DNA Methylation–Dependent Restriction of Tyrosine Hydroxylase Contributes to Pancreatic β-Cell Heterogeneity

Author:

Parveen Nazia1,Wang Jean Kimi1,Bhattacharya Supriyo2,Cuala Janielle3,Rajkumar Mohan Singh4,Butler Alexandra E.5,Wu Xiwei2,Shih Hung-Ping1,Georgia Senta K.67,Dhawan Sangeeta1ORCID

Affiliation:

1. 1Department of Translational Research and Cellular Therapeutics, Arthur Riggs Diabetes and Metabolism Research Institute, City of Hope, Duarte, CA

2. 2Integrative Genomics Core, City of Hope, Duarte, CA

3. 3Medical Biophysics Program, Keck School of Medicine, University of Southern California, Los Angeles, CA

4. 4School of Computational and Integrative Sciences, Jawaharlal Nehru University, New Delhi, India

5. 5Research Department, Royal College of Surgeons in Ireland Bahrain, Adliya, Bahrain

6. 6Department of Pediatrics, Keck School of Medicine, University of Southern California, Los Angeles, CA

7. 7Center for Endocrinology, Diabetes, and Metabolism, The Saban Research Institute, Children’s Hospital Los Angeles, Los Angeles, CA

Abstract

The molecular and functional heterogeneity of pancreatic β-cells is well recognized, but the underlying mechanisms remain unclear. Pancreatic islets harbor a subset of β-cells that co-express tyrosine hydroxylase (TH), an enzyme involved in synthesis of catecholamines that repress insulin secretion. Restriction of the TH+ β-cells within islets is essential for appropriate function in mice, such that a higher proportion of these cells corresponds to reduced insulin secretion. Here, we use these cells as a model to dissect the developmental control of β-cell heterogeneity. We define the specific molecular and metabolic characteristics of TH+ β-cells and show differences in their developmental restriction in mice and humans. We show that TH expression in β-cells is restricted by DNA methylation during β-cell differentiation. Ablation of de novo DNA methyltransferase Dnmt3a in the embryonic progenitors results in a dramatic increase in the proportion of TH+ β-cells, whereas β-cell–specific ablation of Dnmt3a does not. We demonstrate that maintenance of Th promoter methylation is essential for its continued restriction in postnatal β-cells. Loss of Th promoter methylation in response to chronic overnutrition increases the number of TH+ β-cells, corresponding to impaired β-cell function. These results reveal a regulatory role of DNA methylation in determining β-cell heterogeneity.

Funder

National Institute of Diabetes and Digestive and Kidney Diseases

Publisher

American Diabetes Association

Subject

Endocrinology, Diabetes and Metabolism,Internal Medicine

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