Metabolism Regulates Exposure of Pancreatic Islets to Circulating Molecules In Vivo

Author:

Michau Aurélien123,Hodson David J.12345,Fontanaud Pierre123,Guillou Anne123,Espinosa-Carrasco Gabriel1236,Molino François1237,Peters Catherine J.8,Robinson Iain C.8,Le Tissier Paul9,Mollard Patrice123,Schaeffer Marie123

Affiliation:

1. Centre National de la Recherche Scientifique (CNRS), UMR-5203, Institut de Génomique Fonctionnelle, Montpellier, France

2. INSERM, U1191, Montpellier, France

3. University of Montpellier, Montpellier, France

4. Section of Cell Biology and Functional Genomics, Department of Medicine, Imperial College London, Imperial Centre for Translational and Experimental Medicine, Hammersmith Hospital, London, U.K.

5. Institute of Metabolism and Systems Research, University of Birmingham, Birmingham, U.K.

6. Lymphocyte Differentiation, Tolerance, and Metabolism Laboratory, Institute for Regenerative Medicine and Biotherapy, U1183, Montpellier, France

7. Charles Coulomb Laboratory, University of Montpellier, CNRS, UMR-5221, Montpellier, France

8. Division of Molecular Neuroendocrinology, National Institute for Medical Research, London, U.K.

9. Centre for Integrative Physiology, University of Edinburgh, Edinburgh, U.K.

Abstract

Pancreatic β-cells modulate insulin secretion through rapid sensing of blood glucose and integration of gut-derived signals. Increased insulin demand during pregnancy and obesity alters islet function and mass and leads to gestational diabetes mellitus and type 2 diabetes in predisposed individuals. However, it is unclear how blood-borne factors dynamically access the islets of Langerhans. Thus, understanding the changes in circulating molecule distribution that accompany compensatory β-cell expansion may be key to developing novel antidiabetic therapies. Here, using two-photon microscopy in vivo in mice, we demonstrate that islets are almost instantly exposed to peaks of circulating molecules, which rapidly pervade the tissue before clearance. In addition, both gestation and short-term high-fat–diet feeding decrease molecule extravasation and uptake rates in vivo in islets, independently of β-cell expansion or islet blood flow velocity. Together, these data support a role for islet vascular permeability in shaping β-cell adaptive responses to metabolic demand by modulating the access and sensing of circulating molecules.

Funder

Institut National de la Santé et de la Recherche Médicale

Centre National de la Recherche Scientifique

Diabetes UK

Medical Research Council

European Foundation for the Study of Diabetes

Agence Nationale de la Recherche

Publisher

American Diabetes Association

Subject

Endocrinology, Diabetes and Metabolism,Internal Medicine

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