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Published on: December 29, 2023
Age-related changes in miR-143-3p:Igfbp5 interactions affect muscle regeneration
Ana Soriano-Arroquia1, Rachel McCormick1, Andrew P Molloy2
1Institute of Ageing and Chronic Disease, University of Liverpool, 6 West Derby Street, Liverpool, L7 8TX, UK.
Abstract:
A common characteristic of aging is defective regeneration of skeletal muscle. The molecular pathways underlying age-related decline in muscle regenerative potential remain elusive. microRNAs are novel gene regulators controlling development and homeostasis and the regeneration of most tissues, including skeletal muscle. Here, we use satellite cells and primary myoblasts from mice and humans and an in vitro regeneration model, to show that disrupted expression of microRNA-143-3p and its target gene, Igfbp5, plays an important role in muscle regeneration in vitro. We identified miR-143 as a regulator of the insulin growth factor-binding protein 5 (Igfbp5) in primary myoblasts and show that the expression of miR-143 and its target gene is disrupted in satellite cells from old mice. Moreover, we show that downregulation of miR-143 during aging may act as a compensatory mechanism aiming at improving myogenesis efficiency; however, concomitant upregulation of miR-143 target gene, Igfbp5, is associated with increased cell senescence, thus affecting myogenesis. Our data demonstrate that dysregulation of miR-143-3p:Igfbp5 interactions in satellite cells with age may be responsible for age-related changes in satellite cell function.
Insights
Aging impairs skeletal muscle regeneration due to disrupted microRNA-143-3p and Igfbp5 interactions. This age-related molecular dysregulation affects satellite cell function and muscle repair.
Area of Science:
- Molecular biology
- Aging research
- Regenerative medicine
Background:
- Skeletal muscle regeneration declines with age.
- Molecular mechanisms behind this decline are not fully understood.
- microRNAs (miRNAs) are key gene regulators in tissue regeneration.
Purpose of the Study:
- Investigate the role of microRNA-143-3p and its target Igfbp5 in age-related muscle regeneration.
- Identify molecular pathways contributing to impaired muscle repair in aging.
Main Methods:
- Utilized mouse and human satellite cells and primary myoblasts.
- Employed an in vitro muscle regeneration model.
- Analyzed miRNA expression and target gene interactions.
Main Results:
- Disrupted microRNA-143-3p and Igfbp5 expression impacts in vitro muscle regeneration.
- miR-143 regulates Igfbp5 in myoblasts.
- Expression of miR-143 and Igfbp5 is altered in aged mouse satellite cells.
- Downregulation of miR-143 with aging may be compensatory, but Igfbp5 upregulation increases senescence, impairing myogenesis.
Conclusions:
- Dysregulation of the miR-143-3p:Igfbp5 axis in aged satellite cells contributes to impaired muscle regeneration.
- This molecular interaction is a key factor in age-related decline of satellite cell function.
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