Department of Biochemistry, Temple University, Philadelphia, Pennsylvania 19140, USA.
Center for Translational Medicine, Temple University, Philadelphia, Pennsylvania, 19140, USA.
Cell Rep. 2013 Dec 26;5(6):1576-1588. doi: 10.1016/j.celrep.2013.11.026. Epub 2013 Dec 12.
Resting mitochondrial matrix Ca(2+) is maintained through a mitochondrial calcium uptake 1 (MICU1)-established threshold inhibition of mitochondrial calcium uniporter (MCU) activity. It is not known how MICU1 interacts with MCU to establish this Ca(2+) threshold for mitochondrial Ca(2+) uptake and MCU activity. Here, we show that MICU1 localizes to the mitochondrial matrix side of the inner mitochondrial membrane and MICU1/MCU binding is determined by a MICU1 N-terminal polybasic domain and two interacting coiled-coil domains of MCU. Further investigation reveals that MICU1 forms homo-oligomers, and this oligomerization is independent of the polybasic region. However, the polybasic region confers MICU1 oligomeric binding to MCU and controls mitochondrial Ca(2+) current (IMCU). Moreover, MICU1 EF hands regulate MCU channel activity, but do not determine MCU binding. Loss of MICU1 promotes MCU activation leading to oxidative burden and a halt to cell migration. These studies establish a molecular mechanism for MICU1 control of MCU-mediated mitochondrial Ca(2+) accumulation, and dysregulation of this mechanism probably enhances vascular dysfunction.
静息状态下线粒体基质中的 Ca(2+) 通过线粒体钙摄取 1(MICU1)建立的线粒体钙单向转运体(MCU)活性的阈抑制来维持。目前尚不清楚 MICU1 如何与 MCU 相互作用以建立线粒体摄取 Ca(2+)和 MCU 活性的 Ca(2+)阈值。在这里,我们表明 MICU1 定位于线粒体内膜的线粒体基质侧,MICU1/MCU 结合由 MICU1 N 端多碱性结构域和 MCU 的两个相互作用的卷曲螺旋结构域决定。进一步的研究表明,MICU1 形成同源寡聚体,这种寡聚化不依赖于多碱性区。然而,多碱性区赋予 MICU1 寡聚体与 MCU 的结合,并控制线粒体 Ca(2+)电流(IMCU)。此外,MICU1 EF 手结构域调节 MCU 通道活性,但不决定 MCU 结合。MICU1 的缺失促进了 MCU 的激活,导致氧化应激和细胞迁移的停止。这些研究建立了 MICU1 控制 MCU 介导的线粒体 Ca(2+)积累的分子机制,而这种机制的失调可能会增强血管功能障碍。
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