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本文引用的文献

1
Pervasive cryptic epistasis in molecular evolution.普遍存在的分子进化中的隐性上位性。
PLoS Genet. 2010 Oct 21;6(10):e1001162. doi: 10.1371/journal.pgen.1001162.
2
A quantitative model of glucose signaling in yeast reveals an incoherent feed forward loop leading to a specific, transient pulse of transcription.酵母细胞中葡萄糖信号的定量模型揭示了一个非相干的前馈回路,导致特定的、短暂的转录脉冲。
Proc Natl Acad Sci U S A. 2010 Sep 21;107(38):16743-8. doi: 10.1073/pnas.0912483107. Epub 2010 Sep 1.
3
Determinants of divergent adaptation and Dobzhansky-Muller interaction in experimental yeast populations.实验酵母群体中分歧适应和多布赞斯基-穆勒互作的决定因素。
Curr Biol. 2010 Aug 10;20(15):1383-8. doi: 10.1016/j.cub.2010.06.022. Epub 2010 Jul 15.
4
Cytosolic pH is a second messenger for glucose and regulates the PKA pathway through V-ATPase.细胞质 pH 是葡萄糖的第二信使,通过 V-ATPase 调节 PKA 途径。
EMBO J. 2010 Aug 4;29(15):2515-26. doi: 10.1038/emboj.2010.138. Epub 2010 Jun 25.
5
Effect of HXT1 and HXT7 hexose transporter overexpression on wild-type and lactic acid producing Saccharomyces cerevisiae cells.高亲和性己糖转运蛋白 1 和 7 过表达对野生型和产乳酸酿酒酵母细胞的影响。
Microb Cell Fact. 2010 Mar 9;9:15. doi: 10.1186/1475-2859-9-15.
6
A combined-cross analysis reveals genes with drug-specific and background-dependent effects on drug sensitivity in Saccharomyces cerevisiae.联合交叉分析揭示了在酿酒酵母中对药物敏感性具有药物特异性和背景依赖性影响的基因。
Genetics. 2009 Nov;183(3):1141-51. doi: 10.1534/genetics.109.108068. Epub 2009 Aug 31.
7
Positive epistasis drives the acquisition of multidrug resistance.正向上位效应驱动多药耐药性的获得。
PLoS Genet. 2009 Jul;5(7):e1000578. doi: 10.1371/journal.pgen.1000578. Epub 2009 Jul 24.
8
Application of a short intracellular pH method to flow cytometry for determining Saccharomyces cerevisiae vitality.一种短时间细胞内pH方法在流式细胞术中用于测定酿酒酵母活力的应用。
Appl Environ Microbiol. 2009 Sep;75(17):5615-20. doi: 10.1128/AEM.00650-09. Epub 2009 Jul 6.
9
Polymorphisms in multiple genes contribute to the spontaneous mitochondrial genome instability of Saccharomyces cerevisiae S288C strains.多个基因的多态性导致酿酒酵母 S288C 菌株自发的线粒体基因组不稳定。
Genetics. 2009 Sep;183(1):365-83. doi: 10.1534/genetics.109.104497. Epub 2009 Jul 6.
10
Complex adaptations can drive the evolution of the capacitor [PSI], even with realistic rates of yeast sex.复杂的适应性变化能够推动[PSI⁺]这种因子的进化,即便在酵母有性生殖的实际速率下也是如此。
PLoS Genet. 2009 Jun;5(6):e1000517. doi: 10.1371/journal.pgen.1000517. Epub 2009 Jun 12.

酿酒酵母实验群体中适应性的三个决定因素之间的细胞效应和上位性

Cellular effects and epistasis among three determinants of adaptation in experimental populations of Saccharomyces cerevisiae.

作者信息

Parreiras Lucas S, Kohn Linda M, Anderson James B

机构信息

Department of Cell and Systems Biology, University of Toronto, 3359 Mississauga Road North, Mississauga, Ontario, Canada L5L 1C6.

出版信息

Eukaryot Cell. 2011 Oct;10(10):1348-56. doi: 10.1128/EC.05083-11. Epub 2011 Aug 19.

DOI:10.1128/EC.05083-11
PMID:21856932
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3187067/
Abstract

Epistatic interactions in which the phenotypic effect of an allele is conditional on its genetic background have been shown to play a central part in various evolutionary processes. In a previous study (J. B. Anderson et al., Curr. Biol. 20:1383-1388, 2010; J. R. Dettman, C. Sirjusingh, L. M. Kohn, and J. B. Anderson, Nature 447:585-588, 2007), beginning with a common ancestor, we identified three determinants of fitness as mutant alleles (each designated with the letter "e") that arose in replicate Saccharomyces cerevisiae populations propagated in two different environments, a low-glucose and a high-salt environment. In a low-glucose environment, MDS3e and MKT1e interacted positively to confer a fitness advantage. Also, PMA1e from a high-salt environment interacted negatively with MKT1e in a low-glucose environment, an example of a Dobzhansky-Muller incompatibility that confers reproductive isolation. Here we showed that the negative interaction between PMA1e and MKT1e is mediated by alterations in intracellular pH, while the positive interaction between MDS3e and MKT1e is mediated by changes in gene expression affecting glucose transporter genes. We specifically addressed the evolutionary significance of the positive interaction by showing that the presence of the MDS3 mutation is a necessary condition for the spread and fixation of the new mutations at the identical site in MKT1. The expected mutations in MKT1 rose to high frequencies in two of three experimental populations carrying MDS3e but not in any of three populations carrying the ancestral allele. These data show how positive and negative epistasis can contribute to adaptation and reproductive isolation.

摘要

等位基因的表型效应取决于其遗传背景的上位性相互作用已被证明在各种进化过程中起着核心作用。在之前的一项研究中(J. B. 安德森等人,《当代生物学》20:1383 - 1388,2010;J. R. 德特曼、C. 西尔朱辛赫、L. M. 科恩和J. B. 安德森,《自然》447:585 - 588,2007),从一个共同祖先开始,我们确定了三个适合度决定因素,即作为突变等位基因(每个用字母“e”表示),它们出现在分别在两种不同环境(低葡萄糖和高盐环境)中繁殖的酿酒酵母重复群体中。在低葡萄糖环境中,MDS3e和MKT1e发生正向相互作用以赋予适合度优势。此外,来自高盐环境的PMA1e在低葡萄糖环境中与MKT1e发生负向相互作用,这是一种导致生殖隔离的多布赞斯基 - 穆勒不相容性的例子。在这里我们表明,PMA1e和MKT1e之间的负向相互作用是由细胞内pH值的改变介导的,而MDS3e和MKT1e之间的正向相互作用是由影响葡萄糖转运蛋白基因的基因表达变化介导的。我们通过表明MDS3突变的存在是MKT1中相同位点新突变传播和固定的必要条件,具体探讨了正向相互作用的进化意义。在携带MDS3e的三个实验群体中的两个群体中,MKT1中的预期突变频率升高,但在携带祖先等位基因的三个群体中的任何一个中都没有升高。这些数据表明正向和负向上位性如何有助于适应和生殖隔离。