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Du13 编码一个 C H 锌指蛋白,它在水稻胚乳中调节 Wx 前体 mRNA 的剪接和 microRNA 的生物发生。

Du13 encodes a C H zinc-finger protein that regulates Wx pre-mRNA splicing and microRNA biogenesis in rice endosperm.

机构信息

State Key Laboratory for Crop Genetics and Germplasm Enhancement, Jiangsu Plant Gene Engineering Research Center, Nanjing Agricultural University, Nanjing, China.

College of Life Sciences, Nanjing Agricultural University, Nanjing, China.

出版信息

Plant Biotechnol J. 2022 Jul;20(7):1387-1401. doi: 10.1111/pbi.13821. Epub 2022 May 13.

Abstract

Amylose content is a crucial physicochemical property responsible for the eating and cooking quality of rice (Oryza sativa L.) grain and is mainly controlled by the Waxy (Wx) gene. Previous studies have identified several Dull genes that modulate the expression of the Wx allele in japonica rice by affecting the splicing efficiency of the Wx pre-mRNA. Here, we uncover dual roles for a novel Dull gene in pre-mRNA splicing and microRNA processing. We isolated the dull mutant, du13, with a dull endosperm and low amylose content. Map-based cloning showed that Du13 encodes a C H zinc-finger protein. Du13 coordinates with the nuclear cap-binding complex to regulate the splicing of Wx transcripts in rice endosperm. Moreover, Du13 also regulates alternative splicing of other protein-coding transcripts and affects the biogenesis of a subset of microRNAs. Our results reveal an evolutionarily conserved link between pre-mRNA splicing and microRNA biogenesis in rice endosperm. Our findings also provide new insights into the functions of Dull genes in rice and expand our knowledge of microRNA biogenesis in monocots.

摘要

直链淀粉含量是决定稻米(Oryza sativa L.)食用和蒸煮品质的关键理化性质,主要受蜡质(Wx)基因控制。先前的研究已经确定了几个 Dull 基因,它们通过影响 Wx 前体 mRNA 的剪接效率来调节粳稻中 Wx 等位基因的表达。在这里,我们揭示了一个新的 Dull 基因在 pre-mRNA 剪接和 microRNA 加工中的双重作用。我们分离到 dull 突变体 du13,其胚乳暗淡,直链淀粉含量低。基于图谱的克隆表明,Du13 编码一个 C H 锌指蛋白。Du13 与核帽结合复合物协调,调节水稻胚乳中 Wx 转录物的剪接。此外,Du13 还调节其他蛋白编码转录物的可变剪接,并影响一组 microRNAs 的生物发生。我们的结果揭示了稻米胚乳中 pre-mRNA 剪接和 microRNA 生物发生之间的进化保守联系。我们的研究结果还为水稻 dull 基因的功能提供了新的见解,并扩展了我们对单子叶植物 microRNA 生物发生的认识。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f108/11383022/80919d1f574e/PBI-20-1387-g008.jpg

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