数字农科院2.0

The Spatial-Temporal Alternative Splicing Profile Reveals the Functional Diversity of FXR1 Isoforms in Myogenesis

文献类型: 外文期刊

作者: Wang, Wei;Fan, Xinhao;Liu, Weiwei;Huang, Yuxin;Zhao, Shuhong;Yang, Yalan;Tang, Zhonglin

作者机构:

关键词: (1-1-1)alternative splicing;FXR1;myogenesis;muscle regeneration;RBM24

期刊名称: ADVANCED SCIENCE

ISSN:

年卷期: 2025 年

页码:

收录情况: SCIE(2025版) ; ; EI(2025版)

摘要: Alternative splicing (AS) is a fundamental mechanism contributing to proteome diversity, yet its comprehensive landscape and regulatory dynamics during skeletal muscle development remain largely unexplored. Here, the temporal AS profiles are investigated during myogenesis in five vertebrates, conducting comprehensive profiling across 27 developmental stages in skeletal muscle and encompassing ten tissues in adult pigs. The analysis reveals a pervasive and evolutionarily conserved pattern of alternative exon usage throughout myogenic differentiation, with hundreds of skipped exons (SEs) showing developmental regulation, particularly within skeletal muscle. Notably, this study identifies a muscle-specific SE (exon 15) within the Fxr1 gene, whose AS generates two dynamically expressed isoforms with distinct functions: the isoform without exon 15 (Fxr1E15-) regulates myoblasts proliferation, while the isoform incorporating exon 15 (Fxr1E15+) promotes myogenic differentiation and fusion. Transcriptome analysis suggests that specifically knocking-down Fxr1E15+ isoform in myoblasts modulates differentiation by influencing gene expression and splicing of specific targets. The increased inclusion of exon 15 during differentiation is mediated by the binding of Rbm24 to the intron. Furthermore, in vivo experiments indicate that the Fxr1E15+ isoform facilitates muscle regeneration. Collectively, these findings provide a comprehensive resource for AS studies in skeletal muscle development, underscoring the diverse functions and regulatory mechanisms governing distinct Fxr1 isoforms in myogenesis.

分类号:

  • 相关文献

[1]The effect of myostatin silencing by lentiviral-mediated RNA interference on goat fetal fibroblasts. Lu, Jian,Wei, Caihong,Zhang, Xiaoning,Xu, Lingyang,Zhang, Shifang,Liu, Jiasen,Cao, Jiaxue,Zhao, Fuping,Zhang, Li,Du, Lixin,Lu, Jian,Lu, Jian,Li, Bichun,Liu, Jiasen,Cao, Jiaxue.

[2]Identification of Histone Deacetylase 2 as a Functional Gene for Skeletal Muscle Development in Chickens. Shahjahan, Md.,Wang, Fangjie,Liu, Ranran,Zhao, Guiping,Zheng, Maiqing,Zhang, Jingjing,Song, Jiao,Wen, Jie.

[3]Identification of Robust and Key Differentially Expressed Genes during C2C12 Cell Myogenesis Based on Multiomics Data. Zhang, Song,Zhang, Yuanyuan,Chen, Choulin,Hu, Qingqing,Fu, Yang,Xu, Lingna,Wang, Chao,Liu, Yuwen. 2022

[4]Conservative analysis of Synaptopodin-2 intron sense-overlapping lncRNA reveals its novel function in promoting muscle atrophy. Jin, Jianjun,Du, Mengmeng,Wang, Jian,Guo, Yubo,Zhang, Jiali,Zuo, Hao,Hou, Yunqing,Wang, Shanshan,Lv, Wei,Bai, Wei,Wang, Jin,Zhan, Xizhen,Peng, Yaxin,Tong, Qian,Chai, Jin,Xu, Zaiyan,Zuo, Bo. 2022

[5]A newly identified lncRNA lnc000100 regulates proliferation and differentiation of cattle skeletal muscle cells. Mengke Ma,Mengjie Chen,Xiaoyun Wu,Suren R. Sooranna,Qingyou Liu,Deshun Shi,Jian Wang,Hui Li. 2023

[6]Coordinated transcriptional and post-transcriptional epigenetic regulation during skeletal muscle development and growth in pigs. Du Zhang,Shumei Wu,Xinxin Zhang,Shuqiang Ren,Zhonglin Tang,Fei Gao. 2022

[7]CRISPR Screen Identifies the RNA-Binding Protein Eef1a1 as a Key Regulator of Myogenesis. Weiwei Liu,Wei Wang,Zishuai Wang,Xinhao Fan,Wangchang Li,Yuxin Huang,Xiaogan Yang,Zhonglin Tang. 2024

[8]Biology of Hippo signaling pathway: Skeletal muscle development and beyond. Shuqi Qin,Chaocheng Li,Haiyan Lu,Yulong Feng,Tao Guo,Yusong Han,Yongsheng Zhang,Zhonglin Tang. 2024

[9]A possibility of uncoupling protein 1 induction with the enhancement of myogenesis related to ruminal fermentation. Zhicheng Diao,Shunhua Jia,Erina Itoyama,Hidetugu Yoshioka,Masaru Murakami,Masayuki Funaba. 2024

[10]The miR-6240 target gene Igf2bp3 promotes myoblast fusion by enhancing myomaker mRNA stability. Yuxin Huang,Wei Wang,Xinhao Fan,Xiaoqin Liu,Weiwei Liu,Zishuai Wang,Yixing Li,Yalan Yang,Zhonglin Tang. 2025

[11]WNT5B regulates myogenesis and fiber type conversion by affecting mRNA stability. Danyang Fan,Yilong Yao,Chao Yan,Fanqinyu Li,Yalan Yang,Bingkun Xie,Zhonglin Tang. 2025

[12]LncRNA RMG controls liquid-liquid phase separation of MEIS2 to regulate myogenesis. Yilong Yao,Rong Zhou,Chao Yan,Shanying Yan,Guohao Han,Yanwen Liu,Danyang Fan,Zhilong Chen,Xinhao Fan,Yun Chen,Jiaying Li,Yalan Yang,Zhonglin Tang. 2025

[13]Dynamic changes in chromatin accessibility and gene expression involved in fetal myogenesis of Min pigs. Xinhua Hou,Naiqi Niu,Xin Liu,Ligang Wang,Lixian Wang,Longchao Zhang. 2025

作者其他论文 更多>>