College of Life Science, Yulin University, Yulin, Shannxi Province, China.
PLoS One. 2023 May 10;18(5):e0285400. doi: 10.1371/journal.pone.0285400. eCollection 2023.
Drought is a major factor that limiting mung bean development. To clarify the molecular mechanism of mung bean in response to drought stress, 2 mung bean groups were established, the experimental group (drought-treated) and the control group (normal water management). With prominent difference of 2 groups in stomatal conductance, relative water content and phenotype, leaf samples were collected at 4 stages, and the physiological index of MDA, POD, chlorophyll, and soluble proteins were estimated. RNA-seq was used to obtain high quality data of samples, and differentially expressed genes were identified by DESeq2. With GO and KEGG analysis, DEGs were enriched into different classifications and pathways. WGCNA was used to detect the relationship between physiological traits and genes, and qPCR was performed to confirm the accuracy of the data. We obtained 169.49 Gb of clean data from 24 samples, and the Q30 of each date all exceeded 94%. In total, 8963 DEGs were identified at 4 stages between the control and treated samples, and the DEGs were involved in most biological processes. 1270 TFs screened from DEGs were clustered into 158 TF families, such as AP2, RLK-Pelle-DLSVA, and NAC TF families. Genes related to physiological traits were closely related to plant hormone signaling, carotenoid biosynthesis, chlorophyll metabolism, and protein processing. This paper provides a large amount of data for drought research in mung bean.
干旱是限制绿豆发展的主要因素。为了阐明绿豆对干旱胁迫的分子机制,建立了 2 个绿豆组,实验组(干旱处理)和对照组(正常水分管理)。由于 2 组间的气孔导度、相对水含量和表型差异明显,在 4 个阶段采集叶片样本,并评估 MDA、POD、叶绿素和可溶性蛋白质等生理指标。使用 RNA-seq 获得样本的高质量数据,并使用 DESeq2 鉴定差异表达基因。通过 GO 和 KEGG 分析,将 DEGs 富集到不同的分类和途径中。使用 WGCNA 检测生理性状和基因之间的关系,并进行 qPCR 以确认数据的准确性。我们从 24 个样本中获得了 169.49 Gb 的清洁数据,每个日期的 Q30 均超过 94%。总共在对照和处理样本之间的 4 个阶段鉴定出了 8963 个差异表达基因,这些基因参与了大多数生物过程。从 DEGs 中筛选出的 1270 个 TFs 聚类为 158 个 TF 家族,如 AP2、RLK-Pelle-DLSVA 和 NAC TF 家族。与生理性状相关的基因与植物激素信号转导、类胡萝卜素生物合成、叶绿素代谢和蛋白质加工密切相关。本文为绿豆的干旱研究提供了大量数据。