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利用功能基因组学探索酵母基因组维护

Navigating yeast genome maintenance with functional genomics.

作者信息

Measday Vivien, Stirling Peter C

出版信息

Brief Funct Genomics. 2016 Mar;15(2):119-29. doi: 10.1093/bfgp/elv033. Epub 2015 Aug 31.

DOI:10.1093/bfgp/elv033
PMID:26323482
Abstract

Maintenance of genome integrity is a fundamental requirement of all organisms. To address this, organisms have evolved extremely faithful modes of replication, DNA repair and chromosome segregation to combat the deleterious effects of an unstable genome. Nonetheless, a small amount of genome instability is the driver of evolutionary change and adaptation, and thus a low level of instability is permitted in populations. While defects in genome maintenance almost invariably reduce fitness in the short term, they can create an environment where beneficial mutations are more likely to occur. The importance of this fact is clearest in the development of human cancer, where genome instability is a well-established enabling characteristic of carcinogenesis. This raises the crucial question: what are the cellular pathways that promote genome maintenance and what are their mechanisms? Work in model organisms, in particular the yeast Saccharomyces cerevisiae, has provided the global foundations of genome maintenance mechanisms in eukaryotes. The development of pioneering genomic tools inS. cerevisiae, such as the systematic creation of mutants in all nonessential and essential genes, has enabled whole-genome approaches to identifying genes with roles in genome maintenance. Here, we review the extensive whole-genome approaches taken in yeast, with an emphasis on functional genomic screens, to understand the genetic basis of genome instability, highlighting a range of genetic and cytological screening modalities. By revealing the biological pathways and processes regulating genome integrity, these analyses contribute to the systems-level map of the yeast cell and inform studies of human disease, especially cancer.

摘要

维持基因组完整性是所有生物体的一项基本要求。为实现这一点,生物体进化出了极其精确的复制、DNA修复和染色体分离模式,以对抗不稳定基因组的有害影响。尽管如此,少量的基因组不稳定性是进化变化和适应性的驱动力,因此种群中允许存在低水平的不稳定性。虽然基因组维持缺陷几乎总是会在短期内降低适应性,但它们可以创造一个更有利于有益突变发生的环境。这一事实的重要性在人类癌症的发展中最为明显,基因组不稳定性是癌症发生过程中一个公认的促成特征。这就引出了一个关键问题:促进基因组维持的细胞途径有哪些,其机制是什么?在模式生物,特别是酿酒酵母中的研究,为真核生物基因组维持机制奠定了全球基础。在酿酒酵母中开发的开创性基因组工具,如系统创建所有非必需和必需基因的突变体,使得能够采用全基因组方法来鉴定在基因组维持中起作用的基因。在这里,我们回顾了在酵母中采用的广泛的全基因组方法,重点是功能基因组筛选,以了解基因组不稳定性的遗传基础,突出了一系列遗传和细胞学筛选方式。通过揭示调节基因组完整性的生物学途径和过程,这些分析有助于构建酵母细胞的系统层面图谱,并为人类疾病,尤其是癌症的研究提供信息。

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