Combined Physiological and Transcriptomic Analysis Reveals Key Regulatory Networks and Potential Hub Genes Controlling Chilling Tolerance During Soybean Germination.

IF 2.3 3区 生物学 Q2 PLANT SCIENCES
Plant Direct Pub Date : 2024-12-17 eCollection Date: 2024-12-01 DOI:10.1002/pld3.70027
Jianguo Xie, Yuhong Zheng, Guang Li, Wei Zhang, Fanfan Meng, Xuhong Fan, Xingmiao Sun, Yunfeng Zhang, Mingliang Wang, Qingshan Chen, Shuming Wang, Hongwei Jiang
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引用次数: 0

Abstract

Chilling is an important limiting factor for seed germination of soybean (Glycine max [L.] Merr.). To reveal the regulatory mechanism of chilling tolerance during the soybean germination stage, based on previous studies, the chilling tolerance line R48 and chilling sensitive line R89 in chromosome segment substitution lines were selected for physiological index determination and transcriptome sequencing. It was found that reactive oxygen species (ROS) scavenging system related enzymes, ROS, and osmotic regulators were significantly different between the two lines. Gene Ontology enrichment and Kyoto Encyclopedia of Genes and Genomes enrichment were performed on the differentially expressed genes obtained by transcriptome sequencing. It was found that terms or pathways related to flavonoids, unsaturated fatty acids, and abscisic acid were highly enriched. In addition, weighted gene coexpression network analysis (WGCNA) method was used to analyze the physiological index data and transcriptome sequencing data. Four main coexpression modules significantly related to physiological indicators were obtained, and the hub genes in each module were screened according to eigengene-based connectivity value. Haplotype analysis of important candidate genes using soybean germplasm resources showed that there were significant differences in germination indexes between different major haplotypes of Glyma.17G163200. Based on the results of enrichment analysis and WGCNA, the regulation model of low temperature tolerance during soybean germination was preliminarily drawn. This study will provide theoretical guidance for analyzing the molecular regulation mechanism of cold tolerance in soybean germination stage.

结合生理和转录组学分析揭示了大豆发芽过程中关键的调控网络和潜在的枢纽基因。
低温是大豆种子萌发的重要限制因素。)稳定)。为揭示大豆萌发期抗寒性的调控机制,在前人研究的基础上,选取染色体片段代换系中的抗寒系R48和抗寒敏感系R89进行生理指标测定和转录组测序。研究发现,两种品系活性氧清除系统相关酶、活性氧和渗透调节因子含量存在显著差异。对转录组测序获得的差异表达基因进行基因本体富集和京都基因与基因组百科全书富集。发现黄酮类化合物、不饱和脂肪酸和脱落酸相关的术语或途径高度丰富。此外,采用加权基因共表达网络分析(WGCNA)方法对生理指标数据和转录组测序数据进行分析。获得4个与生理指标显著相关的主要共表达模块,并根据特征基因的连通性值筛选每个模块中的枢纽基因。大豆种质资源中重要候选基因的单倍型分析表明,Glyma.17G163200不同主要单倍型之间的萌发指标存在显著差异。根据富集分析和WGCNA结果,初步绘制了大豆萌发期耐低温调控模型。该研究将为分析大豆萌发期耐冷性的分子调控机制提供理论指导。
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来源期刊
Plant Direct
Plant Direct Environmental Science-Ecology
CiteScore
5.00
自引率
3.30%
发文量
101
审稿时长
14 weeks
期刊介绍: Plant Direct is a monthly, sound science journal for the plant sciences that gives prompt and equal consideration to papers reporting work dealing with a variety of subjects. Topics include but are not limited to genetics, biochemistry, development, cell biology, biotic stress, abiotic stress, genomics, phenomics, bioinformatics, physiology, molecular biology, and evolution. A collaborative journal launched by the American Society of Plant Biologists, the Society for Experimental Biology and Wiley, Plant Direct publishes papers submitted directly to the journal as well as those referred from a select group of the societies’ journals.
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