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Hepatic gap junctions amplify alcohol liver injury by propagating cGAS-mediated IRF3 activation

Alcohol-related liver disease (ALD) accounts for the majority of cirrhosis and liver-related deaths worldwide. Activation of IFN-regulatory factor (IRF3) initiates alcohol-induced hepatocyte apoptosis, which fuels a robust secondary inflammatory response that drives ALD. The dominant molecular mecha...

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Autores principales: Luther, Jay, Khan, Sanjoy, Gala, Manish K., Kedrin, Dmitriy, Sridharan, Gautham, Goodman, Russell P., Garber, John J., Masia, Ricard, Diagacomo, Erik, Adams, Daniel, King, Kevin R., Piaker, Samuel, Reinecker, Hans-Christian, Yarmush, Martin L., Argemi, Josepmaria, Bataller, Ramon, Dienstag, Jules L., Chung, Raymond T., Patel, Suraj J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7261084/
https://www.ncbi.nlm.nih.gov/pubmed/32393626
http://dx.doi.org/10.1073/pnas.1911870117
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author Luther, Jay
Khan, Sanjoy
Gala, Manish K.
Kedrin, Dmitriy
Sridharan, Gautham
Goodman, Russell P.
Garber, John J.
Masia, Ricard
Diagacomo, Erik
Adams, Daniel
King, Kevin R.
Piaker, Samuel
Reinecker, Hans-Christian
Yarmush, Martin L.
Argemi, Josepmaria
Bataller, Ramon
Dienstag, Jules L.
Chung, Raymond T.
Patel, Suraj J.
author_facet Luther, Jay
Khan, Sanjoy
Gala, Manish K.
Kedrin, Dmitriy
Sridharan, Gautham
Goodman, Russell P.
Garber, John J.
Masia, Ricard
Diagacomo, Erik
Adams, Daniel
King, Kevin R.
Piaker, Samuel
Reinecker, Hans-Christian
Yarmush, Martin L.
Argemi, Josepmaria
Bataller, Ramon
Dienstag, Jules L.
Chung, Raymond T.
Patel, Suraj J.
author_sort Luther, Jay
collection PubMed
description Alcohol-related liver disease (ALD) accounts for the majority of cirrhosis and liver-related deaths worldwide. Activation of IFN-regulatory factor (IRF3) initiates alcohol-induced hepatocyte apoptosis, which fuels a robust secondary inflammatory response that drives ALD. The dominant molecular mechanism by which alcohol activates IRF3 and the pathways that amplify inflammatory signals in ALD remains unknown. Here we show that cytoplasmic sensor cyclic guanosine monophosphate-adenosine monophosphate (AMP) synthase (cGAS) drives IRF3 activation in both alcohol-injured hepatocytes and the neighboring parenchyma via a gap junction intercellular communication pathway. Hepatic RNA-seq analysis of patients with a wide spectrum of ALD revealed that expression of the cGAS-IRF3 pathway correlated positively with disease severity. Alcohol-fed mice demonstrated increased hepatic expression of the cGAS-IRF3 pathway. Mice genetically deficient in cGAS and IRF3 were protected against ALD. Ablation of cGAS in hepatocytes only phenocopied this hepatoprotection, highlighting the critical role of hepatocytes in fueling the cGAS-IRF3 response to alcohol. We identified connexin 32 (Cx32), the predominant hepatic gap junction, as a critical regulator of spreading cGAS-driven IRF3 activation through the liver parenchyma. Disruption of Cx32 in ALD impaired IRF3-stimulated gene expression, resulting in decreased hepatic injury despite an increase in hepatic steatosis. Taken together, these results identify cGAS and Cx32 as key factors in ALD pathogenesis and as potential therapeutic targets for hepatoprotection.
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spelling pubmed-72610842020-06-08 Hepatic gap junctions amplify alcohol liver injury by propagating cGAS-mediated IRF3 activation Luther, Jay Khan, Sanjoy Gala, Manish K. Kedrin, Dmitriy Sridharan, Gautham Goodman, Russell P. Garber, John J. Masia, Ricard Diagacomo, Erik Adams, Daniel King, Kevin R. Piaker, Samuel Reinecker, Hans-Christian Yarmush, Martin L. Argemi, Josepmaria Bataller, Ramon Dienstag, Jules L. Chung, Raymond T. Patel, Suraj J. Proc Natl Acad Sci U S A Biological Sciences Alcohol-related liver disease (ALD) accounts for the majority of cirrhosis and liver-related deaths worldwide. Activation of IFN-regulatory factor (IRF3) initiates alcohol-induced hepatocyte apoptosis, which fuels a robust secondary inflammatory response that drives ALD. The dominant molecular mechanism by which alcohol activates IRF3 and the pathways that amplify inflammatory signals in ALD remains unknown. Here we show that cytoplasmic sensor cyclic guanosine monophosphate-adenosine monophosphate (AMP) synthase (cGAS) drives IRF3 activation in both alcohol-injured hepatocytes and the neighboring parenchyma via a gap junction intercellular communication pathway. Hepatic RNA-seq analysis of patients with a wide spectrum of ALD revealed that expression of the cGAS-IRF3 pathway correlated positively with disease severity. Alcohol-fed mice demonstrated increased hepatic expression of the cGAS-IRF3 pathway. Mice genetically deficient in cGAS and IRF3 were protected against ALD. Ablation of cGAS in hepatocytes only phenocopied this hepatoprotection, highlighting the critical role of hepatocytes in fueling the cGAS-IRF3 response to alcohol. We identified connexin 32 (Cx32), the predominant hepatic gap junction, as a critical regulator of spreading cGAS-driven IRF3 activation through the liver parenchyma. Disruption of Cx32 in ALD impaired IRF3-stimulated gene expression, resulting in decreased hepatic injury despite an increase in hepatic steatosis. Taken together, these results identify cGAS and Cx32 as key factors in ALD pathogenesis and as potential therapeutic targets for hepatoprotection. National Academy of Sciences 2020-05-26 2020-05-11 /pmc/articles/PMC7261084/ /pubmed/32393626 http://dx.doi.org/10.1073/pnas.1911870117 Text en Copyright © 2020 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Luther, Jay
Khan, Sanjoy
Gala, Manish K.
Kedrin, Dmitriy
Sridharan, Gautham
Goodman, Russell P.
Garber, John J.
Masia, Ricard
Diagacomo, Erik
Adams, Daniel
King, Kevin R.
Piaker, Samuel
Reinecker, Hans-Christian
Yarmush, Martin L.
Argemi, Josepmaria
Bataller, Ramon
Dienstag, Jules L.
Chung, Raymond T.
Patel, Suraj J.
Hepatic gap junctions amplify alcohol liver injury by propagating cGAS-mediated IRF3 activation
title Hepatic gap junctions amplify alcohol liver injury by propagating cGAS-mediated IRF3 activation
title_full Hepatic gap junctions amplify alcohol liver injury by propagating cGAS-mediated IRF3 activation
title_fullStr Hepatic gap junctions amplify alcohol liver injury by propagating cGAS-mediated IRF3 activation
title_full_unstemmed Hepatic gap junctions amplify alcohol liver injury by propagating cGAS-mediated IRF3 activation
title_short Hepatic gap junctions amplify alcohol liver injury by propagating cGAS-mediated IRF3 activation
title_sort hepatic gap junctions amplify alcohol liver injury by propagating cgas-mediated irf3 activation
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7261084/
https://www.ncbi.nlm.nih.gov/pubmed/32393626
http://dx.doi.org/10.1073/pnas.1911870117
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