Literature DB >> 29712668

TCPTP Regulates Insulin Signaling in AgRP Neurons to Coordinate Glucose Metabolism With Feeding.

Garron T Dodd1,2, Robert S Lee-Young3,2,4, Jens C Brüning5,6,7,8, Tony Tiganis1,2,4.   

Abstract

Insulin regulates glucose metabolism by eliciting effects on peripheral tissues as well as the brain. Insulin receptor (IR) signaling inhibits AgRP-expressing neurons in the hypothalamus to contribute to the suppression of hepatic glucose production (HGP) by insulin, whereas AgRP neuronal activation attenuates brown adipose tissue (BAT) glucose uptake. The tyrosine phosphatase TCPTP suppresses IR signaling in AgRP neurons. Hypothalamic TCPTP is induced by fasting and degraded after feeding. Here we assessed the influence of TCPTP in AgRP neurons in the control of glucose metabolism. TCPTP deletion in AgRP neurons (Agrp-Cre;Ptpn2fl/fl ) enhanced insulin sensitivity, as assessed by the increased glucose infusion rates, and reduced HGP during hyperinsulinemic-euglycemic clamps, accompanied by increased [14C]-2-deoxy-d-glucose uptake in BAT and browned white adipose tissue. TCPTP deficiency in AgRP neurons promoted the intracerebroventricular insulin-induced repression of hepatic gluconeogenesis in otherwise unresponsive food-restricted mice, yet had no effect in fed/satiated mice where hypothalamic TCPTP levels are reduced. The improvement in glucose homeostasis in Agrp-Cre;Ptpn2fl/fl mice was corrected by IR heterozygosity (Agrp-Cre;Ptpn2fl/fl ;Insrfl/+ ), causally linking the effects on glucose metabolism with the IR signaling in AgRP neurons. Our findings demonstrate that TCPTP controls IR signaling in AgRP neurons to coordinate HGP and brown/beige adipocyte glucose uptake in response to feeding/fasting.
© 2018 by the American Diabetes Association.

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Year:  2018        PMID: 29712668     DOI: 10.2337/db17-1485

Source DB:  PubMed          Journal:  Diabetes        ISSN: 0012-1797            Impact factor:   9.461


  19 in total

1.  Insulin regulates POMC neuronal plasticity to control glucose metabolism.

Authors:  Garron T Dodd; Natalie J Michael; Robert S Lee-Young; Salvatore P Mangiafico; Jack T Pryor; Astrid C Munder; Stephanie E Simonds; Jens Claus Brüning; Zhong-Yin Zhang; Michael A Cowley; Sofianos Andrikopoulos; Tamas L Horvath; David Spanswick; Tony Tiganis
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Journal:  Neuroendocrinology       Date:  2019-06-19       Impact factor: 4.914

4.  Effect of type 2 diabetes mellitus on mandibular bone regeneration and the expression of T helper cell 17/regulat-ory T cell-related factors in mice.

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5.  Insulin signaling in LepR cells modulates fat and glucose homeostasis independent of leptin.

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6.  TAFs contributes the function of PTPN2 in colorectal carcinogenesis through activating JAK/STAT signaling pathway.

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Review 7.  Inter-organ communication: a gatekeeper for metabolic health.

Authors:  Judit Castillo-Armengol; Lluis Fajas; Isabel C Lopez-Mejia
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Review 8.  Molecular Mechanisms of Hypothalamic Insulin Resistance.

Authors:  Hiraku Ono
Journal:  Int J Mol Sci       Date:  2019-03-15       Impact factor: 5.923

Review 9.  T Cell Protein Tyrosine Phosphatase in Glucose Metabolism.

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10.  Chronic glucocorticoid treatment induces hepatic lipid accumulation and hyperinsulinaemia in part through actions on AgRP neurons.

Authors:  Erika Harno; Charlotte Sefton; Jonathan R Wray; Tiffany-Jayne Allen; Alison Davies; Anthony P Coll; Anne White
Journal:  Sci Rep       Date:  2021-07-02       Impact factor: 4.379

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