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植物的直接 RNA 测序:实际应用与未来展望。

Direct RNA sequencing in plants: Practical applications and future perspectives.

机构信息

State Key Laboratory for Conservation and Utilization of Subtropical Agro-bioresources, College of Life Science and Technology, Guangxi University, Nanning 530004, China.

National Key Laboratory of Crop Genetic Improvement, College of Informatics, Huazhong Agricultural University, Wuhan 430070, China.

出版信息

Plant Commun. 2024 Nov 11;5(11):101064. doi: 10.1016/j.xplc.2024.101064. Epub 2024 Aug 18.

Abstract

The transcriptome serves as a bridge that links genomic variation to phenotypic diversity. A vast number of studies using next-generation RNA sequencing (RNA-seq) over the last 2 decades have emphasized the essential roles of the plant transcriptome in response to developmental and environmental conditions, providing numerous insights into the dynamic changes, evolutionary traces, and elaborate regulation of the plant transcriptome. With substantial improvement in accuracy and throughput, direct RNA sequencing (DRS) has emerged as a new and powerful sequencing platform for precise detection of native and full-length transcripts, overcoming many limitations such as read length and PCR bias that are inherent to short-read RNA-seq. Here, we review recent advances in dissecting the complexity and diversity of plant transcriptomes using DRS as the main technological approach, covering many aspects of RNA metabolism, including novel isoforms, poly(A) tails, and RNA modification, and we propose a comprehensive workflow for processing of plant DRS data. Many challenges to the application of DRS in plants, such as the need for machine learning tools tailored to plant transcriptomes, remain to be overcome, and together we outline future biological questions that can be addressed by DRS, such as allele-specific RNA modification. This technology provides convenient support on which the connection of distinct RNA features is tightly built, sustainably refining our understanding of the biological functions of the plant transcriptome.

摘要

转录组作为连接基因组变异与表型多样性的桥梁。在过去的 20 年中,大量使用下一代 RNA 测序 (RNA-seq) 的研究强调了植物转录组在响应发育和环境条件方面的重要作用,为深入了解植物转录组的动态变化、进化痕迹和精细调控提供了许多见解。随着准确性和通量的大幅提高,直接 RNA 测序 (DRS) 已成为一种新的强大测序平台,可精确检测天然和全长转录本,克服了短读长 RNA-seq 固有的读长和 PCR 偏倚等许多限制。在这里,我们综述了使用 DRS 作为主要技术方法解析植物转录组复杂性和多样性的最新进展,涵盖了 RNA 代谢的许多方面,包括新型异构体、poly(A)尾和 RNA 修饰,并提出了用于处理植物 DRS 数据的综合工作流程。DRS 在植物中的应用仍面临许多挑战,例如需要针对植物转录组定制的机器学习工具,我们共同概述了 DRS 可以解决的未来生物学问题,如等位基因特异性 RNA 修饰。该技术为连接不同的 RNA 特征提供了便利支持,可持续地完善我们对植物转录组生物学功能的理解。

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