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Low-dose acetaminophen induces early disruption of cell-cell tight junctions in human hepatic cells and mouse liver

Dysfunction of cell-cell tight junction (TJ) adhesions is a major feature in the pathogenesis of various diseases. Liver TJs preserve cellular polarity by delimiting functional bile-canalicular structures, forming the blood-biliary barrier. In acetaminophen-hepatotoxicity, the mechanism by which tis...

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Autores principales: Gamal, Wesam, Treskes, Philipp, Samuel, Kay, Sullivan, Gareth J., Siller, Richard, Srsen, Vlastimil, Morgan, Katie, Bryans, Anna, Kozlowska, Ada, Koulovasilopoulos, Andreas, Underwood, Ian, Smith, Stewart, del-Pozo, Jorge, Moss, Sharon, Thompson, Alexandra Inés, Henderson, Neil C., Hayes, Peter C., Plevris, John N., Bagnaninchi, Pierre-Olivier, Nelson, Leonard J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5278402/
https://www.ncbi.nlm.nih.gov/pubmed/28134251
http://dx.doi.org/10.1038/srep37541
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author Gamal, Wesam
Treskes, Philipp
Samuel, Kay
Sullivan, Gareth J.
Siller, Richard
Srsen, Vlastimil
Morgan, Katie
Bryans, Anna
Kozlowska, Ada
Koulovasilopoulos, Andreas
Underwood, Ian
Smith, Stewart
del-Pozo, Jorge
Moss, Sharon
Thompson, Alexandra Inés
Henderson, Neil C.
Hayes, Peter C.
Plevris, John N.
Bagnaninchi, Pierre-Olivier
Nelson, Leonard J.
author_facet Gamal, Wesam
Treskes, Philipp
Samuel, Kay
Sullivan, Gareth J.
Siller, Richard
Srsen, Vlastimil
Morgan, Katie
Bryans, Anna
Kozlowska, Ada
Koulovasilopoulos, Andreas
Underwood, Ian
Smith, Stewart
del-Pozo, Jorge
Moss, Sharon
Thompson, Alexandra Inés
Henderson, Neil C.
Hayes, Peter C.
Plevris, John N.
Bagnaninchi, Pierre-Olivier
Nelson, Leonard J.
author_sort Gamal, Wesam
collection PubMed
description Dysfunction of cell-cell tight junction (TJ) adhesions is a major feature in the pathogenesis of various diseases. Liver TJs preserve cellular polarity by delimiting functional bile-canalicular structures, forming the blood-biliary barrier. In acetaminophen-hepatotoxicity, the mechanism by which tissue cohesion and polarity are affected remains unclear. Here, we demonstrate that acetaminophen, even at low-dose, disrupts the integrity of TJ and cell-matrix adhesions, with indicators of cellular stress with liver injury in the human hepatic HepaRG cell line, and primary hepatocytes. In mouse liver, at human-equivalence (therapeutic) doses, dose-dependent loss of intercellular hepatic TJ-associated ZO-1 protein expression was evident with progressive clinical signs of liver injury. Temporal, dose-dependent and specific disruption of the TJ-associated ZO-1 and cytoskeletal-F-actin proteins, correlated with modulation of hepatic ultrastructure. Real-time impedance biosensing verified in vitro early, dose-dependent quantitative decreases in TJ and cell-substrate adhesions. Whereas treatment with NAPQI, the reactive metabolite of acetaminophen, or the PKCα-activator and TJ-disruptor phorbol-12-myristate-13-acetate, similarly reduced TJ integrity, which may implicate oxidative stress and the PKC pathway in TJ destabilization. These findings are relevant to the clinical presentation of acetaminophen-hepatotoxicity and may inform future mechanistic studies to identify specific molecular targets and pathways that may be altered in acetaminophen-induced hepatic depolarization.
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spelling pubmed-52784022017-02-03 Low-dose acetaminophen induces early disruption of cell-cell tight junctions in human hepatic cells and mouse liver Gamal, Wesam Treskes, Philipp Samuel, Kay Sullivan, Gareth J. Siller, Richard Srsen, Vlastimil Morgan, Katie Bryans, Anna Kozlowska, Ada Koulovasilopoulos, Andreas Underwood, Ian Smith, Stewart del-Pozo, Jorge Moss, Sharon Thompson, Alexandra Inés Henderson, Neil C. Hayes, Peter C. Plevris, John N. Bagnaninchi, Pierre-Olivier Nelson, Leonard J. Sci Rep Article Dysfunction of cell-cell tight junction (TJ) adhesions is a major feature in the pathogenesis of various diseases. Liver TJs preserve cellular polarity by delimiting functional bile-canalicular structures, forming the blood-biliary barrier. In acetaminophen-hepatotoxicity, the mechanism by which tissue cohesion and polarity are affected remains unclear. Here, we demonstrate that acetaminophen, even at low-dose, disrupts the integrity of TJ and cell-matrix adhesions, with indicators of cellular stress with liver injury in the human hepatic HepaRG cell line, and primary hepatocytes. In mouse liver, at human-equivalence (therapeutic) doses, dose-dependent loss of intercellular hepatic TJ-associated ZO-1 protein expression was evident with progressive clinical signs of liver injury. Temporal, dose-dependent and specific disruption of the TJ-associated ZO-1 and cytoskeletal-F-actin proteins, correlated with modulation of hepatic ultrastructure. Real-time impedance biosensing verified in vitro early, dose-dependent quantitative decreases in TJ and cell-substrate adhesions. Whereas treatment with NAPQI, the reactive metabolite of acetaminophen, or the PKCα-activator and TJ-disruptor phorbol-12-myristate-13-acetate, similarly reduced TJ integrity, which may implicate oxidative stress and the PKC pathway in TJ destabilization. These findings are relevant to the clinical presentation of acetaminophen-hepatotoxicity and may inform future mechanistic studies to identify specific molecular targets and pathways that may be altered in acetaminophen-induced hepatic depolarization. Nature Publishing Group 2017-01-30 /pmc/articles/PMC5278402/ /pubmed/28134251 http://dx.doi.org/10.1038/srep37541 Text en Copyright © 2017, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Gamal, Wesam
Treskes, Philipp
Samuel, Kay
Sullivan, Gareth J.
Siller, Richard
Srsen, Vlastimil
Morgan, Katie
Bryans, Anna
Kozlowska, Ada
Koulovasilopoulos, Andreas
Underwood, Ian
Smith, Stewart
del-Pozo, Jorge
Moss, Sharon
Thompson, Alexandra Inés
Henderson, Neil C.
Hayes, Peter C.
Plevris, John N.
Bagnaninchi, Pierre-Olivier
Nelson, Leonard J.
Low-dose acetaminophen induces early disruption of cell-cell tight junctions in human hepatic cells and mouse liver
title Low-dose acetaminophen induces early disruption of cell-cell tight junctions in human hepatic cells and mouse liver
title_full Low-dose acetaminophen induces early disruption of cell-cell tight junctions in human hepatic cells and mouse liver
title_fullStr Low-dose acetaminophen induces early disruption of cell-cell tight junctions in human hepatic cells and mouse liver
title_full_unstemmed Low-dose acetaminophen induces early disruption of cell-cell tight junctions in human hepatic cells and mouse liver
title_short Low-dose acetaminophen induces early disruption of cell-cell tight junctions in human hepatic cells and mouse liver
title_sort low-dose acetaminophen induces early disruption of cell-cell tight junctions in human hepatic cells and mouse liver
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5278402/
https://www.ncbi.nlm.nih.gov/pubmed/28134251
http://dx.doi.org/10.1038/srep37541
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