Transcriptome and association mapping revealed functional genes respond to drought stress in Populus

生物 关联映射 遗传学 转录组 基因 候选基因 上位性 单倍型 单核苷酸多态性 数量性状位点 遗传关联 毛果杨 耐旱性 基因组学 功能基因组学 等位基因 基因表达 基因组 植物 基因型
作者
Fangyuan Song,Jiaxuan Zhou,Mingyang Quan,Liang Xiao,Wenjie Lu,Shitong Qin,Yuanyuan Fang,Dan Wang,Peng Li,Qingzhang Du,Yousry A. El‐Kassaby,Deqiang Zhang
出处
期刊:Frontiers in Plant Science [Frontiers Media]
卷期号:13 被引量:4
标识
DOI:10.3389/fpls.2022.829888
摘要

Drought frequency and severity are exacerbated by global climate change, which could compromise forest ecosystems. However, there have been minimal efforts to systematically investigate the genetic basis of the response to drought stress in perennial trees. Here, we implemented a systems genetics approach that combines co-expression analysis, association genetics, and expression quantitative trait nucleotide (eQTN) mapping to construct an allelic genetic regulatory network comprising four key regulators (PtoeIF-2B, PtoABF3, PtoPSB33, and PtoLHCA4) under drought stress conditions. Furthermore, Hap_01PtoeIF-2B, a superior haplotype associated with the net photosynthesis, was revealed through allelic frequency and haplotype analysis. In total, 75 candidate genes related to drought stress were identified through transcriptome analyses of five Populus cultivars (P. tremula × P. alba, P. nigra, P. simonii, P. trichocarpa, and P. tomentosa). Through association mapping, we detected 92 unique SNPs from 38 genes and 104 epistatic gene pairs that were associated with six drought-related traits by association mapping. eQTN mapping unravels drought stress-related gene loci that were significantly associated with the expression levels of candidate genes for drought stress. In summary, we have developed an integrated strategy for dissecting a complex genetic network, which facilitates an integrated population genomics approach that can assess the effects of environmental threats.

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