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Deletion of the RabGAP TBC1D1 Leads to Enhanced Insulin Secretion and Fatty Acid Oxidation in Islets From Male Mice.
Stermann, Torben; Menzel, Franziska; Weidlich, Carmen; Jeruschke, Kay; Weiss, Jürgen; Altenhofen, Delsi; Benninghoff, Tim; Pujol, Anna; Bosch, Fatima; Rustenbeck, Ingo; Ouwens, D Margriet; Thoresen, G Hege; de Wendt, Christian; Lebek, Sandra; Schallschmidt, Tanja; Kragl, Martin; Lammert, Eckhard; Chadt, Alexandra; Al-Hasani, Hadi.
Afiliación
  • Stermann T; German Diabetes Center, Leibniz Center for Diabetes Research, Heinrich Heine University, Medical Faculty, Duesseldorf, Germany.
  • Menzel F; German Center for Diabetes Research, Duesseldorf, Germany.
  • Weidlich C; German Institute for Human Nutrition Potsdam-Rehbruecke, Nuthetal, Germany.
  • Jeruschke K; German Diabetes Center, Leibniz Center for Diabetes Research, Heinrich Heine University, Medical Faculty, Duesseldorf, Germany.
  • Weiss J; German Diabetes Center, Leibniz Center for Diabetes Research, Heinrich Heine University, Medical Faculty, Duesseldorf, Germany.
  • Altenhofen D; German Diabetes Center, Leibniz Center for Diabetes Research, Heinrich Heine University, Medical Faculty, Duesseldorf, Germany.
  • Benninghoff T; German Diabetes Center, Leibniz Center for Diabetes Research, Heinrich Heine University, Medical Faculty, Duesseldorf, Germany.
  • Pujol A; German Center for Diabetes Research, Duesseldorf, Germany.
  • Bosch F; German Diabetes Center, Leibniz Center for Diabetes Research, Heinrich Heine University, Medical Faculty, Duesseldorf, Germany.
  • Rustenbeck I; German Center for Diabetes Research, Duesseldorf, Germany.
  • Ouwens DM; Center of Animal Biotechnology and Gene Therapy, Universitat Autònoma de Barcelona, Barcelona, Spain.
  • Thoresen GH; Center of Animal Biotechnology and Gene Therapy, Universitat Autònoma de Barcelona, Barcelona, Spain.
  • de Wendt C; Institute of Pharmacology, Toxicology and Clinical Pharmacy, Technical University Braunschweig, Braunschweig, Germany.
  • Lebek S; German Diabetes Center, Leibniz Center for Diabetes Research, Heinrich Heine University, Medical Faculty, Duesseldorf, Germany.
  • Schallschmidt T; Department of Pharmaceutical Biosciences, School of Pharmacy, University of Oslo, Oslo, Norway.
  • Kragl M; German Diabetes Center, Leibniz Center for Diabetes Research, Heinrich Heine University, Medical Faculty, Duesseldorf, Germany.
  • Lammert E; German Center for Diabetes Research, Duesseldorf, Germany.
  • Chadt A; German Diabetes Center, Leibniz Center for Diabetes Research, Heinrich Heine University, Medical Faculty, Duesseldorf, Germany.
  • Al-Hasani H; German Center for Diabetes Research, Duesseldorf, Germany.
Endocrinology ; 159(4): 1748-1761, 2018 04 01.
Article en En | MEDLINE | ID: mdl-29481597
ABSTRACT
The Rab guanosine triphosphatase-activating protein (RabGAP) TBC1D1 has been shown to be a key regulator of glucose and lipid metabolism in skeletal muscle. Its function in pancreatic islets, however, is not yet fully understood. Here, we aimed to clarify the specific impact of TBC1D1 on insulin secretion and substrate use in pancreatic islets. We analyzed the dynamics of glucose-stimulated insulin secretion (GSIS) and lipid metabolism in isolated islets from Tbc1d1-deficient (D1KO) mice. To further investigate the underlying cellular mechanisms, we conducted pharmacological studies in these islets. In addition, we determined morphology and number of both pancreatic islets and insulin vesicles in ß-cells using light and transmission electron microscopy. Isolated pancreatic islets from D1KO mice exhibited substantially increased GSIS compared with wild-type (WT) controls. This was attributed to both enhanced first and second phase of insulin secretion, and this enhanced secretion persisted during repetitive glucose stimuli. Studies with sulfonylureas or KCl in isolated islets demonstrated that TBC1D1 exerts its function via a signaling pathway at the level of membrane depolarization. In line, ultrastructural analysis of isolated pancreatic islets revealed both higher insulin-granule density and number of docked granules in ß-cells from D1KO mice compared with WT controls. Like in skeletal muscle, lipid use in isolated islets was enhanced upon D1KO, presumably as a result of a higher mitochondrial fission rate and/or higher mitochondrial activity. Our results clearly demonstrate a dual role of TBC1D1 in controlling substrate metabolism of the pancreatic islet.
Asunto(s)

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Islotes Pancreáticos / Proteínas Activadoras de GTPasa / Metabolismo de los Lípidos / Ácidos Grasos / Insulina Límite: Animals Idioma: En Revista: Endocrinology Año: 2018 Tipo del documento: Article País de afiliación: Alemania

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Islotes Pancreáticos / Proteínas Activadoras de GTPasa / Metabolismo de los Lípidos / Ácidos Grasos / Insulina Límite: Animals Idioma: En Revista: Endocrinology Año: 2018 Tipo del documento: Article País de afiliación: Alemania