拟南芥基因组与环境关联的实验验证。

IF 3.9 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yuxin Luo, Claire M Lorts, Erica H Lawrence-Paul, Jesse R Lasky
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引用次数: 0

摘要

确定局部适应的遗传基础是进化生物学的一个关键目标。基因型-环境关联(GEA)常用于检测引起局部适应的潜在基因座,但很少进行实验验证。在这里,我们测试了在拟南芥中三个与水分相关的GEA研究中鉴定的位点。我们在干旱条件下使用t-DNA敲除系研究了42个gea鉴定的基因,并测试了开花时间、适应性状以及基因型-环境(GxE)相互作用对性能和适应性的影响。总共有16/42个基因对环境局部适应或性能反应相关性状有显著影响。我们发现,wrky38突变体对适应度有显著的GxE效应;lsd1对开花时间有显著的GxE效应,其中11个基因对开花时间有影响,但不存在干旱互作。然而,大多数GEA候选人没有表现出GxE。在后续试验中,wrky38导致干旱条件下气孔导度和比叶面积下降,表明wrky38具有潜在的适应性干旱规避作用。此外,GEA还鉴定了与干燥环境相关的WRKY38的天然LoF变异,以及与LSD1表达变异相关的等位基因。虽然只有少数gea鉴定的基因被验证为GxE相互作用的适应度,但我们可能忽略了一些基因,因为实验可能不能很好地代表自然环境,t-DNA插入可能不能很好地代表自然等位基因。尽管如此,gea显然确定了一些有助于当地适应的基因。GEA和后续实验可以直接在模型系统中实施,并展示了GEA发现新的局部适应性的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Validation of Genome-Environment Associations in Arabidopsis.

Identifying the genetic basis of local adaptation is a key goal in evolutionary biology. Allele frequency clines along environmental gradients, known as genotype-environment associations (GEA), are often used to detect potential loci causing local adaptation but are rarely followed by experimental validation. Here, we tested loci identified in three moisture-related GEA studies on Arabidopsis. We studied 42 GEA-identified genes using t-DNA knockout lines under drought and tested effects on flowering time, an adaptive trait, and genotype-by-environment (GxE) interactions for performance and fitness. In total, 16/42 genes had significant effects on traits involved in local adaptation or performance responses to the environment. We found that wrky38 mutants had significant GxE effects for fitness; lsd1 plants had a significant GxE effect for flowering time, and 11 genes showed flowering time effects with no drought interaction. However, most GEA candidates did not exhibit GxE. In the follow-up experiments, wrky38 caused decreased stomatal conductance and specific leaf area under drought, indicating potentially adaptive drought avoidance. Additionally, GEA identified natural putative LoF variants of WRKY38 associated with dry environments, as well as alleles associated with variation in LSD1 expression. While only a few GEA-identified genes were validated for GxE interactions for fitness, we likely overlooked some genes because experiments might not well represent natural environments and t-DNA insertions might not well represent natural alleles. Nevertheless, GEAs apparently identified some genes contributing to local adaptation. GEA and follow-up experiments are straightforward to implement in model systems and demonstrate prospects for GEA discovery of new local adaptations.

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来源期刊
Molecular Ecology
Molecular Ecology 生物-进化生物学
CiteScore
8.40
自引率
10.20%
发文量
472
审稿时长
1 months
期刊介绍: Molecular Ecology publishes papers that utilize molecular genetic techniques to address consequential questions in ecology, evolution, behaviour and conservation. Studies may employ neutral markers for inference about ecological and evolutionary processes or examine ecologically important genes and their products directly. We discourage papers that are primarily descriptive and are relevant only to the taxon being studied. Papers reporting on molecular marker development, molecular diagnostics, barcoding, or DNA taxonomy, or technical methods should be re-directed to our sister journal, Molecular Ecology Resources. Likewise, papers with a strongly applied focus should be submitted to Evolutionary Applications. Research areas of interest to Molecular Ecology include: * population structure and phylogeography * reproductive strategies * relatedness and kin selection * sex allocation * population genetic theory * analytical methods development * conservation genetics * speciation genetics * microbial biodiversity * evolutionary dynamics of QTLs * ecological interactions * molecular adaptation and environmental genomics * impact of genetically modified organisms
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