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Evidence supporting the MICU1 occlusion mechanism and against the potentiation model in the mitochondrial calcium uniporter complex

The mitochondrial calcium uniporter is a Ca(2+) channel that imports cytoplasmic Ca(2+) into the mitochondrial matrix to regulate cell bioenergetics, intracellular Ca(2+) signaling, and apoptosis. The uniporter contains the pore-forming MCU subunit, an auxiliary EMRE protein, and the regulatory MICU...

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Autores principales: Tsai, Chen-Wei, Liu, Tsung-Yun, Chao, Fan-Yi, Tu, Yung-Chi, Rodriguez, Madison X., Van Keuren, Anna M., Ma, Zhiwei, Bankston, John, Tsai, Ming-Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10120041/
https://www.ncbi.nlm.nih.gov/pubmed/37036971
http://dx.doi.org/10.1073/pnas.2217665120
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author Tsai, Chen-Wei
Liu, Tsung-Yun
Chao, Fan-Yi
Tu, Yung-Chi
Rodriguez, Madison X.
Van Keuren, Anna M.
Ma, Zhiwei
Bankston, John
Tsai, Ming-Feng
author_facet Tsai, Chen-Wei
Liu, Tsung-Yun
Chao, Fan-Yi
Tu, Yung-Chi
Rodriguez, Madison X.
Van Keuren, Anna M.
Ma, Zhiwei
Bankston, John
Tsai, Ming-Feng
author_sort Tsai, Chen-Wei
collection PubMed
description The mitochondrial calcium uniporter is a Ca(2+) channel that imports cytoplasmic Ca(2+) into the mitochondrial matrix to regulate cell bioenergetics, intracellular Ca(2+) signaling, and apoptosis. The uniporter contains the pore-forming MCU subunit, an auxiliary EMRE protein, and the regulatory MICU1/MICU2 subunits. Structural and biochemical studies have suggested that MICU1 gates MCU by blocking/unblocking the pore. However, mitoplast patch-clamp experiments argue that MICU1 does not block, but instead potentiates MCU via allosteric mechanisms. Here, we address this direct clash of the proposed MICU1 function. Supporting the MICU1-occlusion mechanism, patch-clamp demonstrates that purified MICU1 strongly suppresses MCU Ca(2+) currents, and this inhibition is abolished by mutating the MCU-interacting K126 residue. Moreover, a membrane-depolarization assay shows that MICU1 prevents MCU-mediated Na(+) flux into intact mitochondria under Ca(2+)-free conditions. Examining the observations underlying the potentiation model, we found that MICU1 occlusion was not detected in mitoplasts not because MICU1 cannot block, but because MICU1 dissociates from the uniporter complex. Furthermore, MICU1 depletion reduces uniporter transport not because MICU1 can potentiate MCU, but because EMRE is down-regulated. These results firmly establish the molecular mechanisms underlying the physiologically crucial process of uniporter regulation by MICU1.
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spelling pubmed-101200412023-10-10 Evidence supporting the MICU1 occlusion mechanism and against the potentiation model in the mitochondrial calcium uniporter complex Tsai, Chen-Wei Liu, Tsung-Yun Chao, Fan-Yi Tu, Yung-Chi Rodriguez, Madison X. Van Keuren, Anna M. Ma, Zhiwei Bankston, John Tsai, Ming-Feng Proc Natl Acad Sci U S A Biological Sciences The mitochondrial calcium uniporter is a Ca(2+) channel that imports cytoplasmic Ca(2+) into the mitochondrial matrix to regulate cell bioenergetics, intracellular Ca(2+) signaling, and apoptosis. The uniporter contains the pore-forming MCU subunit, an auxiliary EMRE protein, and the regulatory MICU1/MICU2 subunits. Structural and biochemical studies have suggested that MICU1 gates MCU by blocking/unblocking the pore. However, mitoplast patch-clamp experiments argue that MICU1 does not block, but instead potentiates MCU via allosteric mechanisms. Here, we address this direct clash of the proposed MICU1 function. Supporting the MICU1-occlusion mechanism, patch-clamp demonstrates that purified MICU1 strongly suppresses MCU Ca(2+) currents, and this inhibition is abolished by mutating the MCU-interacting K126 residue. Moreover, a membrane-depolarization assay shows that MICU1 prevents MCU-mediated Na(+) flux into intact mitochondria under Ca(2+)-free conditions. Examining the observations underlying the potentiation model, we found that MICU1 occlusion was not detected in mitoplasts not because MICU1 cannot block, but because MICU1 dissociates from the uniporter complex. Furthermore, MICU1 depletion reduces uniporter transport not because MICU1 can potentiate MCU, but because EMRE is down-regulated. These results firmly establish the molecular mechanisms underlying the physiologically crucial process of uniporter regulation by MICU1. National Academy of Sciences 2023-04-10 2023-04-18 /pmc/articles/PMC10120041/ /pubmed/37036971 http://dx.doi.org/10.1073/pnas.2217665120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Tsai, Chen-Wei
Liu, Tsung-Yun
Chao, Fan-Yi
Tu, Yung-Chi
Rodriguez, Madison X.
Van Keuren, Anna M.
Ma, Zhiwei
Bankston, John
Tsai, Ming-Feng
Evidence supporting the MICU1 occlusion mechanism and against the potentiation model in the mitochondrial calcium uniporter complex
title Evidence supporting the MICU1 occlusion mechanism and against the potentiation model in the mitochondrial calcium uniporter complex
title_full Evidence supporting the MICU1 occlusion mechanism and against the potentiation model in the mitochondrial calcium uniporter complex
title_fullStr Evidence supporting the MICU1 occlusion mechanism and against the potentiation model in the mitochondrial calcium uniporter complex
title_full_unstemmed Evidence supporting the MICU1 occlusion mechanism and against the potentiation model in the mitochondrial calcium uniporter complex
title_short Evidence supporting the MICU1 occlusion mechanism and against the potentiation model in the mitochondrial calcium uniporter complex
title_sort evidence supporting the micu1 occlusion mechanism and against the potentiation model in the mitochondrial calcium uniporter complex
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10120041/
https://www.ncbi.nlm.nih.gov/pubmed/37036971
http://dx.doi.org/10.1073/pnas.2217665120
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