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From the Identification to the Dissection of the Physiological Role of the Mitochondrial Calcium Uniporter: An Ongoing Story

期刊

BIOMOLECULES
卷 11, 期 6, 页码 -

出版社

MDPI
DOI: 10.3390/biom11060786

关键词

MCU; mitochondrial Ca2+ uniporter; Ca2+ signaling; mitochondrial metabolism; skeletal muscle mitochondria

资金

  1. TELETHON [GGP16029]
  2. AIRC 5x1000 [22759]
  3. Italian Ministry of Health Ricerca Finalizzata [RF2016-02363566]
  4. CARIPARO (Fondazione Cassa di Risparmio di Padova e Rovigo)

向作者/读者索取更多资源

Advances in scientific research have led to increasing interest in the regulation and physiological role of mitochondrial Ca2+ signaling, with the discovery and characterization of genes and pathways involved in recent years. The identification of the mitochondrial channel components and their function over the past decade has provided a clearer understanding of the role of mitochondrial Ca2+ signals in cellular processes. Recent studies have highlighted the importance of the MCU complex in controlling muscle nutrition and metabolism.
The notion of mitochondria being involved in the decoding and shaping of intracellular Ca2+ signals has been circulating since the end of the 19th century. Despite that, the molecular identity of the channel that mediates Ca2+ ion transport into mitochondria remained elusive for several years. Only in the last decade, the genes and pathways responsible for the mitochondrial uptake of Ca2+ began to be cloned and characterized. The gene coding for the pore-forming unit of the mitochondrial channel was discovered exactly 10 years ago, and its product was called mitochondrial Ca2+ uniporter or MCU. Before that, only one of its regulators, the mitochondria Ca2+ uptake regulator 1, MICU1, has been described in 2010. However, in the following years, the scientific interest in mitochondrial Ca2+ signaling regulation and physiological role has increased. This shortly led to the identification of many of its components, to the description of their 3D structure, and the characterization of the uniporter contribution to tissue physiology and pathology. In this review, we will summarize the most relevant achievements in the history of mitochondrial Ca2+ studies, presenting a chronological overview of the most relevant and landmarking discoveries. Finally, we will explore the impact of mitochondrial Ca2+ signaling in the context of muscle physiology, highlighting the recent advances in understanding the role of the MCU complex in the control of muscle trophism and metabolism.

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