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Prevention of neonatal oxygen-induced brain damage by reduction of intrinsic apoptosis

Within the last decade, it became clear that oxygen contributes to the pathogenesis of neonatal brain damage, leading to neurocognitive impairment of prematurely born infants in later life. Recently, we have identified a critical role for receptor-mediated neuronal apoptosis in the immature rodent b...

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Autores principales: Sifringer, M, Bendix, I, Börner, C, Endesfelder, S, von Haefen, C, Kalb, A, Holifanjaniaina, S, Prager, S, Schlager, G W, Keller, M, Jacotot, E, Felderhoff-Mueser, U
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3270267/
https://www.ncbi.nlm.nih.gov/pubmed/22237207
http://dx.doi.org/10.1038/cddis.2011.133
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author Sifringer, M
Bendix, I
Börner, C
Endesfelder, S
von Haefen, C
Kalb, A
Holifanjaniaina, S
Prager, S
Schlager, G W
Keller, M
Jacotot, E
Felderhoff-Mueser, U
author_facet Sifringer, M
Bendix, I
Börner, C
Endesfelder, S
von Haefen, C
Kalb, A
Holifanjaniaina, S
Prager, S
Schlager, G W
Keller, M
Jacotot, E
Felderhoff-Mueser, U
author_sort Sifringer, M
collection PubMed
description Within the last decade, it became clear that oxygen contributes to the pathogenesis of neonatal brain damage, leading to neurocognitive impairment of prematurely born infants in later life. Recently, we have identified a critical role for receptor-mediated neuronal apoptosis in the immature rodent brain. However, the contribution of the intrinsic apoptotic pathway accompanied by activation of caspase-2 under hyperoxic conditions in the neonatal brain still remains elusive. Inhibition of caspases appears a promising strategy for neuroprotection. In order to assess the influence of specific caspases on the developing brain, we applied a recently developed pentapeptide-based group II caspase inhibitor (5-(2,6-difluoro-phenoxy)-3(R,S)-(2(S)-(2(S)-(3-methoxycarbonyl-2(S)-(3-methyl-2(S)-((quinoline-2-carbonyl)-amino)-butyrylamino)propionylamino)3-methylbutyrylamino)propionylamino)-4-oxo-pentanoic acid methyl ester; TRP601). Here, we report that elevated oxygen (hyperoxia) triggers a marked increase in active caspase-2 expression, resulting in an initiation of the intrinsic apoptotic pathway with upregulation of key proteins, namely, cytochrome c, apoptosis protease-activating factor-1, and the caspase-independent protein apoptosis-inducing factor, whereas BH3-interacting domain death agonist and the anti-apoptotic protein B-cell lymphoma-2 are downregulated. These results coincide with an upregulation of caspase-3 activity and marked neurodegeneration. However, single treatment with TRP601 at the beginning of hyperoxia reversed the detrimental effects in this model. Hyperoxia-mediated neurodegeneration is supported by intrinsic apoptosis, suggesting that the development of highly selective caspase inhibitors will represent a potential useful therapeutic strategy in prematurely born infants.
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spelling pubmed-32702672012-02-02 Prevention of neonatal oxygen-induced brain damage by reduction of intrinsic apoptosis Sifringer, M Bendix, I Börner, C Endesfelder, S von Haefen, C Kalb, A Holifanjaniaina, S Prager, S Schlager, G W Keller, M Jacotot, E Felderhoff-Mueser, U Cell Death Dis Original Article Within the last decade, it became clear that oxygen contributes to the pathogenesis of neonatal brain damage, leading to neurocognitive impairment of prematurely born infants in later life. Recently, we have identified a critical role for receptor-mediated neuronal apoptosis in the immature rodent brain. However, the contribution of the intrinsic apoptotic pathway accompanied by activation of caspase-2 under hyperoxic conditions in the neonatal brain still remains elusive. Inhibition of caspases appears a promising strategy for neuroprotection. In order to assess the influence of specific caspases on the developing brain, we applied a recently developed pentapeptide-based group II caspase inhibitor (5-(2,6-difluoro-phenoxy)-3(R,S)-(2(S)-(2(S)-(3-methoxycarbonyl-2(S)-(3-methyl-2(S)-((quinoline-2-carbonyl)-amino)-butyrylamino)propionylamino)3-methylbutyrylamino)propionylamino)-4-oxo-pentanoic acid methyl ester; TRP601). Here, we report that elevated oxygen (hyperoxia) triggers a marked increase in active caspase-2 expression, resulting in an initiation of the intrinsic apoptotic pathway with upregulation of key proteins, namely, cytochrome c, apoptosis protease-activating factor-1, and the caspase-independent protein apoptosis-inducing factor, whereas BH3-interacting domain death agonist and the anti-apoptotic protein B-cell lymphoma-2 are downregulated. These results coincide with an upregulation of caspase-3 activity and marked neurodegeneration. However, single treatment with TRP601 at the beginning of hyperoxia reversed the detrimental effects in this model. Hyperoxia-mediated neurodegeneration is supported by intrinsic apoptosis, suggesting that the development of highly selective caspase inhibitors will represent a potential useful therapeutic strategy in prematurely born infants. Nature Publishing Group 2012-01 2012-01-12 /pmc/articles/PMC3270267/ /pubmed/22237207 http://dx.doi.org/10.1038/cddis.2011.133 Text en Copyright © 2012 Macmillan Publishers Limited http://creativecommons.org/licenses/by-nc-nd/3.0/ This work is licensed under the Creative Commons Attribution-NonCommercial-No Derivative Works 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/3.0/
spellingShingle Original Article
Sifringer, M
Bendix, I
Börner, C
Endesfelder, S
von Haefen, C
Kalb, A
Holifanjaniaina, S
Prager, S
Schlager, G W
Keller, M
Jacotot, E
Felderhoff-Mueser, U
Prevention of neonatal oxygen-induced brain damage by reduction of intrinsic apoptosis
title Prevention of neonatal oxygen-induced brain damage by reduction of intrinsic apoptosis
title_full Prevention of neonatal oxygen-induced brain damage by reduction of intrinsic apoptosis
title_fullStr Prevention of neonatal oxygen-induced brain damage by reduction of intrinsic apoptosis
title_full_unstemmed Prevention of neonatal oxygen-induced brain damage by reduction of intrinsic apoptosis
title_short Prevention of neonatal oxygen-induced brain damage by reduction of intrinsic apoptosis
title_sort prevention of neonatal oxygen-induced brain damage by reduction of intrinsic apoptosis
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3270267/
https://www.ncbi.nlm.nih.gov/pubmed/22237207
http://dx.doi.org/10.1038/cddis.2011.133
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