Differential responses to aging amongst the transcriptome and proteome of mesenchymal progenitor populations

Gustavo Duque1, Jack Feehan2, Nicholas Tripodi2

  • 1McGill University.

Research Square
|January 3, 2024
PubMed

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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