Structure and mechanism of the mitochondrial Ca2+ uniporter holocomplex

  • Nature. 2020 Jun;582(7810):129-133. doi: 10.1038/s41586-020-2309-6.
Minrui Fan  #  1 Jinru Zhang  #  1 Chen-Wei Tsai  #  2 Benjamin J Orlando  3 Madison Rodriguez  2 Yan Xu  1 Maofu Liao  3 Ming-Feng Tsai  4 Liang Feng  5
Affiliations
  • 1. Department of Molecular and Cellular Physiology, Stanford University School of Medicine, Stanford, CA, USA.
  • 2. Department of Physiology and Biophysics, University of Colorado Anschutz Medical Campus, Aurora, CO, USA.
  • 3. Department of Cell Biology, Harvard Medical School, Boston, MA, USA.
  • 4. Department of Physiology and Biophysics, University of Colorado Anschutz Medical Campus, Aurora, CO, USA. [email protected].
  • 5. Department of Molecular and Cellular Physiology, Stanford University School of Medicine, Stanford, CA, USA. [email protected].
  • # Contributed equally.
Abstract

Mitochondria take up CA2+ through the mitochondrial calcium uniporter complex to regulate energy production, cytosolic CA2+ signalling and cell death1,2. In mammals, the uniporter complex (uniplex) contains four core components: the pore-forming MCU protein, the gatekeepers MICU1 and MICU2, and an auxiliary subunit, EMRE, essential for CA2+ transport3-8. To prevent detrimental CA2+ overload, the activity of MCU must be tightly regulated by MICUs, which sense changes in cytosolic CA2+ concentrations to switch MCU on and off9,10. Here we report cryo-electron microscopic structures of the human mitochondrial calcium uniporter holocomplex in inhibited and CA2+-activated states. These structures define the architecture of this multicomponent CA2+-uptake machinery and reveal the gating mechanism by which MICUs control uniporter activity. Our work provides a framework for understanding regulated CA2+ uptake in mitochondria, and could suggest ways of modulating uniporter activity to treat diseases related to mitochondrial CA2+ overload.