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IRF4 is a novel mediator for neuronal survival in ischaemic stroke

Neuroprotection following ischaemic stroke is driven by the interplay between regulatory transcription factors and endogenous protective factors. IRF4, a member of the interferon regulatory factor (IRF) family, is implicated in the survival of tumour cells. However, its role in the survival of norma...

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Autores principales: Guo, S, Li, Z-Z, Jiang, D-S, Lu, Y Y, Liu, Y, Gao, L, Zhang, S-M, Lei, H, Zhu, L-H, Zhang, X-D, Liu, D-P, Li, H
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4013523/
https://www.ncbi.nlm.nih.gov/pubmed/24510125
http://dx.doi.org/10.1038/cdd.2014.9
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author Guo, S
Li, Z-Z
Jiang, D-S
Lu, Y Y
Liu, Y
Gao, L
Zhang, S-M
Lei, H
Zhu, L-H
Zhang, X-D
Liu, D-P
Li, H
author_facet Guo, S
Li, Z-Z
Jiang, D-S
Lu, Y Y
Liu, Y
Gao, L
Zhang, S-M
Lei, H
Zhu, L-H
Zhang, X-D
Liu, D-P
Li, H
author_sort Guo, S
collection PubMed
description Neuroprotection following ischaemic stroke is driven by the interplay between regulatory transcription factors and endogenous protective factors. IRF4, a member of the interferon regulatory factor (IRF) family, is implicated in the survival of tumour cells. However, its role in the survival of normal cells including neurons remains elusive. Using genetic approaches, we established a central role for IRF4 in protection against ischaemia/reperfusion (I/R)-induced neuronal death. IRF4 was expressed in neurons, and induced by ischaemic stroke. Neuron-specific IRF4 transgenic (IRF4-TG) mice exhibited reduced infarct lesions, and this effect was reversed in IRF4-knockout mice. Notably, we revealed that IRF4 rescues neurons from I/R-induced death both in vivo and in vitro. Integrative transcriptional and cell survival analyses showed that IRF4 functions mechanistically as a transcription activator of serum response factor (SRF) crucial to salvage neurons during stroke. Indeed, the expression of SRF and SRF-dependent molecules was significantly upregulated upon IRF4 overexpression and conversely inhibited upon IRF4 ablation. Similar results were observed in oxygen glucose deprivation (OGD)-treated primary cortical neurons. Furthermore, we identified the IRF4-binding site in the promoter region of the SRF gene essential for its transcription. To verify the IRF4–SRF axis in vivo, we generated neuron-specific SRF knockout mice, in which SRF exerted profound cerebroprotective effects similar to those of IRF4. More importantly, the phenotype observed in IRF4-TG mice was completely reversed by SRF ablation. Thus, we have shown that the IRF4–SRF axis is a novel signalling pathway critical for neuronal survival in the setting of ischaemic stroke.
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spelling pubmed-40135232014-06-01 IRF4 is a novel mediator for neuronal survival in ischaemic stroke Guo, S Li, Z-Z Jiang, D-S Lu, Y Y Liu, Y Gao, L Zhang, S-M Lei, H Zhu, L-H Zhang, X-D Liu, D-P Li, H Cell Death Differ Original Paper Neuroprotection following ischaemic stroke is driven by the interplay between regulatory transcription factors and endogenous protective factors. IRF4, a member of the interferon regulatory factor (IRF) family, is implicated in the survival of tumour cells. However, its role in the survival of normal cells including neurons remains elusive. Using genetic approaches, we established a central role for IRF4 in protection against ischaemia/reperfusion (I/R)-induced neuronal death. IRF4 was expressed in neurons, and induced by ischaemic stroke. Neuron-specific IRF4 transgenic (IRF4-TG) mice exhibited reduced infarct lesions, and this effect was reversed in IRF4-knockout mice. Notably, we revealed that IRF4 rescues neurons from I/R-induced death both in vivo and in vitro. Integrative transcriptional and cell survival analyses showed that IRF4 functions mechanistically as a transcription activator of serum response factor (SRF) crucial to salvage neurons during stroke. Indeed, the expression of SRF and SRF-dependent molecules was significantly upregulated upon IRF4 overexpression and conversely inhibited upon IRF4 ablation. Similar results were observed in oxygen glucose deprivation (OGD)-treated primary cortical neurons. Furthermore, we identified the IRF4-binding site in the promoter region of the SRF gene essential for its transcription. To verify the IRF4–SRF axis in vivo, we generated neuron-specific SRF knockout mice, in which SRF exerted profound cerebroprotective effects similar to those of IRF4. More importantly, the phenotype observed in IRF4-TG mice was completely reversed by SRF ablation. Thus, we have shown that the IRF4–SRF axis is a novel signalling pathway critical for neuronal survival in the setting of ischaemic stroke. Nature Publishing Group 2014-06 2014-02-07 /pmc/articles/PMC4013523/ /pubmed/24510125 http://dx.doi.org/10.1038/cdd.2014.9 Text en Copyright © 2014 Macmillan Publishers Limited http://creativecommons.org/licenses/by/3.0/ This work is licensed under a Creative Commons Attribution 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by/3.0/
spellingShingle Original Paper
Guo, S
Li, Z-Z
Jiang, D-S
Lu, Y Y
Liu, Y
Gao, L
Zhang, S-M
Lei, H
Zhu, L-H
Zhang, X-D
Liu, D-P
Li, H
IRF4 is a novel mediator for neuronal survival in ischaemic stroke
title IRF4 is a novel mediator for neuronal survival in ischaemic stroke
title_full IRF4 is a novel mediator for neuronal survival in ischaemic stroke
title_fullStr IRF4 is a novel mediator for neuronal survival in ischaemic stroke
title_full_unstemmed IRF4 is a novel mediator for neuronal survival in ischaemic stroke
title_short IRF4 is a novel mediator for neuronal survival in ischaemic stroke
title_sort irf4 is a novel mediator for neuronal survival in ischaemic stroke
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4013523/
https://www.ncbi.nlm.nih.gov/pubmed/24510125
http://dx.doi.org/10.1038/cdd.2014.9
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