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关联遗传学和转录组分析揭示了一条参与调节光合作用的赤霉素响应途径。

Association genetics and transcriptome analysis reveal a gibberellin-responsive pathway involved in regulating photosynthesis.

作者信息

Xie Jianbo, Tian Jiaxing, Du Qingzhang, Chen Jinhui, Li Ying, Yang Xiaohui, Li Bailian, Zhang Deqiang

机构信息

National Engineering Laboratory for Tree Breeding, College of Biological Sciences and Technology, Beijing Forestry University, No. 35, Qinghua East Road, Beijing 100083, China Key Laboratory of Genetics and Breeding in Forest Trees and Ornamental Plants, Ministry of Education, College of Biological Sciences and Technology, Beijing Forestry University, No. 35, Qinghua East Road, Beijing 100083, China.

National Engineering Laboratory for Tree Breeding, College of Biological Sciences and Technology, Beijing Forestry University, No. 35, Qinghua East Road, Beijing 100083, China Key Laboratory of Genetics and Breeding in Forest Trees and Ornamental Plants, Ministry of Education, College of Biological Sciences and Technology, Beijing Forestry University, No. 35, Qinghua East Road, Beijing 100083, China Department of Forestry, North Carolina State University, Raleigh, NC 27695-8203, USA.

出版信息

J Exp Bot. 2016 May;67(11):3325-38. doi: 10.1093/jxb/erw151. Epub 2016 Apr 18.

Abstract

Gibberellins (GAs) regulate a wide range of important processes in plant growth and development, including photosynthesis. However, the mechanism by which GAs regulate photosynthesis remains to be understood. Here, we used multi-gene association to investigate the effect of genes in the GA-responsive pathway, as constructed by RNA sequencing, on photosynthesis, growth, and wood property traits, in a population of 435 Populus tomentosa By analyzing changes in the transcriptome following GA treatment, we identified many key photosynthetic genes, in agreement with the observed increase in measurements of photosynthesis. Regulatory motif enrichment analysis revealed that 37 differentially expressed genes related to photosynthesis shared two essential GA-related cis-regulatory elements, the GA response element and the pyrimidine box. Thus, we constructed a GA-responsive pathway consisting of 47 genes involved in regulating photosynthesis, including GID1, RGA, GID2, MYBGa, and 37 photosynthetic differentially expressed genes. Single nucleotide polymorphism (SNP)-based association analysis showed that 142 SNPs, representing 40 candidate genes in this pathway, were significantly associated with photosynthesis, growth, and wood property traits. Epistasis analysis uncovered interactions between 310 SNP-SNP pairs from 37 genes in this pathway, revealing possible genetic interactions. Moreover, a structural gene-gene matrix based on a time-course of transcript abundances provided a better understanding of the multi-gene pathway affecting photosynthesis. The results imply a functional role for these genes in mediating photosynthesis, growth, and wood properties, demonstrating the potential of combining transcriptome-based regulatory pathway construction and genetic association approaches to detect the complex genetic networks underlying quantitative traits.

摘要

赤霉素(GAs)调控植物生长发育过程中的一系列重要进程,包括光合作用。然而,赤霉素调控光合作用的机制仍有待明确。在此,我们运用多基因关联分析,研究了通过RNA测序构建的赤霉素响应途径中的基因,对435株毛白杨群体光合作用、生长和木材性质性状的影响。通过分析赤霉素处理后的转录组变化,我们鉴定出许多关键光合基因,这与观察到的光合作用测量值增加一致。调控基序富集分析表明,37个与光合作用相关的差异表达基因共享两个重要的赤霉素相关顺式调控元件,即赤霉素响应元件和嘧啶盒。因此,我们构建了一个由47个参与调控光合作用的基因组成的赤霉素响应途径,包括GID1、RGA、GID2、MYBGa和37个光合差异表达基因。基于单核苷酸多态性(SNP)的关联分析表明,该途径中代表40个候选基因的142个SNP与光合作用、生长和木材性质性状显著相关。上位性分析揭示了该途径中37个基因的310个SNP-SNP对之间的相互作用,揭示了可能的遗传相互作用。此外,基于转录丰度时间进程的结构基因-基因矩阵有助于更好地理解影响光合作用的多基因途径。结果表明这些基因在介导光合作用、生长和木材性质方面具有功能作用,证明了结合基于转录组的调控途径构建和遗传关联方法来检测数量性状潜在复杂遗传网络的潜力。

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