Shanghai Center for Plant Stress Biology and Center of Excellence in Molecular Plant Sciences, Chinese Academy of Science, Shanghai, 201602, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.
New Phytol. 2021 Oct;232(2):835-852. doi: 10.1111/nph.17635. Epub 2021 Aug 8.
Despite a much higher proportion of intragenic heterochromatin-containing genes in crop genomes, the importance of intragenic heterochromatin in crop development remains unclear. Intragenic heterochromatin can be recognised by a protein complex, ASI1-AIPP1-EDM2 (AAE) complex, to regulate alternative polyadenylation. Here, we investigated the impact of rice ASI1 on global poly(A) site usage through poly(A) sequencing and ASI1-dependent regulation on rice development. We found that OsASI1 is essential for rice pollen development and flowering. OsASI1 dysfunction has an important impact on global poly(A) site usage, which is closely related to heterochromatin marks. Intriguingly, OsASI1 interacts with the intronic heterochromatin of OsXRNL, a nuclear XRN family exonuclease gene involved in the processing of an miRNA precursor, to promote the processing of full-length OsXRNL and regulate miRNA abundance. We found that OsASI1-mediated regulation of pollen development partially depends on OsXRNL. Finally, we characterised the rice AAE complex and its involvement in alternative polyadenylation and pollen development. Our findings help to elucidate an epigenetic mechanism governing miRNA abundance and rice development, and provide a valuable resource for studying the epigenetic mechanisms of many important processes in crops.
尽管作物基因组中内含子异染色质基因的比例要高得多,但内含子异染色质在作物发育中的重要性仍不清楚。内含子异染色质可以被一个蛋白质复合物,ASI1-AIPP1-EDM2(AAE)复合物识别,以调节可变多聚腺苷酸化。在这里,我们通过多聚腺苷酸化测序和 ASI1 对水稻发育的依赖性调节,研究了水稻 ASI1 对全局多聚腺苷酸化位点使用的影响。我们发现 OsASI1 对水稻花粉发育和开花是必需的。OsASI1 功能障碍对全局多聚腺苷酸化位点的使用有重要影响,这与异染色质标记密切相关。有趣的是,OsASI1 与 OsXRNL 的内含子异染色质相互作用,OsXRNL 是一种核 XRN 家族外切酶基因,参与 miRNA 前体的加工,以促进全长 OsXRNL 的加工并调节 miRNA 的丰度。我们发现,OsASI1 对花粉发育的调节部分依赖于 OsXRNL。最后,我们对水稻 AAE 复合物及其在可变多聚腺苷酸化和花粉发育中的作用进行了表征。我们的研究结果有助于阐明一个控制 miRNA 丰度和水稻发育的表观遗传机制,并为研究作物中许多重要过程的表观遗传机制提供了有价值的资源。