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Fatty acid ethyl ester synthase inhibition ameliorates ethanol-induced Ca(2+)-dependent mitochondrial dysfunction and acute pancreatitis

OBJECTIVE: Non-oxidative metabolism of ethanol (NOME) produces fatty acid ethyl esters (FAEEs) via carboxylester lipase (CEL) and other enzyme action implicated in mitochondrial injury and acute pancreatitis (AP). This study investigated the relative importance of oxidative and non-oxidative pathway...

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Autores principales: Huang, Wei, Booth, David M, Cane, Matthew C, Chvanov, Michael, Javed, Muhammad A, Elliott, Victoria L, Armstrong, Jane A, Dingsdale, Hayley, Cash, Nicole, Li, Yan, Greenhalf, William, Mukherjee, Rajarshi, Kaphalia, Bhupendra S, Jaffar, Mohammed, Petersen, Ole H, Tepikin, Alexei V, Sutton, Robert, Criddle, David N
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BMJ Publishing Group 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4112447/
https://www.ncbi.nlm.nih.gov/pubmed/24162590
http://dx.doi.org/10.1136/gutjnl-2012-304058
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author Huang, Wei
Booth, David M
Cane, Matthew C
Chvanov, Michael
Javed, Muhammad A
Elliott, Victoria L
Armstrong, Jane A
Dingsdale, Hayley
Cash, Nicole
Li, Yan
Greenhalf, William
Mukherjee, Rajarshi
Kaphalia, Bhupendra S
Jaffar, Mohammed
Petersen, Ole H
Tepikin, Alexei V
Sutton, Robert
Criddle, David N
author_facet Huang, Wei
Booth, David M
Cane, Matthew C
Chvanov, Michael
Javed, Muhammad A
Elliott, Victoria L
Armstrong, Jane A
Dingsdale, Hayley
Cash, Nicole
Li, Yan
Greenhalf, William
Mukherjee, Rajarshi
Kaphalia, Bhupendra S
Jaffar, Mohammed
Petersen, Ole H
Tepikin, Alexei V
Sutton, Robert
Criddle, David N
author_sort Huang, Wei
collection PubMed
description OBJECTIVE: Non-oxidative metabolism of ethanol (NOME) produces fatty acid ethyl esters (FAEEs) via carboxylester lipase (CEL) and other enzyme action implicated in mitochondrial injury and acute pancreatitis (AP). This study investigated the relative importance of oxidative and non-oxidative pathways in mitochondrial dysfunction, pancreatic damage and development of alcoholic AP, and whether deleterious effects of NOME are preventable. DESIGN: Intracellular calcium ([Ca(2+)](C)), NAD(P)H, mitochondrial membrane potential and activation of apoptotic and necrotic cell death pathways were examined in isolated pancreatic acinar cells in response to ethanol and/or palmitoleic acid (POA) in the presence or absence of 4-methylpyrazole (4-MP) to inhibit oxidative metabolism. A novel in vivo model of alcoholic AP induced by intraperitoneal administration of ethanol and POA was developed to assess the effects of manipulating alcohol metabolism. RESULTS: Inhibition of OME with 4-MP converted predominantly transient [Ca(2+)](C) rises induced by low ethanol/POA combination to sustained elevations, with concurrent mitochondrial depolarisation, fall of NAD(P)H and cellular necrosis in vitro. All effects were prevented by 3-benzyl-6-chloro-2-pyrone (3-BCP), a CEL inhibitor. 3-BCP also significantly inhibited rises of pancreatic FAEE in vivo and ameliorated acute pancreatic damage and inflammation induced by administration of ethanol and POA to mice. CONCLUSIONS: A combination of low ethanol and fatty acid that did not exert deleterious effects per se became toxic when oxidative metabolism was inhibited. The in vitro and in vivo damage was markedly inhibited by blockade of CEL, indicating the potential for development of specific therapy for treatment of alcoholic AP via inhibition of FAEE generation.
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spelling pubmed-41124472014-08-01 Fatty acid ethyl ester synthase inhibition ameliorates ethanol-induced Ca(2+)-dependent mitochondrial dysfunction and acute pancreatitis Huang, Wei Booth, David M Cane, Matthew C Chvanov, Michael Javed, Muhammad A Elliott, Victoria L Armstrong, Jane A Dingsdale, Hayley Cash, Nicole Li, Yan Greenhalf, William Mukherjee, Rajarshi Kaphalia, Bhupendra S Jaffar, Mohammed Petersen, Ole H Tepikin, Alexei V Sutton, Robert Criddle, David N Gut Pancreas OBJECTIVE: Non-oxidative metabolism of ethanol (NOME) produces fatty acid ethyl esters (FAEEs) via carboxylester lipase (CEL) and other enzyme action implicated in mitochondrial injury and acute pancreatitis (AP). This study investigated the relative importance of oxidative and non-oxidative pathways in mitochondrial dysfunction, pancreatic damage and development of alcoholic AP, and whether deleterious effects of NOME are preventable. DESIGN: Intracellular calcium ([Ca(2+)](C)), NAD(P)H, mitochondrial membrane potential and activation of apoptotic and necrotic cell death pathways were examined in isolated pancreatic acinar cells in response to ethanol and/or palmitoleic acid (POA) in the presence or absence of 4-methylpyrazole (4-MP) to inhibit oxidative metabolism. A novel in vivo model of alcoholic AP induced by intraperitoneal administration of ethanol and POA was developed to assess the effects of manipulating alcohol metabolism. RESULTS: Inhibition of OME with 4-MP converted predominantly transient [Ca(2+)](C) rises induced by low ethanol/POA combination to sustained elevations, with concurrent mitochondrial depolarisation, fall of NAD(P)H and cellular necrosis in vitro. All effects were prevented by 3-benzyl-6-chloro-2-pyrone (3-BCP), a CEL inhibitor. 3-BCP also significantly inhibited rises of pancreatic FAEE in vivo and ameliorated acute pancreatic damage and inflammation induced by administration of ethanol and POA to mice. CONCLUSIONS: A combination of low ethanol and fatty acid that did not exert deleterious effects per se became toxic when oxidative metabolism was inhibited. The in vitro and in vivo damage was markedly inhibited by blockade of CEL, indicating the potential for development of specific therapy for treatment of alcoholic AP via inhibition of FAEE generation. BMJ Publishing Group 2014-08 2013-10-25 /pmc/articles/PMC4112447/ /pubmed/24162590 http://dx.doi.org/10.1136/gutjnl-2012-304058 Text en Published by the BMJ Publishing Group Limited. For permission to use (where not already granted under a licence) please go to http://group.bmj.com/group/rights-licensing/permissions This is an Open Access article distributed in accordance with the terms of the Creative Commons Attribution (CC BY 3.0) license, which permits others to distribute, remix, adapt and build upon this work, for commercial use, provided the original work is properly cited. See: http://creativecommons.org/licenses/by/3.0/
spellingShingle Pancreas
Huang, Wei
Booth, David M
Cane, Matthew C
Chvanov, Michael
Javed, Muhammad A
Elliott, Victoria L
Armstrong, Jane A
Dingsdale, Hayley
Cash, Nicole
Li, Yan
Greenhalf, William
Mukherjee, Rajarshi
Kaphalia, Bhupendra S
Jaffar, Mohammed
Petersen, Ole H
Tepikin, Alexei V
Sutton, Robert
Criddle, David N
Fatty acid ethyl ester synthase inhibition ameliorates ethanol-induced Ca(2+)-dependent mitochondrial dysfunction and acute pancreatitis
title Fatty acid ethyl ester synthase inhibition ameliorates ethanol-induced Ca(2+)-dependent mitochondrial dysfunction and acute pancreatitis
title_full Fatty acid ethyl ester synthase inhibition ameliorates ethanol-induced Ca(2+)-dependent mitochondrial dysfunction and acute pancreatitis
title_fullStr Fatty acid ethyl ester synthase inhibition ameliorates ethanol-induced Ca(2+)-dependent mitochondrial dysfunction and acute pancreatitis
title_full_unstemmed Fatty acid ethyl ester synthase inhibition ameliorates ethanol-induced Ca(2+)-dependent mitochondrial dysfunction and acute pancreatitis
title_short Fatty acid ethyl ester synthase inhibition ameliorates ethanol-induced Ca(2+)-dependent mitochondrial dysfunction and acute pancreatitis
title_sort fatty acid ethyl ester synthase inhibition ameliorates ethanol-induced ca(2+)-dependent mitochondrial dysfunction and acute pancreatitis
topic Pancreas
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4112447/
https://www.ncbi.nlm.nih.gov/pubmed/24162590
http://dx.doi.org/10.1136/gutjnl-2012-304058
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