Undifferentiated Wharton's Jelly Mesenchymal Stem Cell Transplantation Induces Insulin-Producing Cell Differentiation and Suppression of T-Cell-Mediated Autoimmunity in Nonobese Diabetic Mice

Author:

Tsai Pei-Jiun12,Wang Hwai-Shi3,Lin Gu-Jiun4,Chou Shu-Cheng5,Chu Tzu-Hui4,Chuan Wen-Ting4,Lu Ying-Jui4,Weng Ying-Jui67,Su Cheng-Hsi8,Hsieh Po-Shiuan9,Sytwu Huey-Kang10,Lin Chi-Hung111,Chen Tien-Hua35,Shyu Jia-Fwu4

Affiliation:

1. Institute of Clinical Medicine, National Yang Ming University, Taipei, Taiwan

2. Department of Critical Care Medicine, Veteran General Hospital, Taipei, Taiwan

3. Institute of Anatomy and Cell Biology, School of Medicine, National Yang Ming University, Taipei, Taiwan

4. Department of Biology and Anatomy, National Defense Medical Center, Taipei, Taiwan

5. Department of Surgery, Veteran General Hospital, Taipei, Taiwan

6. Division of Cardiovascular Surgery, Department of Surgery, Taipei Medical University Hospital, Taipei, Taiwan

7. Department of Surgery, School of Medicine, College of Medicine, Taipei Medical University, Taipei, Taiwan

8. Department of Surgery, Cheng Hsin General Hospital, Taipei, Taiwan

9. Department of Physiology and Biophysics, National Defense Medical Center, Taipei, Taiwan

10. Department of Microbiology and Immunology, National Defense Medical Center, Taipei, Taiwan

11. Institute of Microbiology and Immunology, National Yang Ming University, Taipei, Taiwan

Abstract

Type 1 diabetes mellitus is caused by T-cell-mediated autoimmune destruction of pancreatic β-cells. Systemic administration of mesenchymal stem cells (MSCs) brings about their incorporation into a variety of tissues with immunosuppressive effects, resulting in regeneration of pancreatic islets. We previously showed that human MSCs isolated from Wharton's jelly (WJ-MSCs) represent a potential cell source to treat diabetes. However, the underlying mechanisms are unclear. The purpose of this study was to discern whether undifferentiated WJ-MSCs can differentiate into pancreatic insulin-producing cells (IPCs) and modify immunological responses in nonobese diabetic (NOD) mice. Undifferentiated WJ-MSCs underwent lentiviral transduction to express green fluorescent protein (GFP) and then were injected into the retro-orbital venous sinus of NOD mice. Seven days after transplantation, fluorescent islet-like cell clusters in the pancreas were apparent. WJ-MSC-GFP-treated NOD mice had significantly lower blood glucose and higher survival rates than saline-treated mice. Systemic and local levels of autoaggressive T-cells, including T helper 1 cells and IL-17-producing T-cells, were reduced, and regulatory T-cell levels were increased. Furthermore, anti-inflammatory cytokine levels were increased, and dendritic cells were decreased. At 23 days, higher human C-peptide and serum insulin levels and improved glucose tolerance were found. Additionally, WJ-MSCs-GFP differentiated into IPCs as shown by colocalization of human C-peptide and GFP in the pancreas. Significantly more intact islets and less severe insulitis were observed. In conclusion, undifferentiated WJ-MSCs can differentiate into IPCs in vivo with immunomodulatory effects and repair the destroyed islets in NOD mice.

Publisher

SAGE Publications

Subject

Transplantation,Cell Biology,Biomedical Engineering

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