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线粒体动力学

Mitochondrial dynamics.

作者信息

Logan David C

机构信息

School of Biology, Sir Harold Mitchell Building, University of St Andrews, St Andrews, KY16 9TH, UK.

出版信息

New Phytol. 2003 Dec;160(3):463-478. doi: 10.1046/j.1469-8137.2003.00918.x. Epub 2003 Nov 6.

Abstract

Mitochondria cannot be created de novo but instead must arise from the fission (division) of a parental organelle. In addition to fission, mitochondria also fuse with one another and it is thought that a co-ordinated balance of these two processes controls mitochondrial shape, size and number. In the past 5-7 yr, molecular genetics coupled to state-of-the-art cell biology, in particular the use of mitochondrial-targeted green fluorescent protein (GFP), has enabled identification of proteins controlling mitochondrial shape, size and number in yeast and mammalian cells. Little is known about higher plant mitochondrial dynamics. Recently, however, several genes involved in the control of plant mitochondrial dynamics have been identified. The aim of this article is to bring together what is known about mitochondrial dynamics in any organisms and to relate this to our recent knowledge of the underlying processes in higher plants. Contents Summary 463 I. Introduction 464 II. Mitochondrial evolution 464 III. Mitochondria and the cytoskeleton 465 IV. Mitochondrial morphology, biogenesis, proliferation and inheritance 466 V. Mitochondrial fission and fusion 468 VI. Mitochondrial distribution 470 VII. Plant specific proteins playing a role in mitochondrial dynamics 470 VIII. Conclusions 471 Acknowledgements 475 References 475.

摘要

线粒体无法从头生成,而是必须源自亲代细胞器的分裂。除了分裂,线粒体还会相互融合,人们认为这两个过程的协调平衡控制着线粒体的形状、大小和数量。在过去的5至7年里,分子遗传学与最先进的细胞生物学相结合,特别是线粒体靶向绿色荧光蛋白(GFP)的应用,使得在酵母和哺乳动物细胞中鉴定出控制线粒体形状、大小和数量的蛋白质成为可能。关于高等植物线粒体动态变化的了解甚少。然而,最近已经鉴定出了几个参与植物线粒体动态变化控制的基因。本文的目的是汇总关于任何生物体中线粒体动态变化的已知信息,并将其与我们最近对高等植物潜在过程的认识联系起来。内容摘要463 一、引言464 二、线粒体进化464 三、线粒体与细胞骨架465 四、线粒体形态、生物发生、增殖和遗传466 五、线粒体分裂与融合468 六、线粒体分布470 七、在植物线粒体动态变化中起作用的特定蛋白质470 八、结论471 致谢475 参考文献475

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