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Published on: May 18, 2017
Mechanical Rejuvenation of Mesenchymal Stem Cells from Aged Patients
Abstract:
Mesenchymal stem cells (MSC) are an appealing therapeutic cell type for many diseases. However, patients with poor health or advanced age often have MSCs with poor regenerative properties. A major limiter of MSC therapies is cellular senescence, which is marked by limited proliferation capability, diminished multipotency, and reduced regenerative properties. In this work, we explored the ability of applied mechanical forces to reduce cellular senescence in MSCs. Our studies revealed that mechanical conditioning caused a lasting enhancement in proliferation, overall cell culture expansion potential, multipotency, and a reduction of senescence in MSCs from aged donors. Mechanistic studies suggested that these functional enhancements were mediated by oxidative stress and DNA damage repair signaling with mechanical load altering the expression of proteins of the sirtuin pathway, the DNA damage repair protein ATM, and antioxidant proteins. In addition, our results suggest a biophysical mechanism in which mechanical stretch leads to improved recognition of damaged DNA in the nucleus. Analysis of the cells through RNA-seq and ATAC-seq, demonstrated that mechanical loading alters the cell's genetic landscape to cause broad shifts in transcriptomic patterns that related to senescence. Overall, our results demonstrate that mechanical conditioning can rejuvenate mesenchymal stem cells derived from aged patients and improve their potential as a therapeutic cell type.
Insights
Mechanical forces rejuvenate aging mesenchymal stem cells (MSCs), enhancing their regenerative potential. This study shows mechanical conditioning improves MSC proliferation, multipotency, and reduces senescence, making them more effective for therapy.
Area of Science:
- Biomedical Engineering
- Regenerative Medicine
- Cell Biology
Background:
- Mesenchymal stem cells (MSCs) are promising for treating diseases.
- Aging and poor health reduce MSC regenerative capacity due to cellular senescence.
- Cellular senescence limits MSC proliferation, multipotency, and therapeutic efficacy.
Purpose of the Study:
- To investigate if applied mechanical forces can reduce cellular senescence in MSCs.
- To determine if mechanical conditioning can rejuvenate aged MSCs for therapeutic use.
Main Methods:
- Mechanical conditioning of MSCs from aged donors.
- Assessing MSC proliferation, multipotency, and senescence markers.
- Investigating molecular mechanisms including oxidative stress, DNA damage repair, and sirtuin pathway signaling.
- Utilizing RNA-seq and ATAC-seq to analyze transcriptomic and epigenetic changes.
Main Results:
- Mechanical conditioning significantly enhanced MSC proliferation and expansion potential.
- A lasting reduction in senescence markers was observed in mechanically conditioned MSCs.
- Mechanisms involved oxidative stress, DNA damage repair signaling (ATM), and the sirtuin pathway.
- Mechanical stretch improved DNA damage recognition, altering transcriptomic patterns related to senescence.
Conclusions:
- Mechanical conditioning can rejuvenate aged mesenchymal stem cells.
- This rejuvenation improves MSCs' therapeutic potential for age-related conditions.
- Biophysical manipulation offers a novel strategy to enhance MSC regenerative capabilities.
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