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钙离子从内质网向线粒体的转移:时间、方式及原因

Ca(2+) transfer from the ER to mitochondria: when, how and why.

作者信息

Rizzuto Rosario, Marchi Saverio, Bonora Massimo, Aguiari Paola, Bononi Angela, De Stefani Diego, Giorgi Carlotta, Leo Sara, Rimessi Alessandro, Siviero Roberta, Zecchini Erika, Pinton Paolo

机构信息

Dept. Biomedical Sciences, University of Padua, Via Colombo 3, Padua 35121, Italy.

出版信息

Biochim Biophys Acta. 2009 Nov;1787(11):1342-51. doi: 10.1016/j.bbabio.2009.03.015. Epub 2009 Mar 31.

Abstract

The heterogenous subcellular distribution of a wide array of channels, pumps and exchangers allows extracellular stimuli to induce increases in cytoplasmic Ca(2+) concentration ([Ca(2+)]c) with highly defined spatial and temporal patterns, that in turn induce specific cellular responses (e.g. contraction, secretion, proliferation or cell death). In this extreme complexity, the role of mitochondria was considered marginal, till the direct measurement with targeted indicators allowed to appreciate that rapid and large increases of the [Ca(2+)] in the mitochondrial matrix ([Ca(2+)]m) invariably follow the cytosolic rises. Given the low affinity of the mitochondrial Ca(2+) transporters, the close proximity to the endoplasmic reticulum (ER) Ca(2+)-releasing channels was shown to be responsible for the prompt responsiveness of mitochondria. In this review, we will summarize the current knowledge of: i) the mitochondrial and ER Ca(2+) channels mediating the ion transfer, ii) the structural and molecular foundations of the signaling contacts between the two organelles, iii) the functional consequences of the [Ca(2+)]m increases, and iv) the effects of oncogene-mediated signals on mitochondrial Ca(2+) homeostasis. Despite the rapid progress carried out in the latest years, a deeper molecular understanding is still needed to unlock the secrets of Ca(2+) signaling machinery.

摘要

各种各样的离子通道、泵和离子交换体在亚细胞水平上分布不均,使得细胞外刺激能够诱导细胞质中钙离子浓度([Ca(2+)]c)以高度明确的时空模式升高,进而引发特定的细胞反应(如收缩、分泌、增殖或细胞死亡)。在这种极端复杂的情况下,线粒体的作用曾被认为微不足道,直到使用靶向指示剂进行直接测量后才认识到,线粒体基质中钙离子浓度([Ca(2+)]m)的快速大幅升高总是紧随胞质钙离子浓度的升高。鉴于线粒体钙离子转运体的低亲和力,研究表明,线粒体与内质网(ER)钙离子释放通道的紧密相邻是其快速响应的原因。在这篇综述中,我们将总结以下方面的现有知识:i)介导离子转移的线粒体和内质网钙离子通道;ii)两个细胞器之间信号接触的结构和分子基础;iii)[Ca(2+)]m升高的功能后果;iv)癌基因介导的信号对线粒体钙离子稳态的影响。尽管近年来取得了快速进展,但仍需要更深入的分子理解来揭开钙离子信号传导机制的奥秘。

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