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Updated: Jul 6, 2025

Preparation and Culture of Myogenic Precursor Cells/Primary Myoblasts from Skeletal Muscle of Adult and Aged Humans
Published on: February 16, 2017
Differential responses to aging amongst the transcriptome and proteome of mesenchymal progenitor populations
Gustavo Duque1, Jack Feehan2, Nicholas Tripodi2
1McGill University.
Abstract:
The biological aging of mesenchymal stem cells is proposed to contribute to the development of a range of musculoskeletal and systemic diseases associated with older adults, such as osteoporosis, sarcopenia, and frailty. Despite this, little is understood about the specific mechanisms which drive this stem cell exhaustion, with most studies evaluating indirect effects of other aging changes, such as DNA damage, senescence, and inflammaging. In this study, we assess the transcriptomic and proteomic changes in three different populations of mesenchymal progenitor cells from older (50-70 years) and younger (20-40 years) individuals to uncover potential mechanisms driving stem cell exhaustion in mesenchymal tissues. To do this, we harvested primary bone marrow mesenchymal stem and progenitor cells (MPCs), circulating osteoprogenitors (COP), and adipose-derived stem cells (ADSCs) from younger and older donors, with an equal number of samples from males and females. These samples underwent RNA sequencing and label-free proteomic analysis, comparing the younger samples to the older ones. There was a distinct transcriptomic phenotype associated with the pooled older stem cells, indicative of suppressed proliferation and differentiation; however, there was no consistent change in the proteome of the cells. Older MPCs had a distinct phenotype in both the transcriptome and proteome, again consistent with altered differentiation and proliferation, but also a pro-inflammatory immune shift in older adults. COP cells showed a strong transcriptomic shift to pro-inflammatory signaling but no consistent proteomic phenotype. Similarly, ADSCs displayed transcriptomic shift in physiologies associated with cell migration, adherence, and immune activation, but no consistent proteomic change with age. These results show that there are underlying transcriptomic changes with stem cell aging that likely contribute to a decline in tissue regeneration; however, contextual factors such as the microenvironment and general health status also have a strong role in this.
Insights
Biological aging of mesenchymal stem cells contributes to age-related diseases. This study reveals transcriptomic shifts in aged stem cells, indicating altered function and a pro-inflammatory state, crucial for understanding tissue regeneration decline.
Area of Science:
- Gerontology
- Stem Cell Biology
- Molecular Biology
Background:
- Biological aging of mesenchymal stem cells is linked to musculoskeletal and systemic diseases in older adults.
- Mechanisms driving stem cell exhaustion are poorly understood, with research focusing on indirect aging effects.
- This study investigates direct transcriptomic and proteomic changes in aged mesenchymal progenitor cells.
Approach:
- Harvested primary bone marrow mesenchymal stem and progenitor cells (MPCs), circulating osteoprogenitors (COPs), and adipose-derived stem cells (ADSCs) from younger (20-40 years) and older (50-70 years) donors.
- Performed RNA sequencing and label-free proteomic analysis to compare younger and older cell populations.
- Analyzed transcriptomic and proteomic data for age-related changes in cell function and signaling.
Key Points:
- Pooled older stem cells showed distinct transcriptomic profiles indicating suppressed proliferation and differentiation, but no consistent proteomic changes.
- Older MPCs exhibited both transcriptomic and proteomic alterations, consistent with impaired differentiation/proliferation and a pro-inflammatory shift.
- COPs and ADSCs displayed age-related transcriptomic shifts towards pro-inflammatory signaling and altered cell functions, respectively, without consistent proteomic changes.
Conclusions:
- Transcriptomic changes in aging stem cells likely contribute to diminished tissue regeneration capacity.
- The microenvironment and overall health status significantly influence stem cell aging and function.
- Understanding these age-related molecular changes is crucial for developing interventions for age-associated diseases.
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