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Induction of Mouse Lung Injury by Endotracheal Injection of Bleomycin
Published on: April 30, 2019
Therapeutic potential of human-induced pluripotent stem cell-derived endothelial cells in a bleomycin-induced
Manizheh Azhdari1, Mohamadreza Baghaban-Eslaminejad, Hossein Baharvand
1Department of Stem Cells and Developmental Biology, Cell Science Research Center, Royan Institute for Stem Cell Biology and Technology, ACECR, Tehran, Iran.
Abstract:
Vascular injury and destruction of endothelial cells (ECs) are the early events in scleroderma (SSc) patients. This study aims to investigate the therapeutic potential of human-induced pluripotent stem cell-derived ECs (hiPSC-ECs) to treat SSc. We have assessed the functional differentiation of hiPSC-ECs and compared them with human embryonic stem cell-derived ECs (hESC-ECs) by a variety of in vitro experimental approaches. Additionally, we evaluated the therapeutic potential of hiPSC-ECs in a bleomycin-induced SSc mouse model. Our results demonstrated that hiPSC-ECs and hESC-ECs showed similar maximum expressions of FLK1 (early EC marker) at day five during differentiation. After sorting and culturing, the FLK1-positive cells exhibited spindle and subsequent endothelial cobblestone morphology in EGM2 medium. The hESC-ECs and hiPSC-ECs also expressed late EC markers CD31 (68% and 75%), CD144 (50% and 61%), CD146 (46% and 61%), and DiI-labeled acetylated low-density lipoprotein (DiI-ac-LDL) uptake (55% and 63%), respectively. They additionally formed capillary-like structures on Matrigel. Analyses of the transplantation of sorted CD31-positive hiPSC-ECs into the bleomycin-induced SSc mouse model demonstrated that these cells participate in recovery of the damaged vessels. There was a reduction in collagen content; the number of total and degranulated mast cells returned to their normal state, and bleomycin-induced wounds as well as skin fibrosis improved four weeks after transplantation of hiPSC-ECs. Our findings have shown that the differentiation process from hESCs and hiPSCs to vascular cell components is similar. Additionally, this is the first study to determine the therapeutic potential of vascular cells from hiPSCs in the treatment of an SSc model. In the future, with further validation, these may be used as an appropriate source for the treatment of SSc patients.
Insights
Human-induced pluripotent stem cell-derived endothelial cells (hiPSC-ECs) show therapeutic potential for treating scleroderma (SSc). Transplantation of hiPSC-ECs improved vascular damage, reduced fibrosis, and restored normal cell counts in an SSc mouse model.
Area of Science:
- Stem cell biology
- Vascular biology
- Regenerative medicine
Background:
- Scleroderma (SSc) is characterized by early vascular injury and endothelial cell (EC) destruction.
- Current treatments for SSc have limitations in addressing vascular damage.
Purpose of the Study:
- To investigate the therapeutic potential of human-induced pluripotent stem cell-derived ECs (hiPSC-ECs) for treating SSc.
- To compare the differentiation of hiPSC-ECs with human embryonic stem cell-derived ECs (hESC-ECs).
Main Methods:
- In vitro differentiation and characterization of hiPSC-ECs and hESC-ECs.
- Assessment of EC marker expression (FLK1, CD31, CD144, CD146) and function (DiI-ac-LDL uptake, capillary-like structure formation).
- In vivo transplantation of hiPSC-ECs into a bleomycin-induced SSc mouse model.
Main Results:
- hiPSC-ECs and hESC-ECs exhibited similar differentiation patterns and expression of key EC markers.
- Transplanted hiPSC-ECs integrated into damaged vessels and promoted recovery in the SSc mouse model.
- Treatment with hiPSC-ECs led to reduced collagen content, normalized mast cell populations, and improved skin fibrosis and wound healing.
Conclusions:
- The differentiation of hiPSCs into vascular cells is comparable to hESCs.
- hiPSC-ECs demonstrate significant therapeutic potential for treating SSc by repairing vascular damage and reducing fibrosis.
- hiPSC-ECs represent a promising cell source for future SSc therapies.
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