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Linking the mitochondrial genotype to the organismal phenotype

机译:将线粒体基因型与生物表型联系起来

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摘要

One of the grand challenges of the postgenomics era is to mechanistically link the genotype with the phenotype. Here, we consider the link between the mitochondrial genotype and the organismal phenotype that is provided by bioenergetic studies of the electron transport chain. That linkage is pertinent for the fields of molecular ecology and phylogeography as it tests if, and potentially how, natural selection can influence the evolutionary and demographic past of both populations and species. We introduce the mitochondrial genotype in terms of mitochondrial-encoded genes, nuclear-encoded genes that produce structural proteins imported into the mitochondria, and mitochondrial DNA-nuclear interactions. We then review the potential for quaternary structure modelling to predict the functional consequence of specific naturally occurring mutations. We discuss how the energy-producing reactions of oxidative phosphorylation can be used to provide a mechanistic biochemical link between genotype and phenotype. Experimental manipulations can then be used to test the functional consequences of specific mutations in multiple genetic backgrounds. Finally, we examine how mitochondria can influence the organismal mitochondrial phenotype using the examples of lifespan, fertility and starvation resistance and discuss how mitochondria may be involved in establishing both the upper and lower thermal limits of organisms. We conclude that mitochondrial DNA mutations can be important in determining aspects of organism life history. The question that remains to be resolved is how common are these adaptive mutations?.
机译:后基因组学时代的一大挑战是将基因型与表型机械地联系起来。在这里,我们考虑线粒体基因型和有机体表型之间的联系,这是通过电子传输链的生物能研究提供的。这种联系与分子生态学和系统地理学领域有关,因为它测试了自然选择是否以及可能如何影响种群和物种的进化和人口统计过去。我们根据线粒体编码基因,产生导入线粒体的结构蛋白的核编码基因以及线粒体DNA-核相互作用介绍线粒体基因型。然后,我们回顾了四级结构建模的潜力,以预测特定自然发生的突变的功能后果。我们讨论了如何利用氧化磷酸化的能量产生反应来提供基因型和表型之间的机械生化联系。然后可以使用实验操作来测试多种遗传背景下特定突变的功能后果。最后,我们以寿命,繁殖力和抗饥饿性为例,研究线粒体如何影响机体线粒体表型,并讨论线粒体如何参与建立生物体的热上限和下限。我们得出的结论是,线粒体DNA突变在确定生物寿命史方面可能很重要。这些适应性突变有多普遍?还有待解决的问题是。

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