Local oxidative stress expansion through endothelial cells--a key role for gap junction intercellular communication.

BACKGROUND: Major circulation pathologies are initiated by oxidative insult expansion from a few injured endothelial cells to distal sites; this possibly involves mechanisms that are important to understanding circulation physiology and designing therapeutic management of myocardial pathologies. We...

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Main Authors: Ilan Feine, Iddo Pinkas, Yoram Salomon, Avigdor Scherz
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3402439?pdf=render
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spelling doaj-b170b2c6017844b4aaf6982809514a712020-11-25T01:18:25ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0177e4163310.1371/journal.pone.0041633Local oxidative stress expansion through endothelial cells--a key role for gap junction intercellular communication.Ilan FeineIddo PinkasYoram SalomonAvigdor ScherzBACKGROUND: Major circulation pathologies are initiated by oxidative insult expansion from a few injured endothelial cells to distal sites; this possibly involves mechanisms that are important to understanding circulation physiology and designing therapeutic management of myocardial pathologies. We tested the hypothesis that a localized oxidative insult of endothelial cells (ECs) propagates through gap junction inter-cellular communication (GJIC). METHODOLOGY/PRINCIPAL FINDINGS: Cultures comprising the bEnd.3 cell line, that have been established and recognized as suitable for examining communication among ECs, were used to study the propagation of a localized oxidative insult to remote cells. Spatially confined near infrared illumination of parental or genetically modified bEnd.3 cultures, pretreated with the photosensitizer WST11, generated O(2)•(-) and •OH radicals in the illuminated cells. Time-lapse fluorescence microscopy, utilizing various markers, and other methods, were used to monitor the response of non-illuminated bystander and remote cells. Functional GJIC among ECs was shown to be mandatory for oxidative insult propagation, comprising de-novo generation of reactive oxygen and nitrogen species (ROS and RNS, respectively), activation and nuclear translocation of c-Jun N-terminal kinase, followed by massive apoptosis in all bystander cells adjacent to the primarily injured ECs. The oxidative insult propagated through GJIC for many hours, over hundreds of microns from the primary photogeneration site. This wave is shown to be limited by intracellular ROS scavenging, chemical GJIC inhibition or genetic manipulation of connexin 43 (a key component of GJIC). CONCLUSION/SIGNIFICANCE: Localized oxidative insults propagate through GJIC between ECs, while stimulating de-novo generation of ROS and RNS in bystander cells, thereby driving the insult's expansion.http://europepmc.org/articles/PMC3402439?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Ilan Feine
Iddo Pinkas
Yoram Salomon
Avigdor Scherz
spellingShingle Ilan Feine
Iddo Pinkas
Yoram Salomon
Avigdor Scherz
Local oxidative stress expansion through endothelial cells--a key role for gap junction intercellular communication.
PLoS ONE
author_facet Ilan Feine
Iddo Pinkas
Yoram Salomon
Avigdor Scherz
author_sort Ilan Feine
title Local oxidative stress expansion through endothelial cells--a key role for gap junction intercellular communication.
title_short Local oxidative stress expansion through endothelial cells--a key role for gap junction intercellular communication.
title_full Local oxidative stress expansion through endothelial cells--a key role for gap junction intercellular communication.
title_fullStr Local oxidative stress expansion through endothelial cells--a key role for gap junction intercellular communication.
title_full_unstemmed Local oxidative stress expansion through endothelial cells--a key role for gap junction intercellular communication.
title_sort local oxidative stress expansion through endothelial cells--a key role for gap junction intercellular communication.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description BACKGROUND: Major circulation pathologies are initiated by oxidative insult expansion from a few injured endothelial cells to distal sites; this possibly involves mechanisms that are important to understanding circulation physiology and designing therapeutic management of myocardial pathologies. We tested the hypothesis that a localized oxidative insult of endothelial cells (ECs) propagates through gap junction inter-cellular communication (GJIC). METHODOLOGY/PRINCIPAL FINDINGS: Cultures comprising the bEnd.3 cell line, that have been established and recognized as suitable for examining communication among ECs, were used to study the propagation of a localized oxidative insult to remote cells. Spatially confined near infrared illumination of parental or genetically modified bEnd.3 cultures, pretreated with the photosensitizer WST11, generated O(2)•(-) and •OH radicals in the illuminated cells. Time-lapse fluorescence microscopy, utilizing various markers, and other methods, were used to monitor the response of non-illuminated bystander and remote cells. Functional GJIC among ECs was shown to be mandatory for oxidative insult propagation, comprising de-novo generation of reactive oxygen and nitrogen species (ROS and RNS, respectively), activation and nuclear translocation of c-Jun N-terminal kinase, followed by massive apoptosis in all bystander cells adjacent to the primarily injured ECs. The oxidative insult propagated through GJIC for many hours, over hundreds of microns from the primary photogeneration site. This wave is shown to be limited by intracellular ROS scavenging, chemical GJIC inhibition or genetic manipulation of connexin 43 (a key component of GJIC). CONCLUSION/SIGNIFICANCE: Localized oxidative insults propagate through GJIC between ECs, while stimulating de-novo generation of ROS and RNS in bystander cells, thereby driving the insult's expansion.
url http://europepmc.org/articles/PMC3402439?pdf=render
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