转录因子ZmMYBR24基因参与玉米(Zea mays L.)的多种非生物胁迫。

IF 4 2区 生物学 Q1 PLANT SCIENCES
Liangliang Bao, Wen Sun, Jiaxin Wang, Yuyang Zhou, Jiahao Wang, Qi Wang, Dequan Sun, Hong Lin, Jinsheng Fan, Yu Zhou, Lin Zhang, Zhenhua Wang, Chunxiang Li, Hong Di
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引用次数: 0

摘要

MYB转录因子构成了一个功能多样的家族,在调节植物对一系列非生物胁迫的反应中起着核心作用。在前人研究的基础上,我们鉴定并鉴定了一个参与盐、碱和低温胁迫应答的玉米MYB转录因子ZmMYBR24基因。本研究旨在探讨ZmMYBR24在盐、碱和低温胁迫下的功能和机制。我们假设ZmMYBR24调节生物合成途径影响玉米对多种非生物胁迫的抗性。结果表明,ZmMYBR24基因表达量显著上调(p < 0.01),表达倍数变化范围为1.54 ~ 25.69倍。表型上,与野生型B73相比,zmmybr24突变系在胁迫下表现出更明显的幼苗和根生长抑制。通过相关表达模式分析和突变系评价,证实ZmMYBR24是多种非生物抗性的正调控转录因子。对这两个品系的RNA-seq分析显示了差异表达基因(DEGs),基因本体(GO)和KEGG富集分析表明,ZmMYBR24可能通过调节类黄酮生物合成相关基因的表达来介导应激反应。突变型植株与野生型植株在通路相关基因的表达上存在显著差异。通过对80个玉米自交系的单倍型分析,发现了16个ZmMYBR24编码区单倍型,包括25个snp和17个indels,其中HAP12为较优单倍型。这些结果表明,ZmMYBR24基因通过调节类黄酮生物合成途径来应对盐、碱和低温等不利气候条件,从而提高玉米产量。总的来说,这些发现为玉米适应非生物胁迫的分子机制提供了新的见解,并为针对多逆境抗性的育种计划奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Transcription Factor ZmMYBR24 Gene Is Involved in a Variety of Abiotic Stresses in Maize (Zea mays L.).

MYB transcription factors constitute a diverse and functionally versatile family, playing central roles in regulating plant responses to a range of abiotic stressors. Based on previous research, we identified and characterized a maize MYB transcription factor gene, ZmMYBR24, which is involved in responses to salt, alkali, and low-temperature stress. This study aimed to investigate the function and mechanism of ZmMYBR24 in response to salt, alkali, and low-temperature stresses. We hypothesized that ZmMYBR24 regulates biosynthetic pathways to influence maize resistance to multiple abiotic stresses. The results indicate that ZmMYBR24 expression was markedly upregulated (p < 0.01) and the fold-change in gene expression ranged from 1.54 to 25.69 when plants were exposed to these combined stresses. Phenotypically, the zmmybr24 mutant line exhibited more pronounced inhibition of seedling and root growth under stress compared to the wild-type B73 line. Based on a correlation expression pattern analysis and mutant line evaluation, ZmMYBR24 was confirmed to be a positive regulatory transcription factor for multiple types of abiotic stress resistance. An RNA-seq analysis of both lines revealed differentially expressed genes (DEGs), with gene ontology (GO) and KEGG enrichment analyses indicating that ZmMYBR24 may mediate stress responses by modulating the expression of genes involved in flavonoid biosynthesis. Notable differences were observed in the expression of pathway-associated genes between the mutant and wild-type plants. A haplotype analysis across 80 inbred maize lines revealed 16 ZmMYBR24 coding region haplotypes-comprising 25 SNPs and 17 InDels-with HAP12 emerging as a superior haplotype. These results demonstrate that ZmMYBR24 enhances maize yields by regulating the flavonoid biosynthesis pathway in response to adverse climatic conditions including salt, alkaline conditions, and low temperatures. Collectively, these findings offer novel insights into the molecular mechanisms underlying maize adaptation to combined abiotic stresses and lay the groundwork for breeding programs targeting multi-stress resistance.

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来源期刊
Plants-Basel
Plants-Basel Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
6.50
自引率
11.10%
发文量
2923
审稿时长
15.4 days
期刊介绍: Plants (ISSN 2223-7747), is an international and multidisciplinary scientific open access journal that covers all key areas of plant science. It publishes review articles, regular research articles, communications, and short notes in the fields of structural, functional and experimental botany. In addition to fundamental disciplines such as morphology, systematics, physiology and ecology of plants, the journal welcomes all types of articles in the field of applied plant science.
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