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玉米(L.)中与苹果酸酶相关基因的鉴定及非生物胁迫表达谱分析

Identification and Abiotic Stress Expression Profiling of Malic Enzyme-Associated Genes in Maize ( L.).

作者信息

Yan Haishan, Li Yongsheng, Ma Zengke, Wang Ruihong, Zhou Yuqian, Zhou Wenqi, He Haijun, Wang Xiaojuan, Lian Xiaorong, Dong Xiaoyun, Yao Lirong

机构信息

College of Agriculture, Gansu Agricultural University, Lanzhou 730070, China.

Crop Research Institute, Gansu Academy of Agricultural Sciences, Lanzhou 730070, China.

出版信息

Plants (Basel). 2025 May 24;14(11):1603. doi: 10.3390/plants14111603.

Abstract

Malic enzyme (ME), a key enzyme involved in various metabolic pathways, catalyzes the oxidative decarboxylation of malate to generate pyruvate, CO, and NADPH. This enzyme plays essential roles in plant growth, development, and stress responses. In this study, 13 maize genes were identified by performing homologous sequence alignment using the sequences of the gene family as references. Chromosomal localization analysis demonstrated that genes were not detected on chromosomes 9 and 10, whereas the remaining eight chromosomes exhibited an uneven distribution of these genes. Phylogenetic analysis indicated a high degree of conservation between maize genes and their orthologs in teosinte ( L.) throughout the evolutionary history of Poaceae crops. Furthermore, cis-acting element analysis of promoters demonstrated that members of the maize gene family harbor regulatory elements associated with stress responses, phytohormones signaling, and light responsiveness, which suggests their potential role in abiotic stress adaptation. Expression profiling under stress conditions revealed differential expression levels of maize genes, with emerging as a promising candidate gene for enhancing stress resistance. These results lay a solid foundation for further investigation into the biological functions of the maize gene family.

摘要

苹果酸酶(ME)是参与多种代谢途径的关键酶,催化苹果酸的氧化脱羧反应生成丙酮酸、二氧化碳和NADPH。该酶在植物生长、发育和应激反应中发挥着重要作用。在本研究中,以该基因家族的序列为参考,通过进行同源序列比对鉴定出了13个玉米基因。染色体定位分析表明,在第9和第10号染色体上未检测到这些基因,而其余8条染色体上这些基因分布不均。系统发育分析表明,在禾本科作物的整个进化历史中,玉米基因与其在大刍草(Zea mays ssp. parviglumis)中的直系同源基因之间具有高度的保守性。此外,启动子的顺式作用元件分析表明,玉米基因家族的成员含有与应激反应、植物激素信号传导和光响应相关的调控元件,这表明它们在非生物胁迫适应中具有潜在作用。胁迫条件下的表达谱分析揭示了玉米基因的差异表达水平,其中一个基因成为增强抗逆性的有前景的候选基因。这些结果为进一步研究玉米基因家族的生物学功能奠定了坚实的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26b8/12157182/d13f490e155f/plants-14-01603-g001.jpg

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