Cargando…

Enhanced insulin signaling in density-enhanced phosphatase-1 (DEP-1) knockout mice

OBJECTIVE: Insulin resistance can be triggered by enhanced dephosphorylation of the insulin receptor or downstream components in the insulin signaling cascade through protein tyrosine phosphatases (PTPs). Downregulating density-enhanced phosphatase-1 (DEP-1) resulted in an improved metabolic status...

Descripción completa

Detalles Bibliográficos
Autores principales: Krüger, Janine, Brachs, Sebastian, Trappiel, Manuela, Kintscher, Ulrich, Meyborg, Heike, Wellnhofer, Ernst, Thöne-Reineke, Christa, Stawowy, Philipp, Östman, Arne, Birkenfeld, Andreas L., Böhmer, Frank D., Kappert, Kai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4354926/
https://www.ncbi.nlm.nih.gov/pubmed/25830095
http://dx.doi.org/10.1016/j.molmet.2015.02.001
_version_ 1782360803645587456
author Krüger, Janine
Brachs, Sebastian
Trappiel, Manuela
Kintscher, Ulrich
Meyborg, Heike
Wellnhofer, Ernst
Thöne-Reineke, Christa
Stawowy, Philipp
Östman, Arne
Birkenfeld, Andreas L.
Böhmer, Frank D.
Kappert, Kai
author_facet Krüger, Janine
Brachs, Sebastian
Trappiel, Manuela
Kintscher, Ulrich
Meyborg, Heike
Wellnhofer, Ernst
Thöne-Reineke, Christa
Stawowy, Philipp
Östman, Arne
Birkenfeld, Andreas L.
Böhmer, Frank D.
Kappert, Kai
author_sort Krüger, Janine
collection PubMed
description OBJECTIVE: Insulin resistance can be triggered by enhanced dephosphorylation of the insulin receptor or downstream components in the insulin signaling cascade through protein tyrosine phosphatases (PTPs). Downregulating density-enhanced phosphatase-1 (DEP-1) resulted in an improved metabolic status in previous analyses. This phenotype was primarily caused by hepatic DEP-1 reduction. METHODS: Here we further elucidated the role of DEP-1 in glucose homeostasis by employing a conventional knockout model to explore the specific contribution of DEP-1 in metabolic tissues. Ptprj(−/−) (DEP-1 deficient) and wild-type C57BL/6 mice were fed a low-fat or high-fat diet. Metabolic phenotyping was combined with analyses of phosphorylation patterns of insulin signaling components. Additionally, experiments with skeletal muscle cells and muscle tissue were performed to assess the role of DEP-1 for glucose uptake. RESULTS: High-fat diet fed-Ptprj(−/−) mice displayed enhanced insulin sensitivity and improved glucose tolerance. Furthermore, leptin levels and blood pressure were reduced in Ptprj(−/−) mice. DEP-1 deficiency resulted in increased phosphorylation of components of the insulin signaling cascade in liver, skeletal muscle and adipose tissue after insulin challenge. The beneficial effect on glucose homeostasis in vivo was corroborated by increased glucose uptake in skeletal muscle cells in which DEP-1 was downregulated, and in skeletal muscle of Ptprj(−/−) mice. CONCLUSION: Together, these data establish DEP-1 as novel negative regulator of insulin signaling.
format Online
Article
Text
id pubmed-4354926
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-43549262015-03-31 Enhanced insulin signaling in density-enhanced phosphatase-1 (DEP-1) knockout mice Krüger, Janine Brachs, Sebastian Trappiel, Manuela Kintscher, Ulrich Meyborg, Heike Wellnhofer, Ernst Thöne-Reineke, Christa Stawowy, Philipp Östman, Arne Birkenfeld, Andreas L. Böhmer, Frank D. Kappert, Kai Mol Metab Original Article OBJECTIVE: Insulin resistance can be triggered by enhanced dephosphorylation of the insulin receptor or downstream components in the insulin signaling cascade through protein tyrosine phosphatases (PTPs). Downregulating density-enhanced phosphatase-1 (DEP-1) resulted in an improved metabolic status in previous analyses. This phenotype was primarily caused by hepatic DEP-1 reduction. METHODS: Here we further elucidated the role of DEP-1 in glucose homeostasis by employing a conventional knockout model to explore the specific contribution of DEP-1 in metabolic tissues. Ptprj(−/−) (DEP-1 deficient) and wild-type C57BL/6 mice were fed a low-fat or high-fat diet. Metabolic phenotyping was combined with analyses of phosphorylation patterns of insulin signaling components. Additionally, experiments with skeletal muscle cells and muscle tissue were performed to assess the role of DEP-1 for glucose uptake. RESULTS: High-fat diet fed-Ptprj(−/−) mice displayed enhanced insulin sensitivity and improved glucose tolerance. Furthermore, leptin levels and blood pressure were reduced in Ptprj(−/−) mice. DEP-1 deficiency resulted in increased phosphorylation of components of the insulin signaling cascade in liver, skeletal muscle and adipose tissue after insulin challenge. The beneficial effect on glucose homeostasis in vivo was corroborated by increased glucose uptake in skeletal muscle cells in which DEP-1 was downregulated, and in skeletal muscle of Ptprj(−/−) mice. CONCLUSION: Together, these data establish DEP-1 as novel negative regulator of insulin signaling. Elsevier 2015-02-12 /pmc/articles/PMC4354926/ /pubmed/25830095 http://dx.doi.org/10.1016/j.molmet.2015.02.001 Text en © 2015 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Krüger, Janine
Brachs, Sebastian
Trappiel, Manuela
Kintscher, Ulrich
Meyborg, Heike
Wellnhofer, Ernst
Thöne-Reineke, Christa
Stawowy, Philipp
Östman, Arne
Birkenfeld, Andreas L.
Böhmer, Frank D.
Kappert, Kai
Enhanced insulin signaling in density-enhanced phosphatase-1 (DEP-1) knockout mice
title Enhanced insulin signaling in density-enhanced phosphatase-1 (DEP-1) knockout mice
title_full Enhanced insulin signaling in density-enhanced phosphatase-1 (DEP-1) knockout mice
title_fullStr Enhanced insulin signaling in density-enhanced phosphatase-1 (DEP-1) knockout mice
title_full_unstemmed Enhanced insulin signaling in density-enhanced phosphatase-1 (DEP-1) knockout mice
title_short Enhanced insulin signaling in density-enhanced phosphatase-1 (DEP-1) knockout mice
title_sort enhanced insulin signaling in density-enhanced phosphatase-1 (dep-1) knockout mice
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4354926/
https://www.ncbi.nlm.nih.gov/pubmed/25830095
http://dx.doi.org/10.1016/j.molmet.2015.02.001
work_keys_str_mv AT krugerjanine enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT brachssebastian enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT trappielmanuela enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT kintscherulrich enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT meyborgheike enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT wellnhoferernst enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT thonereinekechrista enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT stawowyphilipp enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT ostmanarne enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT birkenfeldandreasl enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT bohmerfrankd enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice
AT kappertkai enhancedinsulinsignalingindensityenhancedphosphatase1dep1knockoutmice