A module involving SEED SHATTERING 1 facilitates seed shattering by suppressing lignin biosynthesis in rice

脱落 水稻 生物 单甘醇 突变体 肉桂醇脱氢酶 转录因子 木质素 拟南芥 植物 驯化 基因 生物化学 遗传学 生物合成
作者
Wei He,Leqin Chang,Jing Ning,Min Hu,Linhua Wu,Wenguang Wu,Zuofeng Zhu
出处
期刊:Plant Physiology [Oxford University Press]
卷期号:198 (4) 被引量:2
标识
DOI:10.1093/plphys/kiaf241
摘要

Reduced seed shattering is a key goal in crop domestication and improvement. Seed shattering 1 (Sh1) was parallel selected during the domestication of the Poaceae family. Investigating the regulatory network of OsSh1 in controlling seed shattering in rice (Oryza sativa L.) offers biological insights and potential for agricultural applications. Here, we identified a transcription factor of CONSTANS, CONSTANS-LIKE, and TOC1 (CCT) family, OsCCT22, that physically interacts with OsSh1 in rice. oscct22 mutants exhibited a phenotype similar to ossh1 mutants, characterized by incomplete development of abscission layers and reduced seed shattering ability. Transcriptomic analysis revealed that OsSh1 and OsCCT22 jointly regulate the expression of genes involved in lignin biosynthesis. Notably, the transcription of the cinnamyl alcohol dehydrogenase (CAD) gene OsCAD2, caffeic acid O-methyltransferase (OsCOMT), and O-methyltransferase 16 (ROMT-16) was directly inhibited by OsSh1 binding to their key binding motif. This repression was enhanced by the interaction between OsCCT22 and OsSh1. Additionally, our study suggests that OsSh1 regulates the transcription of OsCAD2 by modulating histone methylation modifications near the first intron. Loss-of-function mutations in OsCAD2 led to the formation of more extensive abscission layers and a significant reduction in lignin deposition, resulting in natural seed shattering. Our findings reveal that the OsCCT22-OsSh1-OsCAD2 module affects the lignin deposition of the abscission zone and seed shattering in rice and provides a target for the genetic improvement of seed shattering in crop breeding.

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