Division of Life Science, The Hong Kong University of Science & Technology, Hong Kong, China.
Division of Life Science, The Hong Kong University of Science & Technology, Hong Kong, China.
Mol Cell. 2023 Jun 1;83(11):1810-1826.e8. doi: 10.1016/j.molcel.2023.05.004.
Microprocessor (MP), DROSHA-DGCR8, processes primary miRNA transcripts (pri-miRNAs) to initiate miRNA biogenesis. The canonical cleavage mechanism of MP has been extensively investigated and comprehensively validated for two decades. However, this canonical mechanism cannot account for the processing of certain pri-miRNAs in animals. In this study, by conducting high-throughput pri-miRNA cleavage assays for approximately 260,000 pri-miRNA sequences, we discovered and comprehensively characterized a noncanonical cleavage mechanism of MP. This noncanonical mechanism does not need several RNA and protein elements essential for the canonical mechanism; instead, it utilizes previously unrecognized DROSHA dsRNA recognition sites (DRESs). Interestingly, the noncanonical mechanism is conserved across animals and plays a particularly significant role in C. elegans. Our established noncanonical mechanism elucidates MP cleavage in numerous RNA substrates unaccounted for by the canonical mechanism in animals. This study suggests a broader substrate repertoire of animal MPs and an expanded regulatory landscape for miRNA biogenesis.
微处理器(MP)、DROSHA-DGCR8,加工初级 miRNA 转录本(pri-miRNAs)以启动 miRNA 生物发生。MP 的经典切割机制已被广泛研究,并经过二十年的综合验证。然而,这种经典机制并不能解释动物中某些 pri-miRNA 的加工。在这项研究中,通过对大约 260000 个 pri-miRNA 序列进行高通量 pri-miRNA 切割分析,我们发现并全面描述了 MP 的非经典切割机制。这种非经典机制不需要经典机制所需的几个 RNA 和蛋白质元件;相反,它利用了以前未被识别的 DROSHA dsRNA 识别位点(DRESs)。有趣的是,非经典机制在动物中是保守的,在秀丽隐杆线虫中尤为重要。我们建立的非经典机制阐明了经典机制无法解释的动物中许多 RNA 底物的 MP 切割。本研究表明动物 MPs 的底物谱更广,miRNA 生物发生的调控范围更广。