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Updated: Jan 4, 2026

Optimizing Isolation and Purification of Murine Glomerular Mesangial Cells
Published on: March 7, 2025
Rat Mesenchymal Stromal Cell Sheets Suppress Renal Fibrosis via Microvascular Protection
Aya Imafuku1, Masatoshi Oka2,3, Yoei Miyabe2
1Institute of Advanced Biomedical Engineering and Science, Tokyo Women's Medical University, Tokyo, Japan.
Abstract:
Renal fibrosis is one of the largest global health care problems, and microvascular (MV) injury is important in the development of progressive fibrosis. Although conventional cell therapy suppresses kidney injury via the role of vasoprotective cytokines, the effects are limited due to low retention of administered cells. We recently described that transplantation of hepatocyte growth factor (HGF)-transgenic mesothelial cell sheets showed a remarkable cell survival and strong therapeutic effects in a rat renal fibrosis model. Due to the translational hurdles of transgenic cells, we here applied this technique for allogeneic transplantation using rat bone marrow mesenchymal stromal cells (MSCs). MSC sheets were transplanted onto the kidney surface of a rat renal ischemia-reperfusion-injury model and the effects were compared between those in untreated rats and those receiving intravenous (IV) administration of the cells. We found that donor-cell survival was superior in the cell sheet group relative to the IV group, and that the cell sheets secreted HGF and vascular endothelial growth factor (VEGF) up to day 14. Transplantation of cell sheets increased the expression of activated HGF/VEGF receptors in the kidney. There was no evidence of migration of transplanted cells into the kidney parenchyma. Additionally, the cell sheets significantly suppressed renal dysfunction, MV injury, and fibrosis as compared with that observed in the untreated and IV groups. Furthermore, we demonstrated that the MSC sheet protected MV density in the whole kidney according to three-dimensional microcomputed tomography. In conclusion, MSC sheets strongly prevented renal fibrosis via MV protection, suggesting that this strategy represents a potential novel therapy for various kidney diseases. Stem Cells Translational Medicine 2019;8:1330&1341.
Insights
Transplantation of mesenchymal stromal cell (MSC) sheets onto the kidney surface superiorly protects against renal fibrosis and microvascular (MV) injury compared to intravenous delivery. This novel cell sheet therapy enhances donor cell survival and prevents kidney dysfunction.
Area of Science:
- Regenerative Medicine
- Nephrology
- Vascular Biology
Background:
- Renal fibrosis, a major health concern, is exacerbated by microvascular (MV) injury.
- Conventional cell therapies for kidney injury show limited efficacy due to poor cell retention.
- Previous studies demonstrated therapeutic potential using hepatocyte growth factor (HGF)-transgenic mesothelial cell sheets.
Purpose of the Study:
- To investigate the efficacy of allogeneic transplantation of rat bone marrow mesenchymal stromal cells (MSCs) in a cell sheet form for treating renal injury.
- To compare the therapeutic effects of MSC sheets with intravenous (IV) administration of MSCs in a rat renal ischemia-reperfusion-injury model.
Main Methods:
- MSCs were cultured into cell sheets and transplanted onto the kidney surface of rats with renal ischemia-reperfusion injury.
- Comparison groups included untreated rats and rats receiving IV administration of MSCs.
- Assessment involved evaluating donor-cell survival, cytokine secretion (HGF, VEGF), receptor activation, renal function, MV injury, fibrosis, and MV density using 3D microcomputed tomography.
Main Results:
- Donor-cell survival was significantly higher in the MSC sheet group compared to the IV group.
- MSC sheets secreted HGF and VEGF up to 14 days post-transplantation, enhancing HGF/VEGF receptor activation in the kidney.
- MSC sheet transplantation effectively suppressed renal dysfunction, MV injury, and fibrosis, while preserving MV density.
Conclusions:
- Mesenchymal stromal cell sheets represent a promising strategy for preventing renal fibrosis by protecting microvasculature.
- This cell sheet transplantation technique offers a potential novel therapeutic approach for various kidney diseases, overcoming limitations of previous cell therapies.

