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Human iPSC-MSC-Derived Xenografts Modulate Immune Responses by Inhibiting the Cleavage of Caspases
Cheng-Lin Li1,2, Yun Leng1,3,4, Bin Zhao1,3,4
1Organ Transplantation Institute, Medical College, Xiamen University, Xiamen, Fujian, People's Republic of China.
Abstract:
Mesenchymal stem cells (MSCs) negatively modulate immune properties. Induced pluripotent stem cells (iPSCs)-derived MSCs are alternative source of MSCs. However, the effects of iPSC-MSCs on T cells phenotypes in vivo remain unclear. We established an iPSC-MSC-transplanted host versus graft reaction mouse model using subcapsular kidney injection. Th1, Th2, regulatory T cells (Treg), and Th17 phenotypes and their cytokines were investigated in vivo and in vitro. The role of caspases and the soluble factors involved in the effects of MSCs were examined. We found that iPSC-MSC grafts led to more cell survival and less infiltration of inflammatory cells in mice. iPSC-MSC transplantation inhibited T cell proliferation, decreased Th1 and Th2 phenotypes and cytokines, upregulated Th17 and Treg subsets. Moreover, iPSC-MSCs inhibited the cleavage of caspases 3 and 8 and inhibition of caspases downregulated Th1, Th2 responses and upregulated Th17, Treg responses. Soluble factors were determined using protein array and TGF-β1/2/3, IL-10, and MCP-1 were found to be highly expressed in iPSC-MSCs. The administration of the soluble factors decreased Th1/2 response, upregulated Treg response and inhibited the cleavage of caspases. Our results demonstrate that iPSC-MSCs regulate T cell responses as a result of a combined action of the above soluble factors secreted by iPSC-MSCs. These factors suppress T cell responses by inhibiting the cleavage of caspases. These data provide a novel immunomodulatory mechanism for the underlying iPSC-MSC-based immunomodulatory effects on T cell responses. Stem Cells 2017;35:1719-1732.
Insights
Induced pluripotent stem cells (iPSCs)-derived mesenchymal stem cells (MSCs) modulate T cell responses by secreting soluble factors that inhibit caspases, promoting immune tolerance. These iPSC-MSCs offer a novel approach for immunomodulatory therapies.
Area of Science:
- Immunology
- Stem Cell Biology
- Regenerative Medicine
Background:
- Mesenchymal stem cells (MSCs) possess immunomodulatory properties.
- Induced pluripotent stem cells (iPSCs)-derived MSCs (iPSC-MSCs) represent a promising alternative source of MSCs.
- The in vivo effects of iPSC-MSCs on T cell phenotypes remain incompletely understood.
Purpose of the Study:
- To investigate the impact of iPSC-MSCs on T cell phenotypes and immune responses in a host-versus-graft reaction mouse model.
- To elucidate the mechanisms underlying iPSC-MSC-mediated immunomodulation, including the role of caspases and soluble factors.
Main Methods:
- Establishment of an iPSC-MSC-transplanted host-versus-graft reaction mouse model.
- Analysis of T cell phenotypes (Th1, Th2, Treg, Th17) and cytokine profiles in vivo and in vitro.
- Investigation of caspase activity and identification of key soluble factors secreted by iPSC-MSCs using protein arrays.
Main Results:
- iPSC-MSC grafts enhanced cell survival and reduced inflammatory cell infiltration.
- iPSC-MSCs inhibited T cell proliferation, decreased Th1/Th2 responses, and increased Th17/Treg populations.
- iPSC-MSCs suppressed caspase-3 and -8 cleavage, and secreted factors like TGF-β, IL-10, and MCP-1.
Conclusions:
- iPSC-MSCs effectively regulate T cell responses through a combination of secreted soluble factors.
- These factors exert immunomodulatory effects by inhibiting caspase cleavage, thereby suppressing inflammatory T cell responses and promoting regulatory T cell populations.
- This study reveals a novel mechanism for iPSC-MSC-based immunomodulation, highlighting their therapeutic potential.
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