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Updated: Jul 27, 2025

Use of Human Perivascular Stem Cells for Bone Regeneration
Published on: May 25, 2012
Exogenously delivered iPSCs disrupt the natural repair response of endogenous MPCs after bone injury
Leah Ferrie1,2, Priyatha Premnath1,3, Alexandra Olsen1,2
1McCaig Institute for Bone and Joint Health, University of Calgary, Calgary, AB, Canada.
Abstract:
Promoting bone healing including fracture non-unions are promising targets for bone tissue engineering due to the limited success of current clinical treatment methods. There has been significant research on the use of stem cells with and without biomaterial scaffolds to treat bone fractures due to their promising regenerative capabilities. However, the relative roles of exogenous vs. endogenous stem cells and their overall contribution to in vivo fracture repair is not well understood. The purpose of this study was to determine the interaction between exogenous and endogenous stem cells during bone healing. This study was conducted using a standardized burr-hole bone injury model in a mesenchymal progenitor cell (MPC) lineage-tracing mouse under normal homeostatic and osteoporotic conditions. Burr-hole injuries were treated with a collagen-I biomaterial loaded with and without labelled induced pluripotent stem cells (iPSCs). Using lineage-tracing, the roles of exogenous and endogenous stem cells during bone healing were examined. It was observed that treatment with iPSCs resulted in muted healing compared to untreated controls in intact mice post-injury. When the cell populations were examined histologically, iPSC-treated burr-hole defects presented with a dramatic reduction in endogenous MPCs and cell proliferation throughout the injury site. However, when the ovaries were removed and an osteoporotic-like phenotype induced in the mice, iPSCs treatment resulted in increased bone formation relative to untreated controls. In the absence of iPSCs, endogenous MPCs demonstrated robust proliferative and osteogenic capacity to undertake repair and this behaviour was disrupted in the presence of iPSCs which instead took on an osteoblast fate but with little proliferation. This study clearly demonstrates that exogenously delivered cell populations can impact the normal function of endogenous stem/progenitor populations during the normal healing cascade. These interactions need to be better understood to inform cell and biomaterial therapies to treat fractures.
Insights
Exogenous stem cells can impair natural bone healing by reducing endogenous stem cell activity. However, in osteoporotic conditions, these exogenous cells may enhance bone formation, highlighting complex interactions in fracture repair.
Area of Science:
- Biomaterials Science
- Stem Cell Biology
- Regenerative Medicine
- Orthopedic Research
Background:
- Bone tissue engineering aims to improve fracture healing and non-unions, with stem cells showing promise.
- The interplay between exogenous and endogenous stem cells in fracture repair remains unclear.
- Current treatments for bone fractures have limited success, necessitating novel approaches.
Purpose of the Study:
- To investigate the interaction between exogenous and endogenous stem cells during bone healing.
- To evaluate the impact of induced pluripotent stem cells (iPSCs) on endogenous mesenchymal progenitor cells (MPCs).
- To compare bone healing in homeostatic and osteoporotic conditions with and without iPSC treatment.
Main Methods:
- Utilized a standardized burr-hole bone injury model in lineage-tracing mice.
- Treated injuries with collagen-I biomaterial ± labeled induced pluripotent stem cells (iPSCs).
- Assessed stem cell roles using lineage-tracing and histological examination under normal and osteoporotic conditions.
Main Results:
- iPSC treatment reduced bone healing and endogenous MPCs in healthy mice.
- Osteoporotic mice treated with iPSCs showed increased bone formation compared to controls.
- Exogenous iPSCs differentiated into osteoblasts with limited proliferation, disrupting endogenous MPC function.
Conclusions:
- Exogenously delivered cells can negatively affect endogenous stem/progenitor cell function during bone healing.
- The impact of exogenous cells on bone repair is context-dependent (e.g., homeostatic vs. osteoporotic).
- Understanding these stem cell interactions is crucial for developing effective cell and biomaterial therapies for fractures.
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