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A Gene-Phenotype Network Based on Genetic Variability for Drought Responses Reveals Key Physiological Processes in Controlled and Natural Environments

机译:一种耐旱性基因表型网络中基于遗传变异揭示了控制和自然环境的关键生理过程

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摘要

Identifying the connections between molecular and physiological processes underlying the diversity of drought stress responses in plants is key for basic and applied science. Drought stress response involves a large number of molecular pathways and subsequent physiological processes. Therefore, it constitutes an archetypical systems biology model. We first inferred a gene-phenotype network exploiting differences in drought responses of eight sunflower (Helianthus annuus) genotypes to two drought stress scenarios. Large transcriptomic data were obtained with the sunflower Affymetrix microarray, comprising 32423 probesets, and were associated to nine morpho-physiological traits (integrated transpired water, leaf transpiration rate, osmotic potential, relative water content, leaf mass per area, carbon isotope discrimination, plant height, number of leaves and collar diameter) using sPLS regression. Overall, we could associate the expression patterns of 1263 probesets to six phenotypic traits and identify if correlations were due to treatment, genotype and/or their interaction. We also identified genes whose expression is affected at moderate and/or intense drought stress together with genes whose expression variation could explain phenotypic and drought tolerance variability among our genetic material. We then used the network model to study phenotypic changes in less tractable agronomical conditions, i.e. sunflower hybrids subjected to different watering regimes in field trials. Mapping this new dataset in the gene-phenotype network allowed us to identify genes whose expression was robustly affected by water deprivation in both controlled and field conditions. The enrichment in genes correlated to relative water content and osmotic potential provides evidence of the importance of these traits in agronomical conditions.
机译:识别植物干旱胁迫响应多样性背后的分子过程与生理过程之间的联系,对于基础科学和应用科学至关重要。干旱胁迫反应涉及大量的分子途径和随后的生理过程。因此,它构成了一个原型系统生物学模型。我们首先通过利用八个向日葵(Helianthus annuus)基因型对两种干旱胁迫情景的干旱响应差异来推断基因表型网络。利用向日葵Affymetrix微阵列获得了大的转录组数据,包括32423个探针集,并与9种形态生理特征(综合蒸发水,叶片蒸腾速率,渗透势,相对含水量,每单位叶片质量,碳同位素判别,植物)相关高度,叶片数和领口直径)使用sPLS回归。总体而言,我们可以将1263个探针集的表达模式与6个表型性状相关联,并确定相关性是否是由于治疗,基因型和/或它们的相互作用引起的。我们还鉴定了在中度和/或强烈干旱胁迫下表达受到影响的基因,以及其表达变异可以解释我们遗传材料之间的表型和干旱耐受性变异的基因。然后,我们使用网络模型研究了在较难处理的农艺条件下的表型变化,即在田间试验中,向日葵杂交种在不同的浇水方式下进行了处理。在基因表型网络中映射这个新的数据集,使我们能够鉴定在受控和田间条件下其表达均受到缺水强烈影响的基因。与相对水分含量和渗透潜能相关的基因富集提供了这些性状在农艺条件下重要性的证据。

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