4.7 Article

Small-RNA sequencing identifies dynamic microRNA deregulation during skeletal muscle lineage progression

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SCIENTIFIC REPORTS
卷 8, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41598-018-21991-w

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  1. Flow Cytometry Platform of the Technology Core-Center for Translational Science (CRT)
  2. Transcriptome and EpiGenome Platform of the Center for Innovation & Technological Research at Institut Pasteur
  3. Institut Pasteur, Centre National pour la Recherche Scientifique [ANR-10-LABX-73]
  4. Agence Nationale de la Recherche (Laboratoire d'Excellence Revive, Investissement d'Avenir) [ANR-10-LABX-73]
  5. European Research Council [332893]
  6. French Muscular Dystrophy Association (AFM-Telethon)
  7. Fondation pour la Recherche Medicale (FRM)

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Skeletal muscle satellite cells are quiescent adult resident stem cells that activate, proliferate and differentiate to generate myofibres following injury. They harbour a robust proliferation potential and self-renewing capacity enabling lifelong muscle regeneration. Although several classes of microRNAs were shown to regulate adult myogenesis, systematic examination of stage-specific microRNAs during lineage progression from the quiescent state is lacking. Here we provide a genome-wide assessment of the expression of small RNAs during the quiescence/activation transition and differentiation by RNA-sequencing. We show that the majority of small RNAs present in quiescent, activated and differentiated muscle cells belong to the microRNA class. Furthermore, by comparing expression in distinct cell states, we report a massive and dynamic regulation of microRNAs, both in numbers and amplitude, highlighting their pivotal role in regulation of quiescence, activation and differentiation. We also identify a number of microRNAs with reliable and specific expression in quiescence including several maternally-expressed miRNAs generated at the imprinted Dlk1-Dio3 locus. Unexpectedly, the majority of class-switching miRNAs are associated with the quiescence/activation transition suggesting a poised program that is actively repressed. These data constitute a key resource for functional analyses of miRNAs in skeletal myogenesis, and more broadly, in the regulation of stem cell self-renewal and tissue homeostasis.

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