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Preparation and Culture of Myogenic Precursor Cells/Primary Myoblasts from Skeletal Muscle of Adult and Aged Humans
Published on: February 16, 2017
microRNA for determining the age-related myogenic capabilities of skeletal muscle
Kwang-Pyo Lee1, Yeo Jin Shin2, Ki-Sun Kwon2
1Aging Research Institute, Korea Research Institute of Bioscience and Biotechnology, Daejeon 34141, Korea.
Abstract:
Skeletal muscle exhibits a loss of muscle mass and function with age. Decreased regenerative potential of muscle stem/progenitor cells is a major underlying cause of sarcopenia. We analyzed microRNAs (miRNA) that are differentially expressed in young and old myoblasts, to identify novel intrinsic factors that play a degenerative role in aged skeletal muscle. miR-431, one of decreasing miRNAs in old myoblasts, improved the myogenic differentiation when overexpressed in old myoblast, but suppressed their myogenic capability in knockdowned young myoblasts. We found that miR-431 directly binds to 3`untranslated regions (UTR) of Smad4 mRNA, and decreases its expression. Given that SMAD4 is one of the downstream effectors of TGF-β, a well-known degenerative signaling pathway in myogenesis, the decreased miR-431 in old myoblast causes SMAD4 elevation, thus resulting in defective myogenesis. Exogenous expression of miR-431 greatly improved the muscle regeneration in the cardiotoxin-injured hindlimb muscle of old mice by reducing SMAD4 levels. Since the miR-431 seed sequence is conserved in human SMAD4 3'UTR, miR-431 regulates the myogenic capacity of human skeletal myoblasts in the same manner. Our results suggest that age-associated miR-431 is required for the maintenance of the myogenic capability in myoblasts, thus underscoring its potential as a therapeutic target to slow down muscle aging.
Insights
Aging skeletal muscle loses mass and function due to reduced stem cell regeneration. Declining miR-431 levels in older muscle impair differentiation by increasing SMAD4, but restoring miR-431 can improve muscle regeneration.
Area of Science:
- Molecular Biology
- Cell Biology
- Gerontology
Background:
- Skeletal muscle aging is characterized by sarcopenia, a decline in muscle mass and function.
- Reduced regenerative capacity of muscle stem cells contributes significantly to age-related muscle degeneration.
- MicroRNAs (miRNAs) are key regulators of gene expression and are implicated in cellular aging processes.
Discussion:
- This study identifies miR-431 as a critical regulator of skeletal muscle regeneration.
- Decreased miR-431 in aged myoblasts leads to elevated SMAD4 expression, impairing myogenic differentiation.
- The findings link miRNA dysregulation to age-associated decline in muscle stem cell function.
Key Insights:
- miR-431 levels decrease with age in skeletal muscle stem cells.
- Overexpression of miR-431 enhances myogenic differentiation in aged cells and improves muscle regeneration in vivo.
- miR-431 directly targets Smad4 mRNA, modulating the TGF-β signaling pathway crucial for myogenesis.
Outlook:
- miR-431 represents a potential therapeutic target for combating sarcopenia and promoting muscle health in the elderly.
- Further research could explore strategies for exogenous miR-431 delivery to restore muscle function.
- The conserved regulatory mechanism in human cells suggests broad applicability of these findings.
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