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Molecular dynamics simulations on apo ADP/ATP carrier shed new lights on the featured motif of the mitochondrial carriers

机译:APO ADP / ATP载体的分子动力学模拟在线粒体载体的特色主题上的新灯

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The ADP/ATP carrier (AAC) is a transporter responsible for the equal molar exchange of cytosolic ADP and ATP synthesized within mitochondria] matrix across the mitochondrial membrane. Its primary structure consists of three homologous repeats, and each repeat contains a conserved motif that is shared by all members of the mitochondrial carrier family (MCF). Although these MCF motif residues cluster together in the crystal structure of AAC, detailed analyses on the interactions among the motif residues are still limited. In the present study, all atom molecular dynamics (MD) simulations of up to 10 is have been carried out on AAC, and interactions and structural dynamics of the MCF motif residues have been specifically investigated. Our simulations have revealed: i) a very asymmetrical electrostatic network at the bottom of the pocket of apo AAC, ii) the asymmetrical interactions between the Pro kink region and the [YWF] [KR] G motif in three repeats, iii) the role of the conserved Arg residues in stabilizing the C-ends of the odd-numbered helices, iv) the structural change of the [YWF] [KR] G motif and its potential involvement in substrate translocation process. Our results highlight the asymmetry of the MCF residues in the three repeats, which might contribute to the ability of the carriers to transport the asymmetrical substrates. Our observations provide microscopic basis for further research on the translocation mechanism of mitochondrial carriers.
机译:ADP / ATP载体(AAC)是负责在线粒体膜的线粒体基质中合成的细胞溶质ADP和ATP的等摩尔交换的转运蛋白。其主要结构由三个同源重复组成,并且每次重复含有由线粒体载体家族(MCF)的所有成员共享的保守基质。虽然这些MCF基序残基在AAC的晶体结构中聚集在一起,但对图案残基之间的相互作用进行了详细分析仍然有限。在本研究中,已经对AAC进行了最多10的所有原子分子动力学(MD)模拟,并且已经专门研究了MCF基序残基的相互作用和结构动态。我们的模拟已经揭示:i)APO AAC底部底部的一个非常不对称的静电网络,ii)在三个重复,iii)中,Pro Kink区域和[YWF] [KR] G主题之间的不对称相互作用。保守的Arg残留物在稳定奇数螺旋的C端,iv)[YWF] [KR] G主题的结构变化及其潜在的基材易位过程的变化。我们的结果突出了三个重复中MCF残留物的不对称,这可能有助于载体运输不对称基材的能力。我们的观察结果为进一步研究线粒体载体的易位机制提供了微观依据。

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