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Sensory and motor physiological functions are impaired in gastric inhibitory polypeptide receptor‐deficient mice

AIMS/INTRODUCTION: Gastric inhibitory polypeptide (GIP) is an incretin secreted from the gastrointestinal tract after an ingestion of nutrients, and stimulates an insulin secretion from the pancreatic islets. Additionally, GIP has important roles in extrapancreatic tissues: fat accumulation in adipo...

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Autores principales: Okawa, Tetsuji, Kamiya, Hideki, Himeno, Tatsuhito, Seino, Yusuke, Tsunekawa, Shin, Hayashi, Yoshitaka, Harada, Norio, Yamada, Yuichiro, Inagaki, Nobuya, Seino, Yutaka, Oiso, Yutaka, Nakamura, Jiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Wiley-Blackwell 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4025241/
https://www.ncbi.nlm.nih.gov/pubmed/24843734
http://dx.doi.org/10.1111/jdi.12129
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author Okawa, Tetsuji
Kamiya, Hideki
Himeno, Tatsuhito
Seino, Yusuke
Tsunekawa, Shin
Hayashi, Yoshitaka
Harada, Norio
Yamada, Yuichiro
Inagaki, Nobuya
Seino, Yutaka
Oiso, Yutaka
Nakamura, Jiro
author_facet Okawa, Tetsuji
Kamiya, Hideki
Himeno, Tatsuhito
Seino, Yusuke
Tsunekawa, Shin
Hayashi, Yoshitaka
Harada, Norio
Yamada, Yuichiro
Inagaki, Nobuya
Seino, Yutaka
Oiso, Yutaka
Nakamura, Jiro
author_sort Okawa, Tetsuji
collection PubMed
description AIMS/INTRODUCTION: Gastric inhibitory polypeptide (GIP) is an incretin secreted from the gastrointestinal tract after an ingestion of nutrients, and stimulates an insulin secretion from the pancreatic islets. Additionally, GIP has important roles in extrapancreatic tissues: fat accumulation in adipose tissue, neuroprotective effects in the central nervous system and an inhibition of bone resorption. In the current study, we investigated the effects of GIP signaling on the peripheral nervous system (PNS). MATERIALS AND METHODS: First, the presence of the GIP receptor (GIPR) in mouse dorsal root ganglion (DRG) was evaluated utilizing immunohistochemical analysis, western blotting and reverse transcription polymerase chain reaction. DRG neurons of male wild‐type mice (WT) were cultured with or without GIP, and their neurite lengths were quantified. Functions of the PNS were evaluated in GIPR‐deficient mice (gipr−/−) and WT by using current perception thresholds (CPTs), Thermal Plantar Test (TPT), and motor (MNCV) and sensory nerve conduction velocity (SNCV, respectively). Sciatic nerve blood flow (SNBF) and plantar skin blood flow (PSBF) were also evaluated. RESULTS: We confirmed the expression of GIPR in DRG neurons. The neurite outgrowths of DRG neurons were promoted by the GIP administrations. The gipr−/− showed impaired perception functions in the examination of CPTs and TPT. Both MNCV and SNCV were delayed in gipr−/− compared with these in WT. There was no difference in SNBF and PSBF between WT and gipr−/−. CONCLUSIONS: Our findings show that the GIP signal could exert direct physiological roles in the PNS, which might be directly exerted on the PNS.
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spelling pubmed-40252412014-05-19 Sensory and motor physiological functions are impaired in gastric inhibitory polypeptide receptor‐deficient mice Okawa, Tetsuji Kamiya, Hideki Himeno, Tatsuhito Seino, Yusuke Tsunekawa, Shin Hayashi, Yoshitaka Harada, Norio Yamada, Yuichiro Inagaki, Nobuya Seino, Yutaka Oiso, Yutaka Nakamura, Jiro J Diabetes Investig Articles AIMS/INTRODUCTION: Gastric inhibitory polypeptide (GIP) is an incretin secreted from the gastrointestinal tract after an ingestion of nutrients, and stimulates an insulin secretion from the pancreatic islets. Additionally, GIP has important roles in extrapancreatic tissues: fat accumulation in adipose tissue, neuroprotective effects in the central nervous system and an inhibition of bone resorption. In the current study, we investigated the effects of GIP signaling on the peripheral nervous system (PNS). MATERIALS AND METHODS: First, the presence of the GIP receptor (GIPR) in mouse dorsal root ganglion (DRG) was evaluated utilizing immunohistochemical analysis, western blotting and reverse transcription polymerase chain reaction. DRG neurons of male wild‐type mice (WT) were cultured with or without GIP, and their neurite lengths were quantified. Functions of the PNS were evaluated in GIPR‐deficient mice (gipr−/−) and WT by using current perception thresholds (CPTs), Thermal Plantar Test (TPT), and motor (MNCV) and sensory nerve conduction velocity (SNCV, respectively). Sciatic nerve blood flow (SNBF) and plantar skin blood flow (PSBF) were also evaluated. RESULTS: We confirmed the expression of GIPR in DRG neurons. The neurite outgrowths of DRG neurons were promoted by the GIP administrations. The gipr−/− showed impaired perception functions in the examination of CPTs and TPT. Both MNCV and SNCV were delayed in gipr−/− compared with these in WT. There was no difference in SNBF and PSBF between WT and gipr−/−. CONCLUSIONS: Our findings show that the GIP signal could exert direct physiological roles in the PNS, which might be directly exerted on the PNS. Wiley-Blackwell 2014-02-12 2013-10-16 /pmc/articles/PMC4025241/ /pubmed/24843734 http://dx.doi.org/10.1111/jdi.12129 Text en Copyright © 2014 Asian Association for the Study of Diabetes and Wiley Publishing Asia Pty Ltd This is an open access article under the terms of the Creative Commons Attribution‐NonCommercial (http://creativecommons.org/licenses/by-nc/3.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Articles
Okawa, Tetsuji
Kamiya, Hideki
Himeno, Tatsuhito
Seino, Yusuke
Tsunekawa, Shin
Hayashi, Yoshitaka
Harada, Norio
Yamada, Yuichiro
Inagaki, Nobuya
Seino, Yutaka
Oiso, Yutaka
Nakamura, Jiro
Sensory and motor physiological functions are impaired in gastric inhibitory polypeptide receptor‐deficient mice
title Sensory and motor physiological functions are impaired in gastric inhibitory polypeptide receptor‐deficient mice
title_full Sensory and motor physiological functions are impaired in gastric inhibitory polypeptide receptor‐deficient mice
title_fullStr Sensory and motor physiological functions are impaired in gastric inhibitory polypeptide receptor‐deficient mice
title_full_unstemmed Sensory and motor physiological functions are impaired in gastric inhibitory polypeptide receptor‐deficient mice
title_short Sensory and motor physiological functions are impaired in gastric inhibitory polypeptide receptor‐deficient mice
title_sort sensory and motor physiological functions are impaired in gastric inhibitory polypeptide receptor‐deficient mice
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4025241/
https://www.ncbi.nlm.nih.gov/pubmed/24843734
http://dx.doi.org/10.1111/jdi.12129
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