Genotype by Environment Interactions in Gene Regulation Underlie the Response to Soil Drying in the Model Grass Brachypodium distachyon.

IF 5.3 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jie Yun, Angela C Burnett, Alistair Rogers, David L Des Marais
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引用次数: 0

Abstract

Gene expression is a quantitative trait under the control of genetic and environmental factors and their interaction, so-called genotype and environment (G × E). Understanding the mechanisms driving G × E is fundamental for ensuring stable crop performance across environments and for predicting the response of natural populations to climate change. Gene expression is regulated through complex molecular networks, yet the interactions between genotype and environment in gene regulation are rarely considered, particularly at the genome scale. Current frameworks and experimental designs often lack power to explicitly test network rewiring or to systematically compare regulatory networks. Here, we leverage a highly replicated RNA-sequencing dataset to model genome-scale gene expression variation between two natural accessions of the model grass Brachypodium distachyon and their response to soil drying. We first identified genotypic, environmental, and G × E effects on physiological, metabolic, and gene expression traits. We identify patterns of conservation-or variation-in gene coexpression networks and link these coexpression features to physiological traits. We further develop predictions of gene-gene interactions using causal inference and screen for interactions specific to-or with higher affinity in-a single genotype, treatment, or their interaction, G × E. Our analyses identify variation in candidate gene regulatory networks that may shape the evolution of environmental response in B. distachyon. We highlight the environmentally dependent regulatory control of several metabolic traits shown previously to play a role in drought acclimation. The framework presented here provides a scalable approach for more complex comparisons, particularly with the growing availability of large datasets from technologies such as single-cell transcriptomics.

模式草短茅(Brachypodium distachyon)对土壤干燥反应的基因型与环境互作调控。
基因表达是一种受遗传和环境因素及其相互作用控制的数量性状,即基因型和环境(gxe)。了解驱动gxe的机制对于确保作物在不同环境下的稳定表现以及预测自然种群对气候变化的响应至关重要。基因表达是通过复杂的分子网络调控的,但基因型和环境在基因调控中的相互作用很少被考虑,特别是在基因组尺度上。目前的框架和实验设计往往缺乏明确测试网络重新布线或系统比较监管网络的能力。在这里,我们利用高度复制的rna测序数据集来模拟两种天然模型草短茅(Brachypodium distachyon)之间的基因组尺度基因表达差异及其对土壤干燥的响应。我们首先确定了基因型、环境和gxe对生理、代谢和基因表达性状的影响。我们确定了基因共表达网络中的保守或变异模式,并将这些共表达特征与生理性状联系起来。我们进一步发展了基因相互作用的预测,使用因果推理和筛选特定于或与单一基因型、治疗或它们的相互作用具有更高亲和力的相互作用,G × e。我们的分析确定了候选基因调控网络的变化,这些基因调控网络可能会影响B. distachyon环境反应的进化。我们强调环境依赖的几种代谢性状的调节控制先前显示在干旱适应中发挥作用。本文提出的框架为更复杂的比较提供了一种可扩展的方法,特别是随着单细胞转录组学等技术的大型数据集的日益可用性。
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来源期刊
Molecular biology and evolution
Molecular biology and evolution 生物-进化生物学
CiteScore
19.70
自引率
3.70%
发文量
257
审稿时长
1 months
期刊介绍: Molecular Biology and Evolution Journal Overview: Publishes research at the interface of molecular (including genomics) and evolutionary biology Considers manuscripts containing patterns, processes, and predictions at all levels of organization: population, taxonomic, functional, and phenotypic Interested in fundamental discoveries, new and improved methods, resources, technologies, and theories advancing evolutionary research Publishes balanced reviews of recent developments in genome evolution and forward-looking perspectives suggesting future directions in molecular evolution applications.
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