Structural and pharmacological basis for the induction of mitochondrial biogenesis by formoterol but not clenbuterol

Mitochondrial dysfunction is associated with numerous acute and chronic degenerative diseases. The beta-2 adrenergic receptor (beta(2)AR) agonist formoterol induces mitochondrial biogenesis (MB), but other beta(2)AR agonists, such as clenbuterol, do not. We sought to identify the MB signaling pathwa...

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Main Authors: Cameron, Robert B., Beeson, Craig C., Schnellmann, Rick G.
Other Authors: Univ Arizona, Coll Pharm, Dept Pharmacol & Toxicol
Language:en
Published: NATURE PUBLISHING GROUP 2017
Online Access:http://hdl.handle.net/10150/625746
http://arizona.openrepository.com/arizona/handle/10150/625746
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spelling ndltd-arizona.edu-oai-arizona.openrepository.com-10150-6257462017-10-04T03:00:29Z Structural and pharmacological basis for the induction of mitochondrial biogenesis by formoterol but not clenbuterol Cameron, Robert B. Beeson, Craig C. Schnellmann, Rick G. Univ Arizona, Coll Pharm, Dept Pharmacol & Toxicol Mitochondrial dysfunction is associated with numerous acute and chronic degenerative diseases. The beta-2 adrenergic receptor (beta(2)AR) agonist formoterol induces mitochondrial biogenesis (MB), but other beta(2)AR agonists, such as clenbuterol, do not. We sought to identify the MB signaling pathway of formoterol and the differences in signaling between these two ligands that result in the differential induction of MB. While formoterol and clenbuterol increased cAMP, only formoterol increased the phosphorylation of Akt and its downstream target eNOS. The increase in Akt phosphorylation was G beta gamma- and PI3K-dependent, and the increase in eNOS phosphorylation was G beta gamma- and Akt-dependent. Only formoterol increased cGMP. Formoterol induced MB as measured by increases in uncoupled cellular respiration and PGC-1 alpha and NDUFS1 mRNA expression and was blocked by inhibitors of G beta gamma, Akt, NOS, and soluble guanylate cyclase. To identify distinct receptor-ligand interactions leading to these differences in signaling, we docked formoterol and clenbuterol to six structures of the beta(2)AR. Compared to clenbuterol, the methoxyphenyl group of formoterol interacted more frequently with V114 and F193, while its formamide group interacted more frequently with C191. These data indicate that the unique structural features of formoterol allow it to interact with the beta(2)AR to activate the G beta gamma-Akt-eNOS-sGC pathway to induce MB. 2017-09-05 Article Structural and pharmacological basis for the induction of mitochondrial biogenesis by formoterol but not clenbuterol 2017, 7 (1) Scientific Reports 2045-2322 10.1038/s41598-017-11030-5 http://hdl.handle.net/10150/625746 http://arizona.openrepository.com/arizona/handle/10150/625746 Scientific Reports en http://www.nature.com/articles/s41598-017-11030-5 © The Author(s) 2017. Open Access This article is licensed under a Creative Commons Attribution 4.0 International License. NATURE PUBLISHING GROUP
collection NDLTD
language en
sources NDLTD
description Mitochondrial dysfunction is associated with numerous acute and chronic degenerative diseases. The beta-2 adrenergic receptor (beta(2)AR) agonist formoterol induces mitochondrial biogenesis (MB), but other beta(2)AR agonists, such as clenbuterol, do not. We sought to identify the MB signaling pathway of formoterol and the differences in signaling between these two ligands that result in the differential induction of MB. While formoterol and clenbuterol increased cAMP, only formoterol increased the phosphorylation of Akt and its downstream target eNOS. The increase in Akt phosphorylation was G beta gamma- and PI3K-dependent, and the increase in eNOS phosphorylation was G beta gamma- and Akt-dependent. Only formoterol increased cGMP. Formoterol induced MB as measured by increases in uncoupled cellular respiration and PGC-1 alpha and NDUFS1 mRNA expression and was blocked by inhibitors of G beta gamma, Akt, NOS, and soluble guanylate cyclase. To identify distinct receptor-ligand interactions leading to these differences in signaling, we docked formoterol and clenbuterol to six structures of the beta(2)AR. Compared to clenbuterol, the methoxyphenyl group of formoterol interacted more frequently with V114 and F193, while its formamide group interacted more frequently with C191. These data indicate that the unique structural features of formoterol allow it to interact with the beta(2)AR to activate the G beta gamma-Akt-eNOS-sGC pathway to induce MB.
author2 Univ Arizona, Coll Pharm, Dept Pharmacol & Toxicol
author_facet Univ Arizona, Coll Pharm, Dept Pharmacol & Toxicol
Cameron, Robert B.
Beeson, Craig C.
Schnellmann, Rick G.
author Cameron, Robert B.
Beeson, Craig C.
Schnellmann, Rick G.
spellingShingle Cameron, Robert B.
Beeson, Craig C.
Schnellmann, Rick G.
Structural and pharmacological basis for the induction of mitochondrial biogenesis by formoterol but not clenbuterol
author_sort Cameron, Robert B.
title Structural and pharmacological basis for the induction of mitochondrial biogenesis by formoterol but not clenbuterol
title_short Structural and pharmacological basis for the induction of mitochondrial biogenesis by formoterol but not clenbuterol
title_full Structural and pharmacological basis for the induction of mitochondrial biogenesis by formoterol but not clenbuterol
title_fullStr Structural and pharmacological basis for the induction of mitochondrial biogenesis by formoterol but not clenbuterol
title_full_unstemmed Structural and pharmacological basis for the induction of mitochondrial biogenesis by formoterol but not clenbuterol
title_sort structural and pharmacological basis for the induction of mitochondrial biogenesis by formoterol but not clenbuterol
publisher NATURE PUBLISHING GROUP
publishDate 2017
url http://hdl.handle.net/10150/625746
http://arizona.openrepository.com/arizona/handle/10150/625746
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