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MicroRNA cargo of extracellular vesicles released by skeletal muscle fibro-adipogenic progenitor cells is significantly altered with disuse atrophy and IL-1b deficiency

  • Emily Parker
    ,
  • Bharati Mendhe
    ,
  • Ling Ruan
    ,
  • Brendan Marshall
    ,
  • ,
  • Yutao Liu
*Corresponding author for this work
Scholary Output:
Contribution to journal
Article
Peer-review

Abstract

Fibro-adipogenic progenitor cells (FAPs) are a population of stem cells in skeletal muscle that play multiple roles in muscle repair and regeneration through their complex secretome; however, it is not well understood how the FAP secretome is altered with muscle disuse atrophy. Previous work suggests that the inflammatory cytokine IL-1β is increased in FAPs with disuse and denervation. Inflammasome activation and IL-1β secretion are also known to stimulate the release of extracellular vesicles (EVs). Here, we examined the microRNA (miRNA) cargo of FAP-derived, platelet-derived growth factor receptor A (PDGFRα+) EVs from hindlimb muscles of wild-type and IL-1β KO mice after 14 days of single-hindlimb immobilization. Hindlimb muscles were isolated from mice following the immobilization period, and PDGFRα+ extracellular vesicles were isolated using size-exclusion chromatography and immunoprecipitation. Microarrays were performed to detect changes in miRNAs with unloading and IL-1β deficiency. Results indicate that the PDGFRα+, FAP-derived EVs show a significant increase in miRNAs, such as miR-let-7c, miR-let-7b, miR-181a, and miR-124. These miRNAs have previously been demonstrated to play important roles in cellular senescence and muscle atrophy. Furthermore, the expression of these same miRNAs was not significantly altered in FAP-derived EVs isolated from the immobilized IL-1β KO. These data suggest that disuse-related activation of IL-1β can mediate the miRNA cargo of FAP-derived EVs, contributing directly to the release of senescence-and atrophy-related miRNAs. Therapies targeting FAPs in settings associated with muscle disuse atrophy may therefore have the potential to preserve muscle function and enhance muscle recovery.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Pages from-to (Number of pages)

Pages 296-304 (9 pages)

Journal (Volume, Issue Number)

Physiological Genomics (Volume 54, Issue 8)

Publication milestones

  • Published - 08/2022

Publication status

Published - 08/2022

ISSN

1094-8341

Publication IDs

  • Scopus: 85134796433
  • PubMed: 35759450
  • ORCID: /0000-0001-9597-4374/work/117346710
  • ORCID: /0000-0002-5245-1140/work/128507786

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9
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5
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9
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1
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Funding Details

This work was supported by the National Institute on Aging (AG 036675).
FunderFunding number
NIA
AG 036675