Minimal peroxide exposure of neuronal cells induces multifaceted adaptive responses.

Oxidative exposure of cells occurs naturally and may be associated with cellular damage and dysfunction. Protracted low level oxidative exposure can induce accumulated cell disruption, affecting multiple cellular functions. Accumulated oxidative exposure has also been proposed as one of the potentia...

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Main Authors: Wayne Chadwick, Yu Zhou, Sung-Soo Park, Liyun Wang, Nicholas Mitchell, Matthew D Stone, Kevin G Becker, Bronwen Martin, Stuart Maudsley
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2010-12-01
Series:PLoS ONE
Online Access:https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/21179406/pdf/?tool=EBI
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spelling doaj-f866491f233e40ed97eccd52799cadb22021-03-03T19:54:13ZengPublic Library of Science (PLoS)PLoS ONE1932-62032010-12-01512e1435210.1371/journal.pone.0014352Minimal peroxide exposure of neuronal cells induces multifaceted adaptive responses.Wayne ChadwickYu ZhouSung-Soo ParkLiyun WangNicholas MitchellMatthew D StoneKevin G BeckerBronwen MartinStuart MaudsleyOxidative exposure of cells occurs naturally and may be associated with cellular damage and dysfunction. Protracted low level oxidative exposure can induce accumulated cell disruption, affecting multiple cellular functions. Accumulated oxidative exposure has also been proposed as one of the potential hallmarks of the physiological/pathophysiological aging process. We investigated the multifactorial effects of long-term minimal peroxide exposure upon SH-SY5Y neural cells to understand how they respond to the continued presence of oxidative stressors. We show that minimal protracted oxidative stresses induce complex molecular and physiological alterations in cell functionality. Upon chronic exposure to minimal doses of hydrogen peroxide, SH-SY5Y cells displayed a multifactorial response to the stressor. To fully appreciate the peroxide-mediated cellular effects, we assessed these adaptive effects at the genomic, proteomic and cellular signal processing level. Combined analyses of these multiple levels of investigation revealed a complex cellular adaptive response to the protracted peroxide exposure. This adaptive response involved changes in cytoskeletal structure, energy metabolic shifts towards glycolysis and selective alterations in transmembrane receptor activity. Our analyses of the global responses to chronic stressor exposure, at multiple biological levels, revealed a viable neural phenotype in-part reminiscent of aged or damaged neural tissue. Our paradigm indicates how cellular physiology can subtly change in different contexts and potentially aid the appreciation of stress response adaptations.https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/21179406/pdf/?tool=EBI
collection DOAJ
language English
format Article
sources DOAJ
author Wayne Chadwick
Yu Zhou
Sung-Soo Park
Liyun Wang
Nicholas Mitchell
Matthew D Stone
Kevin G Becker
Bronwen Martin
Stuart Maudsley
spellingShingle Wayne Chadwick
Yu Zhou
Sung-Soo Park
Liyun Wang
Nicholas Mitchell
Matthew D Stone
Kevin G Becker
Bronwen Martin
Stuart Maudsley
Minimal peroxide exposure of neuronal cells induces multifaceted adaptive responses.
PLoS ONE
author_facet Wayne Chadwick
Yu Zhou
Sung-Soo Park
Liyun Wang
Nicholas Mitchell
Matthew D Stone
Kevin G Becker
Bronwen Martin
Stuart Maudsley
author_sort Wayne Chadwick
title Minimal peroxide exposure of neuronal cells induces multifaceted adaptive responses.
title_short Minimal peroxide exposure of neuronal cells induces multifaceted adaptive responses.
title_full Minimal peroxide exposure of neuronal cells induces multifaceted adaptive responses.
title_fullStr Minimal peroxide exposure of neuronal cells induces multifaceted adaptive responses.
title_full_unstemmed Minimal peroxide exposure of neuronal cells induces multifaceted adaptive responses.
title_sort minimal peroxide exposure of neuronal cells induces multifaceted adaptive responses.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2010-12-01
description Oxidative exposure of cells occurs naturally and may be associated with cellular damage and dysfunction. Protracted low level oxidative exposure can induce accumulated cell disruption, affecting multiple cellular functions. Accumulated oxidative exposure has also been proposed as one of the potential hallmarks of the physiological/pathophysiological aging process. We investigated the multifactorial effects of long-term minimal peroxide exposure upon SH-SY5Y neural cells to understand how they respond to the continued presence of oxidative stressors. We show that minimal protracted oxidative stresses induce complex molecular and physiological alterations in cell functionality. Upon chronic exposure to minimal doses of hydrogen peroxide, SH-SY5Y cells displayed a multifactorial response to the stressor. To fully appreciate the peroxide-mediated cellular effects, we assessed these adaptive effects at the genomic, proteomic and cellular signal processing level. Combined analyses of these multiple levels of investigation revealed a complex cellular adaptive response to the protracted peroxide exposure. This adaptive response involved changes in cytoskeletal structure, energy metabolic shifts towards glycolysis and selective alterations in transmembrane receptor activity. Our analyses of the global responses to chronic stressor exposure, at multiple biological levels, revealed a viable neural phenotype in-part reminiscent of aged or damaged neural tissue. Our paradigm indicates how cellular physiology can subtly change in different contexts and potentially aid the appreciation of stress response adaptations.
url https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/21179406/pdf/?tool=EBI
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