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番茄响应轻度水分亏缺的转录组变化的等位基因特异性表达和遗传决定因素。

Allele-specific expression and genetic determinants of transcriptomic variations in response to mild water deficit in tomato.

机构信息

INRA, UR1052, Centre de Recherche PACA, Génétique et Amélioration des Fruits et Légumes, 67 Allée des Chênes, Domaine Saint Maurice, CS60094, Montfavet, 84143, France.

INRA, UMR1334, Amélioration génétique et Adaptation des Plantes, Montpellier SupAgro-INRA-IRD-UMII, 2 Place Pierre Viala, Montpellier, 34060, France.

出版信息

Plant J. 2018 Nov;96(3):635-650. doi: 10.1111/tpj.14057. Epub 2018 Sep 19.

Abstract

Characterizing the natural diversity of gene expression across environments is an important step in understanding how genotype-by-environment interactions shape phenotypes. Here, we analyzed the impact of water deficit onto gene expression levels in tomato at the genome-wide scale. We sequenced the transcriptome of growing leaves and fruit pericarps at cell expansion stage in a cherry and a large fruited accession and their F hybrid grown under two watering regimes. Gene expression levels were steadily affected by the genotype and the watering regime. Whereas phenotypes showed mostly additive inheritance, ~80% of the genes displayed non-additive inheritance. By comparing allele-specific expression (ASE) in the F hybrid to the allelic expression in both parental lines, respectively, 3005 genes in leaf and 2857 genes in fruit deviated from 1:1 ratio independently of the watering regime. Among these genes, ~55% were controlled by cis factors, ~25% by trans factors and ~20% by a combination of both types of factors. A total of 328 genes in leaf and 113 in fruit exhibited significant ASE-by-watering regime interaction, among which ~80% presented trans-by-watering regime interaction, suggesting a response to water deficit mediated through a majority of trans-acting loci in tomato. We cross-validated the expression levels of 274 transcripts in fruit and leaves of 124 recombinant inbred lines (RILs) and identified 163 expression quantitative trait loci (eQTLs) mostly confirming the divergences identified by ASE. Combining phenotypic and expression data, we observed a complex network of variation between genes encoding enzymes involved in the sugar metabolism.

摘要

表征基因表达在不同环境下的自然多样性是理解基因型与环境互作如何塑造表型的重要步骤。在这里,我们在全基因组范围内分析了水分亏缺对番茄基因表达水平的影响。我们对樱桃和大果型番茄及其 F1 杂种在两种水分处理条件下处于细胞扩展期的生长叶片和果实中果皮进行了转录组测序。基因表达水平受到基因型和水分处理的稳定影响。尽管表型主要表现出加性遗传,但约 80%的基因表现出非加性遗传。通过比较 F1 杂种与双亲系在两种水分处理条件下的等位基因特异性表达(ASE),在叶片中发现了 3005 个基因,在果实中发现了 2857 个基因,它们独立于水分处理而偏离 1:1 比值。在这些基因中,约 55%受顺式因子控制,约 25%受反式因子控制,约 20%受这两种类型因子的共同控制。在叶片中共有 328 个基因,在果实中共有 113 个基因表现出 ASE 与水分处理的显著互作,其中约 80%表现出反式因子与水分处理的互作,表明番茄对水分亏缺的响应是通过大多数反式作用位点介导的。我们在 124 个重组自交系(RILs)的叶片和果实中对 274 个转录本的表达水平进行了交叉验证,并鉴定了 163 个表达数量性状基因座(eQTLs),其中大多数证实了 ASE 所识别的差异。结合表型和表达数据,我们观察到参与糖代谢的酶基因之间存在复杂的变异网络。

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