1.1)深圳大学生命与海洋科学学院,广东省植物表观遗传学重点实验室,深圳 518060;2.2)深圳大学龙华生物产业创新研究院,深圳 518060
广东省自然科学基金(2019A1515011222,2019A1515110162, 2021A1515010482),广东省创新团队项目(2014ZT05S078) 和深 圳市自然科学基金(JCYJ20190808112207542, JCYJ20190808141815083) 资助。
1.1)Guangdong Provincial Key Laboratory for Plant Epigenetics, College of Life Sciences and Oceanography, Shenzhen University, Shenzhen 518060, China;2.2)Longhua Bioindustry and Innovation Research Institute, Shenzhen University, Shenzhen 518060, China
This study was supported by grants from Natural Science Foundation of Guangdong Province (2019A1515011222, 2019A1515110162, 2021A1515010482), Guangdong Innovation Research Team Fund (2014ZT05S078), and Shenzhen Basic Research General Project (JCYJ20190808112207542, JCYJ20190808141815083).
microRNA(miRNA)是一类广泛存在于真核生物中长度为20~24 nt的内源非编码小RNA,它们通过对靶基因mRNA进行切割或翻译抑制,在转录后水平调控靶基因的表达。近期研究表明,miRNA参与植物生长发育与逆境胁迫响应的多个重要生物学过程,对作物的农艺性状也起到重要的调控作用。玉米作为重要的粮食、饲料和工业原料,提高其产量和品质对于保障世界粮食安全至关重要,然而与模式植物拟南芥和水稻相比,玉米中miRNA的研究仍然相对较少,理解miRNA在玉米中的功能和调控机理有助于通过分子育种对关键农艺性状进行遗传改良。本文综述了玉米中miRNA的发现与鉴定,系统总结了参与玉米miRNA代谢途径的关键蛋白DCL、AGO和HEN1的研究进展,重点阐述了在玉米生长发育和非生物胁迫响应过程中已开展功能研究miRNA的调控作用,并对玉米miRNA研究当前存在的问题和未来的发展趋势进行了讨论。
MicroRNAs (miRNAs) are a class of endogenous non-coding small RNAs with a length of 20-24 nucleotides that present widely in eukaryotes. miRNAs regulate the expression of their target genes post-transcriptionally through transcript cleavage or translation inhibition. Recent studies have shown that miRNAs are involved in a wide variety of biological processes of plant growth, development and stress responses, and play essential roles in regulating agronomic traits of crops. Maize is an important staple food, feed and industrial raw material, and thus it is crucial to improve maize yield and quality to ensure world food security. Compared to model plants Arabidopsis and rice, the studies on maize miRNAs are still relatively limited. The understanding of functions and regulatory mechanisms of miRNAs in maize is essential for engineering important agronomic traits genetically through molecular breeding. In this article, we review the discovery and identification of maize miRNAs, most of which are tissue-specific and spatiotemporally expressed. Up to now, a total of 325 mature miRNAs from 174 precursors were identified in maize genome, belonging to 29 miRNA families. We also systematically summarize the functions of key components in maize miRNA biogenesis pathways, including DCL, AGO and HEN1. Mutations in these miRNA processing proteins result in pleiotropic developmental phenotypes, suggesting the important regulatory roles for miRNAs in maize development. MiRNAs whose functions have been characterized in maize growth and development are discussed, including those involved in root formation, leaf morphogenesis, grain maturation and reproductive development. Furthermore, function of miRNAs in responses to abiotic stresses, such as salt stress, drought stress, temperature stress and nutrition stress are elaborated, with the highlight on miR169-NF-YA, miR399-PHO2, and miR528-LAC3 regulatory modules. We also discuss the current existed issues and future perspectives in maize miRNA study. Despite the identification of a large number of maize miRNAs, research on the functions and regulatory mechanisms of miRNAs in maize is still very limited, and it is still required to generate essential genetic materials and take advantage of multiple experimental strategies to perform in-depth and systematic studies on miRNA and their target genes. It is believed that miRNAs are valuable gene resources and a better understanding of miRNA-mediated regulatory network would be beneficial for engineering maize varieties with improved agronomic traits.
潘锦康,李晶,刘琳. microRNA在玉米生长发育及非生物胁迫响应中的调控功能[J].生物化学与生物物理进展,2023,50(2):277-290
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