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The impairment of HCCS leads to MLS syndrome by activating a non-canonical cell death pathway in the brain and eyes

Mitochondrial-dependent (intrinsic) programmed cell death (PCD) is an essential homoeostatic mechanism that selects bioenergetically proficient cells suitable for tissue/organ development. However, the link between mitochondrial dysfunction, intrinsic apoptosis and developmental anomalies has not be...

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Autores principales: Indrieri, Alessia, Conte, Ivan, Chesi, Giancarlo, Romano, Alessia, Quartararo, Jade, Tatè, Rosarita, Ghezzi, Daniele, Zeviani, Massimo, Goffrini, Paola, Ferrero, Ileana, Bovolenta, Paola, Franco, Brunella
Formato: Online Artículo Texto
Lenguaje:English
Publicado: WILEY-VCH Verlag 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3569643/
https://www.ncbi.nlm.nih.gov/pubmed/23239471
http://dx.doi.org/10.1002/emmm.201201739
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author Indrieri, Alessia
Conte, Ivan
Chesi, Giancarlo
Romano, Alessia
Quartararo, Jade
Tatè, Rosarita
Ghezzi, Daniele
Zeviani, Massimo
Goffrini, Paola
Ferrero, Ileana
Bovolenta, Paola
Franco, Brunella
author_facet Indrieri, Alessia
Conte, Ivan
Chesi, Giancarlo
Romano, Alessia
Quartararo, Jade
Tatè, Rosarita
Ghezzi, Daniele
Zeviani, Massimo
Goffrini, Paola
Ferrero, Ileana
Bovolenta, Paola
Franco, Brunella
author_sort Indrieri, Alessia
collection PubMed
description Mitochondrial-dependent (intrinsic) programmed cell death (PCD) is an essential homoeostatic mechanism that selects bioenergetically proficient cells suitable for tissue/organ development. However, the link between mitochondrial dysfunction, intrinsic apoptosis and developmental anomalies has not been demonstrated to date. Now we provide the evidence that non-canonical mitochondrial-dependent apoptosis explains the phenotype of microphthalmia with linear skin lesions (MLS), an X-linked developmental disorder caused by mutations in the holo-cytochrome c-type synthase (HCCS) gene. By taking advantage of a medaka model that recapitulates the MLS phenotype we demonstrate that downregulation of hccs, an essential player of the mitochondrial respiratory chain (MRC), causes increased cell death via an apoptosome-independent caspase-9 activation in brain and eyes. We also show that the unconventional activation of caspase-9 occurs in the mitochondria and is triggered by MRC impairment and overproduction of reactive oxygen species (ROS). We thus propose that HCCS plays a key role in central nervous system (CNS) development by modulating a novel non-canonical start-up of cell death and provide the first experimental evidence for a mechanistic link between mitochondrial dysfunction, intrinsic apoptosis and developmental disorders.
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spelling pubmed-35696432013-02-12 The impairment of HCCS leads to MLS syndrome by activating a non-canonical cell death pathway in the brain and eyes Indrieri, Alessia Conte, Ivan Chesi, Giancarlo Romano, Alessia Quartararo, Jade Tatè, Rosarita Ghezzi, Daniele Zeviani, Massimo Goffrini, Paola Ferrero, Ileana Bovolenta, Paola Franco, Brunella EMBO Mol Med Research Articles Mitochondrial-dependent (intrinsic) programmed cell death (PCD) is an essential homoeostatic mechanism that selects bioenergetically proficient cells suitable for tissue/organ development. However, the link between mitochondrial dysfunction, intrinsic apoptosis and developmental anomalies has not been demonstrated to date. Now we provide the evidence that non-canonical mitochondrial-dependent apoptosis explains the phenotype of microphthalmia with linear skin lesions (MLS), an X-linked developmental disorder caused by mutations in the holo-cytochrome c-type synthase (HCCS) gene. By taking advantage of a medaka model that recapitulates the MLS phenotype we demonstrate that downregulation of hccs, an essential player of the mitochondrial respiratory chain (MRC), causes increased cell death via an apoptosome-independent caspase-9 activation in brain and eyes. We also show that the unconventional activation of caspase-9 occurs in the mitochondria and is triggered by MRC impairment and overproduction of reactive oxygen species (ROS). We thus propose that HCCS plays a key role in central nervous system (CNS) development by modulating a novel non-canonical start-up of cell death and provide the first experimental evidence for a mechanistic link between mitochondrial dysfunction, intrinsic apoptosis and developmental disorders. WILEY-VCH Verlag 2013-02 2013-01-22 /pmc/articles/PMC3569643/ /pubmed/23239471 http://dx.doi.org/10.1002/emmm.201201739 Text en Copyright © 2013 The Authors. Published by John Wiley and Sons, Ltd on behalf of EMBO http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation.
spellingShingle Research Articles
Indrieri, Alessia
Conte, Ivan
Chesi, Giancarlo
Romano, Alessia
Quartararo, Jade
Tatè, Rosarita
Ghezzi, Daniele
Zeviani, Massimo
Goffrini, Paola
Ferrero, Ileana
Bovolenta, Paola
Franco, Brunella
The impairment of HCCS leads to MLS syndrome by activating a non-canonical cell death pathway in the brain and eyes
title The impairment of HCCS leads to MLS syndrome by activating a non-canonical cell death pathway in the brain and eyes
title_full The impairment of HCCS leads to MLS syndrome by activating a non-canonical cell death pathway in the brain and eyes
title_fullStr The impairment of HCCS leads to MLS syndrome by activating a non-canonical cell death pathway in the brain and eyes
title_full_unstemmed The impairment of HCCS leads to MLS syndrome by activating a non-canonical cell death pathway in the brain and eyes
title_short The impairment of HCCS leads to MLS syndrome by activating a non-canonical cell death pathway in the brain and eyes
title_sort impairment of hccs leads to mls syndrome by activating a non-canonical cell death pathway in the brain and eyes
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3569643/
https://www.ncbi.nlm.nih.gov/pubmed/23239471
http://dx.doi.org/10.1002/emmm.201201739
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