Jin Yan, Liang XiaoLin, Wang Xiangting
Department of Geriatrics, Gerontology Institute of Anhui Province, The First Affiliated Hospital, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, Anhui, 230026, China.
The RNA Institute, University of Science and Technology of China, Hefei, Anhui, 230026, China.
Cell Regen. 2025 Jun 4;14(1):20. doi: 10.1186/s13619-025-00238-w.
Alternative splicing is a key regulatory mechanism that generates transcriptomic diversity by selectively splicing pre-RNA molecules in different ways, leading to the production of multiple RNA isoforms from a single gene. This process is crucial for the fine-tuning of gene expression and is tightly regulated during various biological processes. Recent studies have highlighted how alternative splicing contributes to stem cells self-renewal and differentiation, as well as how dysregulation of splicing factors can impact stem cells behavior and lead to developmental abnormalities or diseases. This review summarizes the current understanding of alternative splicing in stem cells and development, focusing on the molecular mechanisms that govern alternative splicing regulation, the role of splicing factors, and the impact of splicing isoforms on stem cell fate determination and developmental processes. We also discuss emerging technologies, such as CRISPR/Cas-based tools, single-cell long-read RNA sequencing, imaging technologies and 3D culture systems, which are advancing our ability to study alternative splicing in vitro and in vivo. Overall, this field is rapidly evolving, revealing new insights into how alternative splicing shapes the molecular landscape and functions of stem cells and developmental processes.
可变剪接是一种关键的调控机制,它通过以不同方式选择性地剪接前体RNA分子来产生转录组多样性,从而导致从单个基因产生多种RNA异构体。这一过程对于基因表达的微调至关重要,并且在各种生物学过程中受到严格调控。最近的研究强调了可变剪接如何促进干细胞的自我更新和分化,以及剪接因子的失调如何影响干细胞行为并导致发育异常或疾病。本综述总结了目前对干细胞和发育中可变剪接的理解,重点关注调控可变剪接的分子机制、剪接因子的作用以及剪接异构体对干细胞命运决定和发育过程的影响。我们还讨论了新兴技术,如基于CRISPR/Cas的工具、单细胞长读长RNA测序、成像技术和3D培养系统,这些技术正在提高我们在体外和体内研究可变剪接的能力。总体而言,该领域正在迅速发展,揭示了关于可变剪接如何塑造干细胞的分子格局和功能以及发育过程的新见解。