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非整倍体驱动的适应性进化的分子特征。

Molecular signatures of aneuploidy-driven adaptive evolution.

机构信息

Division of Genetics, Department of Medicine, Brigham and Women's Hospital and Harvard Medical School, Boston, MA, 02115, USA.

Department of Biology, Virginia Commonwealth University, Richmond, VA, 23284, USA.

出版信息

Nat Commun. 2020 Jan 30;11(1):588. doi: 10.1038/s41467-019-13669-2.

Abstract

Alteration of normal ploidy (aneuploidy) can have a number of opposing effects, such as unbalancing protein abundances and inhibiting cell growth but also accelerating genetic diversification and rapid adaptation. The interplay of these detrimental and beneficial effects remains puzzling. Here, to understand how cells develop tolerance to aneuploidy, we subject disomic (i.e. with an extra chromosome copy) strains of yeast to long-term experimental evolution under strong selection, by forcing disomy maintenance and daily population dilution. We characterize mutations, karyotype alterations and gene expression changes, and dissect the associated molecular strategies. Cells with different extra chromosomes accumulated mutations at distinct rates and displayed diverse adaptive events. They tended to evolve towards normal ploidy through chromosomal DNA loss and gene expression changes. We identify genes with recurrent mutations and altered expression in multiple lines, revealing a variant that improves growth under genotoxic stresses. These findings support rapid evolvability of disomic strains that can be used to characterize fitness effects of mutations under different stress conditions.

摘要

正常倍性(非整倍性)的改变可能会产生许多相反的影响,例如平衡蛋白质丰度和抑制细胞生长,但也会加速遗传多样化和快速适应。这些有害和有益影响的相互作用仍然令人费解。在这里,为了了解细胞如何对非整倍体产生耐受性,我们通过强迫二倍体维持和每日种群稀释,使酵母的二倍体(即具有额外的染色体拷贝)菌株在强选择下进行长期实验进化。我们描述了突变、核型改变和基因表达变化,并剖析了相关的分子策略。具有不同额外染色体的细胞以不同的速率积累突变,并表现出不同的适应性事件。它们往往通过染色体 DNA 丢失和基因表达变化向正常倍性进化。我们鉴定了多个品系中具有反复突变和表达改变的基因,发现了一个在遗传毒性应激下改善生长的变体。这些发现支持了二倍体菌株的快速可进化性,可用于在不同应激条件下描述突变的适应度效应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b170/6992709/73a7f7d66a25/41467_2019_13669_Fig1_HTML.jpg

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