Liao Jun, Marinelli Fabrizio, Lee ChangKeun, Huang Yihe, Faraldo-Gómez José D, Jiang Youxing
School of Life Science and Technology, ShanghaiTech University, Shanghai, P.R. China.
Theoretical Molecular Biophysics Section, National Heart, Lung and Blood Institute, National Institutes of Health, Bethesda, MD, USA.
Nat Struct Mol Biol. 2016 Jun;23(6):590-599. doi: 10.1038/nsmb.3230. Epub 2016 May 16.
Na(+)/Ca(2+) exchangers use the Na(+) electrochemical gradient across the plasma membrane to extrude intracellular Ca(2+) and play a central role in Ca(2+) homeostasis. Here, we elucidate their mechanisms of extracellular ion recognition and exchange through a structural analysis of the exchanger from Methanococcus jannaschii (NCX_Mj) bound to Na(+), Ca(2+) or Sr(2+) in various occupancies and in an apo state. This analysis defines the binding mode and relative affinity of these ions, establishes the structural basis for the anticipated 3:1 Na(+)/Ca(2+)-exchange stoichiometry and reveals the conformational changes at the onset of the alternating-access transport mechanism. An independent analysis of the dynamics and conformational free-energy landscape of NCX_Mj in different ion-occupancy states, based on enhanced-sampling molecular dynamics simulations, demonstrates that the crystal structures reflect mechanistically relevant, interconverting conformations. These calculations also reveal the mechanism by which the outward-to-inward transition is controlled by the ion occupancy, thereby explaining the emergence of strictly coupled Na(+)/Ca(2+) antiport.
钠/钙交换体利用跨质膜的钠电化学梯度来排出细胞内的钙离子,并在钙稳态中发挥核心作用。在此,我们通过对詹氏甲烷球菌(NCX_Mj)的交换体进行结构分析,阐明其细胞外离子识别和交换机制。该交换体结合了处于各种占据状态以及无离子状态的钠、钙或锶。此分析确定了这些离子的结合模式和相对亲和力,为预期的3:1钠/钙交换化学计量比奠定了结构基础,并揭示了交替式转运机制启动时的构象变化。基于增强采样分子动力学模拟,对处于不同离子占据状态的NCX_Mj的动力学和构象自由能景观进行的独立分析表明,晶体结构反映了具有机械相关性的相互转化构象。这些计算还揭示了向外到向内转变受离子占据控制的机制,从而解释了严格耦合的钠/钙反向转运的出现。