Heterogeneous Development of β-Cell Populations in Diabetes-Resistant and -Susceptible Mice

Author:

Gottmann Pascal12ORCID,Speckmann Thilo12,Stadion Mandy12,Zuljan Erika12,Aga Heja12,Sterr Michael234,Büttner Maren256,Santos Patrícia Martínez1,Jähnert Markus12,Bornstein Stefan R.78,Theis Fabian J.569,Lickert Heiko234,Schürmann Annette1210ORCID

Affiliation:

1. 1Department of Experimental Diabetology, German Institute of Human Nutrition Potsdam-Rehbrücke (DIfE), Nuthetal, Germany

2. 2German Center for Diabetes Research (DZD), Neuherberg, Germany

3. 3Institute of Diabetes and Regeneration Research, Helmholtz Center Munich, Neuherberg, Germany

4. 4Institute of Stem Cell Research, Helmholtz Center Munich, Neuherberg, Germany

5. 5Institute of Computational Biology, Helmholtz Center Munich, Neuherberg, Germany

6. 6Department of Mathematics, Technical University of Munich, Garching, Germany

7. 7Department of Medicine III, University Hospital Carl Gustav Carus, Dresden, Germany

8. 8Department of Diabetes, School of Life Course Science and Medicine, King’s College London, London, U.K

9. 9TUM School of Life Sciences Weihenstephan, Technical University of Munich, Freising, Germany

10. 10Institute of Nutritional Sciences, University of Potsdam, Nuthetal, Germany

Abstract

Progressive dysfunction and failure of insulin-releasing β-cells are a hallmark of type 2 diabetes (T2D). To study mechanisms of β-cell loss in T2D, we performed islet single-cell RNA sequencing of two obese mouse strains differing in their diabetes susceptibility. With mice on a control diet, we identified six β-cell clusters with similar abundance in both strains. However, after feeding of a diabetogenic diet for 2 days, β-cell cluster composition markedly differed between strains. Islets of diabetes-resistant mice developed into a protective β-cell cluster (Beta4), whereas those of diabetes-prone mice progressed toward stress-related clusters with a strikingly different expression pattern. Interestingly, the protective cluster showed indications of reduced β-cell identity, such as downregulation of GLUT2, GLP1R, and MafA, and in vitro knockdown of GLUT2 in β-cells—mimicking its phenotype—decreased stress response and apoptosis. This might explain enhanced β-cell survival of diabetes-resistant islets. In contrast, β-cells of diabetes-prone mice responded with expression changes indicating metabolic pressure and endoplasmic reticulum stress, presumably leading to later β-cell loss. In conclusion, failure of diabetes-prone mice to adapt gene expression toward a more dedifferentiated state in response to rising blood glucose levels leads to β-cell failure and diabetes development.

Publisher

American Diabetes Association

Subject

Endocrinology, Diabetes and Metabolism,Internal Medicine

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