Molecular basis of Mg2+ permeation through the human mitochondrial Mrs2 channel

Mitochondrial RNA splicing 2 (Mrs2), a eukaryotic CorA ortholog, enables Mg 2+ to permeate the inner mitochondrial membrane and plays an important role in mitochondrial metabolic function. However, the mechanism by which Mrs2 permeates Mg 2+ remains unclear. Here, we report four cryo-electron micros...

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Veröffentlicht in:Nature communications 2023-08, Vol.14 (1), p.4713-4713, Article 4713
Hauptverfasser: Li, Ming, Li, Yang, Lu, Yue, Li, Jianhui, Lu, Xuhang, Ren, Yue, Wen, Tianlei, Wang, Yaojie, Chang, Shenghai, Zhang, Xing, Yang, Xue, Shen, Yuequan
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Sprache:eng
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Zusammenfassung:Mitochondrial RNA splicing 2 (Mrs2), a eukaryotic CorA ortholog, enables Mg 2+ to permeate the inner mitochondrial membrane and plays an important role in mitochondrial metabolic function. However, the mechanism by which Mrs2 permeates Mg 2+ remains unclear. Here, we report four cryo-electron microscopy (cryo-EM) reconstructions of Homo sapiens Mrs2 (hMrs2) under various conditions. All of these hMrs2 structures form symmetrical pentamers with very similar pentamer and protomer conformations. A special structural feature of Cl − -bound R-ring, which consists of five Arg332 residues, was found in the hMrs2 structure. Molecular dynamics simulations and mitochondrial Mg 2+ uptake assays show that the R-ring may function as a charge repulsion barrier, and Cl − may function as a ferry to jointly gate Mg 2+ permeation in hMrs2. In addition, the membrane potential is likely to be the driving force for Mg 2+ permeation. Our results provide insights into the channel assembly and Mg 2+ permeation of hMrs2. Mrs2 is a mitochondrial Mg2+ channel that is essential for metabolic function. Here, the authors present cryo-EM structures of human Mrs2 revealing symmetrical pentameric assembly and how Mrs2 permeates Mg 2+ .
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-023-40516-2