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转录组分析干旱胁迫下玉米叶片中干旱响应和耐旱机制。

Transcriptome analysis of drought-responsive and drought-tolerant mechanisms in maize leaves under drought stress.

机构信息

Jilin Engineering Research Center for Crop Biotechnology Breeding, College of Plant Science, Jilin University, Changchun, China.

出版信息

Physiol Plant. 2023 Mar;175(2):e13875. doi: 10.1111/ppl.13875.

Abstract

Maize is a major crop essential for food and feed, but its production is threatened by various biotic and abiotic stresses. Drought is one of the most common abiotic stresses, causing severe crop yield reduction. Although several studies have been devoted to selecting drought-tolerant maize lines and detecting the drought-responsive mechanism of maize, the transcriptomic differences between drought-tolerant and drought-susceptible maize lines are still largely unknown. In our study, RNA-seq was performed on leaves of the drought-tolerant line W9706 and the drought-susceptible line B73 after drought treatment. We identified 3147 differentially expressed genes (DEGs) between these two lines. The upregulated DEGs in W9706 were enriched in specific processes, including ABA signaling, wax biosynthesis, CHO metabolism, signal transduction and brassinosteroid biosynthesis-related processes, while the downregulated DEGs were enriched in specific processes, such as stomatal movement. Altogether, transcriptomic analysis suggests that the different drought resistances were correlated with the differential expression of genes, while the drought tolerance of W9706 is due to the more rapid response to stimulus, higher water retention capacity and stable cellular environment under water deficit conditions.

摘要

玉米是一种重要的粮食和饲料作物,但它的生产受到各种生物和非生物胁迫的威胁。干旱是最常见的非生物胁迫之一,导致严重的作物减产。虽然已经有几项研究致力于选择耐旱的玉米品系,并检测玉米对干旱的响应机制,但耐旱和耐旱玉米品系之间的转录组差异在很大程度上仍然未知。在我们的研究中,对耐旱品系 W9706 和耐旱品系 B73 的叶片进行了 RNA-seq 分析。我们在这两个品系之间鉴定了 3147 个差异表达基因(DEGs)。W9706 中上调的 DEGs 富集在特定的过程中,包括 ABA 信号转导、蜡质生物合成、CHO 代谢、信号转导和油菜素内酯生物合成相关过程,而下调的 DEGs 富集在特定的过程中,如气孔运动。总之,转录组分析表明,不同的耐旱性与基因的差异表达有关,而 W9706 的耐旱性是由于在水分亏缺条件下对刺激的反应更快、保持水分的能力更高和细胞环境更稳定。

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