌动蛋白在更大程度上稳定了。

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