Cargando…

Adaptive thermogenesis in brown adipose tissue involves activation of pannexin-1 channels

OBJECTIVE: Brown adipose tissue (BAT) is specialized in thermogenesis. The conversion of energy into heat in brown adipocytes proceeds via stimulation of β-adrenergic receptor (βAR)-dependent signaling and activation of mitochondrial uncoupling protein 1 (UCP1). We have previously demonstrated a fun...

Descripción completa

Detalles Bibliográficos
Autores principales: Senthivinayagam, Subramanian, Serbulea, Vlad, Upchurch, Clint M., Polanowska-Grabowska, Renata, Mendu, Suresh K., Sahu, Srabani, Jayaguru, Prathiba, Aylor, Kevin W., Chordia, Mahendra D., Steinberg, Limor, Oberholtzer, Nathaniel, Uchiyama, Seichii, Inada, Noriko, Lorenz, Ulrike M., Harris, Thurl E., Keller, Susanna R., Meher, Akshaya K., Kadl, Alexandra, Desai, Bimal N., Kundu, Bijoy K., Leitinger, Norbert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7779784/
https://www.ncbi.nlm.nih.gov/pubmed/33248294
http://dx.doi.org/10.1016/j.molmet.2020.101130
_version_ 1783631397787795456
author Senthivinayagam, Subramanian
Serbulea, Vlad
Upchurch, Clint M.
Polanowska-Grabowska, Renata
Mendu, Suresh K.
Sahu, Srabani
Jayaguru, Prathiba
Aylor, Kevin W.
Chordia, Mahendra D.
Steinberg, Limor
Oberholtzer, Nathaniel
Uchiyama, Seichii
Inada, Noriko
Lorenz, Ulrike M.
Harris, Thurl E.
Keller, Susanna R.
Meher, Akshaya K.
Kadl, Alexandra
Desai, Bimal N.
Kundu, Bijoy K.
Leitinger, Norbert
author_facet Senthivinayagam, Subramanian
Serbulea, Vlad
Upchurch, Clint M.
Polanowska-Grabowska, Renata
Mendu, Suresh K.
Sahu, Srabani
Jayaguru, Prathiba
Aylor, Kevin W.
Chordia, Mahendra D.
Steinberg, Limor
Oberholtzer, Nathaniel
Uchiyama, Seichii
Inada, Noriko
Lorenz, Ulrike M.
Harris, Thurl E.
Keller, Susanna R.
Meher, Akshaya K.
Kadl, Alexandra
Desai, Bimal N.
Kundu, Bijoy K.
Leitinger, Norbert
author_sort Senthivinayagam, Subramanian
collection PubMed
description OBJECTIVE: Brown adipose tissue (BAT) is specialized in thermogenesis. The conversion of energy into heat in brown adipocytes proceeds via stimulation of β-adrenergic receptor (βAR)-dependent signaling and activation of mitochondrial uncoupling protein 1 (UCP1). We have previously demonstrated a functional role for pannexin-1 (Panx1) channels in white adipose tissue; however, it is not known whether Panx1 channels play a role in the regulation of brown adipocyte function. Here, we tested the hypothesis that Panx1 channels are involved in brown adipocyte activation and thermogenesis. METHODS: In an immortalized brown pre-adipocytes cell line, Panx1 currents were measured using patch-clamp electrophysiology. Flow cytometry was used for assessment of dye uptake and luminescence assays for adenosine triphosphate (ATP) release, and cellular temperature measurement was performed using a ratiometric fluorescence thermometer. We used RNA interference and expression plasmids to manipulate expression of wild-type and mutant Panx1. We used previously described adipocyte-specific Panx1 knockout mice (Panx1(Adip-/-)) and generated brown adipocyte-specific Panx1 knockout mice (Panx1(BAT-/-)) to study pharmacological or cold-induced thermogenesis. Glucose uptake into brown adipose tissue was quantified by positron emission tomography (PET) analysis of (18)F-fluorodeoxyglucose ((18)F-FDG) content. BAT temperature was measured using an implantable telemetric temperature probe. RESULTS: In brown adipocytes, Panx1 channel activity was induced either by apoptosis-dependent caspase activation or by β3AR stimulation via a novel mechanism that involves Gβγ subunit binding to Panx1. Inactivation of Panx1 channels in cultured brown adipocytes resulted in inhibition of β3AR-induced lipolysis, UCP-1 expression, and cellular thermogenesis. In mice, adiponectin-Cre-dependent genetic deletion of Panx1 in all adipose tissue depots resulted in defective β3AR agonist- or cold-induced thermogenesis in BAT and suppressed beigeing of white adipose tissue. UCP1-Cre-dependent Panx1 deletion specifically in brown adipocytes reduced the capacity for adaptive thermogenesis without affecting beigeing of white adipose tissue and aggravated diet-induced obesity and insulin resistance. CONCLUSIONS: These data demonstrate that Gβγ-dependent Panx1 channel activation is involved in β3AR-induced thermogenic regulation in brown adipocytes. Identification of Panx1 channels in BAT as novel thermo-regulatory elements downstream of β3AR activation may have therapeutic implications.
format Online
Article
Text
id pubmed-7779784
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-77797842021-01-08 Adaptive thermogenesis in brown adipose tissue involves activation of pannexin-1 channels Senthivinayagam, Subramanian Serbulea, Vlad Upchurch, Clint M. Polanowska-Grabowska, Renata Mendu, Suresh K. Sahu, Srabani Jayaguru, Prathiba Aylor, Kevin W. Chordia, Mahendra D. Steinberg, Limor Oberholtzer, Nathaniel Uchiyama, Seichii Inada, Noriko Lorenz, Ulrike M. Harris, Thurl E. Keller, Susanna R. Meher, Akshaya K. Kadl, Alexandra Desai, Bimal N. Kundu, Bijoy K. Leitinger, Norbert Mol Metab Original Article OBJECTIVE: Brown adipose tissue (BAT) is specialized in thermogenesis. The conversion of energy into heat in brown adipocytes proceeds via stimulation of β-adrenergic receptor (βAR)-dependent signaling and activation of mitochondrial uncoupling protein 1 (UCP1). We have previously demonstrated a functional role for pannexin-1 (Panx1) channels in white adipose tissue; however, it is not known whether Panx1 channels play a role in the regulation of brown adipocyte function. Here, we tested the hypothesis that Panx1 channels are involved in brown adipocyte activation and thermogenesis. METHODS: In an immortalized brown pre-adipocytes cell line, Panx1 currents were measured using patch-clamp electrophysiology. Flow cytometry was used for assessment of dye uptake and luminescence assays for adenosine triphosphate (ATP) release, and cellular temperature measurement was performed using a ratiometric fluorescence thermometer. We used RNA interference and expression plasmids to manipulate expression of wild-type and mutant Panx1. We used previously described adipocyte-specific Panx1 knockout mice (Panx1(Adip-/-)) and generated brown adipocyte-specific Panx1 knockout mice (Panx1(BAT-/-)) to study pharmacological or cold-induced thermogenesis. Glucose uptake into brown adipose tissue was quantified by positron emission tomography (PET) analysis of (18)F-fluorodeoxyglucose ((18)F-FDG) content. BAT temperature was measured using an implantable telemetric temperature probe. RESULTS: In brown adipocytes, Panx1 channel activity was induced either by apoptosis-dependent caspase activation or by β3AR stimulation via a novel mechanism that involves Gβγ subunit binding to Panx1. Inactivation of Panx1 channels in cultured brown adipocytes resulted in inhibition of β3AR-induced lipolysis, UCP-1 expression, and cellular thermogenesis. In mice, adiponectin-Cre-dependent genetic deletion of Panx1 in all adipose tissue depots resulted in defective β3AR agonist- or cold-induced thermogenesis in BAT and suppressed beigeing of white adipose tissue. UCP1-Cre-dependent Panx1 deletion specifically in brown adipocytes reduced the capacity for adaptive thermogenesis without affecting beigeing of white adipose tissue and aggravated diet-induced obesity and insulin resistance. CONCLUSIONS: These data demonstrate that Gβγ-dependent Panx1 channel activation is involved in β3AR-induced thermogenic regulation in brown adipocytes. Identification of Panx1 channels in BAT as novel thermo-regulatory elements downstream of β3AR activation may have therapeutic implications. Elsevier 2020-11-25 /pmc/articles/PMC7779784/ /pubmed/33248294 http://dx.doi.org/10.1016/j.molmet.2020.101130 Text en © 2020 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
Senthivinayagam, Subramanian
Serbulea, Vlad
Upchurch, Clint M.
Polanowska-Grabowska, Renata
Mendu, Suresh K.
Sahu, Srabani
Jayaguru, Prathiba
Aylor, Kevin W.
Chordia, Mahendra D.
Steinberg, Limor
Oberholtzer, Nathaniel
Uchiyama, Seichii
Inada, Noriko
Lorenz, Ulrike M.
Harris, Thurl E.
Keller, Susanna R.
Meher, Akshaya K.
Kadl, Alexandra
Desai, Bimal N.
Kundu, Bijoy K.
Leitinger, Norbert
Adaptive thermogenesis in brown adipose tissue involves activation of pannexin-1 channels
title Adaptive thermogenesis in brown adipose tissue involves activation of pannexin-1 channels
title_full Adaptive thermogenesis in brown adipose tissue involves activation of pannexin-1 channels
title_fullStr Adaptive thermogenesis in brown adipose tissue involves activation of pannexin-1 channels
title_full_unstemmed Adaptive thermogenesis in brown adipose tissue involves activation of pannexin-1 channels
title_short Adaptive thermogenesis in brown adipose tissue involves activation of pannexin-1 channels
title_sort adaptive thermogenesis in brown adipose tissue involves activation of pannexin-1 channels
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7779784/
https://www.ncbi.nlm.nih.gov/pubmed/33248294
http://dx.doi.org/10.1016/j.molmet.2020.101130
work_keys_str_mv AT senthivinayagamsubramanian adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT serbuleavlad adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT upchurchclintm adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT polanowskagrabowskarenata adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT mendusureshk adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT sahusrabani adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT jayaguruprathiba adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT aylorkevinw adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT chordiamahendrad adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT steinberglimor adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT oberholtzernathaniel adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT uchiyamaseichii adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT inadanoriko adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT lorenzulrikem adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT harristhurle adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT kellersusannar adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT meherakshayak adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT kadlalexandra adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT desaibimaln adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT kundubijoyk adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels
AT leitingernorbert adaptivethermogenesisinbrownadiposetissueinvolvesactivationofpannexin1channels