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酵母复杂性状中的基因-基因和基因-环境相互作用

Gene-gene and gene-environment interactions in complex traits in yeast.

作者信息

Yadav Anupama, Sinha Himanshu

机构信息

Center for Cancer Systems Biology, and Cancer Biology, Dana Farber Cancer Institute, Boston, MA, 02215, USA.

Department of Genetics, Harvard Medical School, Boston, MA, 02115, USA.

出版信息

Yeast. 2018 Jun;35(6):403-416. doi: 10.1002/yea.3304. Epub 2018 Feb 22.

DOI:10.1002/yea.3304
PMID:29322552
Abstract

One of the fundamental questions in biology is how the genotype regulates the phenotype. An increasing number of studies indicate that, in most cases, the effect of a genetic locus on the phenotype is context-dependent, i.e. it is influenced by the genetic background and the environment in which the phenotype is measured. Still, the majority of the studies, in both model organisms and humans, that map the genetic regulation of phenotypic variation in complex traits primarily identify additive loci with independent effects. This does not reflect an absence of the contribution of genetic interactions to phenotypic variation, but instead is a consequence of the technical limitations in mapping gene-gene interactions (GGI) and gene-environment interactions (GEI). Yeast, with its detailed molecular understanding, diverse population genomics and ease of genetic manipulation, is a unique and powerful resource to study the contributions of GGI and GEI in the regulation of phenotypic variation. Here we review studies in yeast that have identified GGI and GEI that regulate phenotypic variation, and discuss the contribution of these findings in explaining missing heritability of complex traits, and how observations from these GGI and GEI studies enhance our understanding of the mechanisms underlying genetic robustness and adaptability that shape the architecture of the genotype-phenotype map.

摘要

生物学中的一个基本问题是基因型如何调控表型。越来越多的研究表明,在大多数情况下,一个基因座对表型的影响取决于背景,即它受到遗传背景以及测量表型时所处环境的影响。然而,在模式生物和人类中,大多数绘制复杂性状表型变异遗传调控图谱的研究主要识别具有独立效应的加性基因座。这并非意味着遗传相互作用对表型变异没有贡献,而是绘制基因-基因相互作用(GGI)和基因-环境相互作用(GEI)图谱时技术限制的结果。酵母因其详细的分子理解、多样的群体基因组学以及易于进行遗传操作,是研究GGI和GEI对表型变异调控贡献的独特且强大的资源。在此,我们综述了酵母中已鉴定出的调控表型变异的GGI和GEI的研究,并讨论这些发现对解释复杂性状缺失遗传力的贡献,以及这些GGI和GEI研究中的观察结果如何增进我们对塑造基因型-表型图谱结构的遗传稳健性和适应性潜在机制的理解。

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