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Binding of ADP in the Mitochondrial ADP/ATP Carrier Is Driven by an Electrostatic Funnel

机译:静电漏斗驱动线粒体ADP / ATP载体中ADP的结合

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The ADP/ATP carrier (AAC) is a membrane protein of paramount importance for the energy-fueling function of the mitochondria, transporting ADP from the intermembrane space to the matrix and ATP in the opposite direction. On the basis of the high-resolution, 2.2-A structure of the bovine carrier, a total of 0.53 μs of classical molecular dynamics simulations were conducted in a realistic membrane environment to decipher the early events of ADP~(3-) translocation across the inner membrane of the mitochondria. Examination of apo-AAC underscores the impermeable nature of the carrier, impeding passive transport of permeants toward the matrix. The electrostatic funnel illuminated from three-dimensional mapping of the electrostatic potential forms a privileged passageway anticipated to drive the diphosphate nucleotide rapidly toward the bottom of the internal cavity. This conjecture is verified in the light of repeated, independent numerical experiments, whereby the permeant is dropped near the mouth of the mitochondrial carrier. Systematic association of ADP~(3-) to the crevice of the AAC, an early event in its transport across the inner membrane, is accompanied by the formation of an intricate network of noncovalent bonds. Simulations relying on the use of an adaptive biasing force reveal for the first time that the proposed binding site corresponds to a minimum of the free energy landscape delineating the translocation of ADP~(3-) in the carrier. The present work paves the way to the design of novel nucleotides and new experiments aimed at unveiling key structural features in the chronology of ADP/ATP transport across the mitochondrial membrane.
机译:ADP / ATP载体(AAC)是膜蛋白,对于线粒体的能量供给功能至关重要,它可以将ADP从膜间空间向相反方向输送到基质和ATP。基于高分辨率的2.2-A牛载体结构,在真实的膜环境中进行了总计0.53μs的经典分子动力学模拟,以破译ADP〜(3-)跨膜的早期事件。线粒体内膜。对apo-AAC的检查强调了载体的不可渗透性,阻碍了渗透物向基质的被动运输。从静电势的三维映射照亮的静电漏斗形成了一条特权通道,该通道有望将二磷酸核苷酸迅速驱动到内部空腔的底部。根据重复的,独立的数值实验验证了这一推测,从而将渗透物滴到了线粒体载体的口附近。 ADP〜(3-)与AAC缝隙的系统性结合是跨内膜运输的早期事件,伴随着复杂的非共价键网络的形成。依靠使用自适应偏压力的模拟首次揭示了拟议的结合位点对应于描述载体中ADP〜(3-)易位的自由能态的最小值。本工作为设计新型核苷酸和进行新实验铺平了道路,旨在揭示ADP / ATP通过线粒体膜运输的时间顺序中的关键结构特征。

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