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能量流如何塑造细胞进化。

How energy flow shapes cell evolution.

机构信息

Department of Genetics, Evolution and Environment, University College London, London WC1E 6BT, UK.

出版信息

Curr Biol. 2020 May 18;30(10):R471-R476. doi: 10.1016/j.cub.2020.03.055.

Abstract

How mitochondria shaped the evolution of eukaryotic complexity has been controversial for decades. The discovery of the Asgard archaea, which harbor close phylogenetic ties to the eukaryotes, supports the idea that a critical endosymbiosis between an archaeal host and a bacterial endosymbiont transformed the selective constraints present at the origin of eukaryotes. Cultured Asgard archaea are typically prokaryotic in both size and internal morphology, albeit featuring extensive protrusions. The acquisition of the mitochondrial predecessor by an archaeal host cell fundamentally altered the topology of genes in relation to bioenergetic membranes. Mitochondria internalised not only the bioenergetic membranes but also the genetic machinery needed for local control of oxidative phosphorylation. Gene loss from mitochondria enabled expansion of the nuclear genome, giving rise to an extreme genomic asymmetry that is ancestral to all extant eukaryotes. This genomic restructuring gave eukaryotes thousands of fold more energy availability per gene. In principle, that difference can support more and larger genes, far more non-coding DNA, greater regulatory complexity, and thousands of fold more protein synthesis per gene. These changes released eukaryotes from the bioenergetic constraints on prokaryotes, facilitating the evolution of morphological complexity.

摘要

几十年来,线粒体如何塑造真核生物复杂性的进化一直存在争议。古菌 Asgard 的发现支持了这样一种观点,即在真核生物起源时,一种古菌宿主与一种细菌内共生体之间的关键内共生关系改变了选择压力。培养的 Asgard 古菌在大小和内部形态上通常都是原核生物,尽管它们具有广泛的突起。古菌宿主细胞获得线粒体前体,从根本上改变了与生物能膜相关的基因拓扑结构。线粒体不仅内化了生物能膜,还内化了用于局部控制氧化磷酸化所需的遗传机制。线粒体基因的丢失使核基因组得以扩张,从而产生了一种极端的基因组不对称性,这种不对称性是所有现存真核生物的祖先。这种基因组重构使真核生物每基因的能量可用性增加了数千倍。原则上,这种差异可以支持更多更大的基因、更多的非编码 DNA、更大的调控复杂性以及每基因数千倍的蛋白质合成。这些变化使真核生物摆脱了原核生物在生物能量方面的限制,促进了形态复杂性的进化。

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