Blockade of the Programmed Death-1 (PD1) Pathway Undermines Potent Genetic Protection from Type 1 Diabetes
Blockade of the Programmed Death-1 (PD1) Pathway Undermines Potent Genetic Protection from Type 1 Diabetes
Inhibition of PD1-PDL1 signaling in NOD mice accelerates onset of type 1 diabetes implicating this pathway in suppressing the emergence of pancreatic beta cell reactive T-cells. However, the molecular mechanism by which PD1 signaling protects from type 1 diabetes is not clear. We hypothesized that differential susceptibility of Idd mouse strains to type 1 diabetes when challenged with anti PDL1 will identify genomic loci that collaborate with PD1 signaling in suppressing type 1 diabetes.Anti PDL1 was administered to NOD and various Idd mouse strains at 10 weeks of age and onset of disease was monitored by measuring blood glucose levels. Additionally, histological evaluation of the pancreas was performed to determine degree of insulitis. Statistical analysis of the data was performed using Log-Rank and Student's t-test.Blockade of PDL1 rapidly precipitated type 1 diabetes in nearly all NOD Idd congenic strains tested, despite the fact that all are moderately (Idd5, Idd3 and Idd10/18) or highly (Idd3/10/18 and Idd9) protected from spontaneous type 1 diabetes by virtue of their protective Idd genes. Only the Idd3/5 strain, which is nearly 100% protected from spontaneous disease, remained normoglycemic following PDL1 blockade.These results indicate that multiple Idd loci collaborate with PD1 signaling. Anti PDL1 treatment undermines a large portion of the genetic protection mediated by Idd genes in the NOD model of type 1 diabetes. Basal insulitis correlated with higher susceptibility to type 1 diabetes. These findings have important implications since the PD1 pathway is a target for immunotherapy.
- University of Cambridge United Kingdom
- University of Massachusetts Medical School United States
- Harvard University United States
- Woman's Hospital United States
- Brigham and Women's Faulkner Hospital United States
Model organisms, Mouse, Science, Immunology, Programmed Cell Death 1 Receptor, 610, Autoimmunity, Endocrine System Diseases, B7-H1 Antigen, Anatomy and physiology, Mice, Endocrinology, Diabetes mellitus type 1, Mice, Inbred NOD, Endocrine system, Developmental biology, Immune suppression, Genetics, Animals, Genetic Predisposition to Disease, Biology, Molecular development, Diabetic endocrinology, Immune tolerance, Q, Immunity, R, Immunoregulation, Adoptive Transfer, Signaling, Immunoprophylaxis and Therapy, Animal models, Diabetes Mellitus, Type 1, Medicine, Female, Immunotherapy, Research Article, Signal Transduction
Model organisms, Mouse, Science, Immunology, Programmed Cell Death 1 Receptor, 610, Autoimmunity, Endocrine System Diseases, B7-H1 Antigen, Anatomy and physiology, Mice, Endocrinology, Diabetes mellitus type 1, Mice, Inbred NOD, Endocrine system, Developmental biology, Immune suppression, Genetics, Animals, Genetic Predisposition to Disease, Biology, Molecular development, Diabetic endocrinology, Immune tolerance, Q, Immunity, R, Immunoregulation, Adoptive Transfer, Signaling, Immunoprophylaxis and Therapy, Animal models, Diabetes Mellitus, Type 1, Medicine, Female, Immunotherapy, Research Article, Signal Transduction
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