Cargando…

Astrocyte‐specific deletion of the mitochondrial m‐AAA protease reveals glial contribution to neurodegeneration

Mitochondrial dysfunction causes neurodegeneration but whether impairment of mitochondrial homeostasis in astrocytes contributes to this pathological process remains largely unknown. The m‐AAA protease exerts quality control and regulatory functions crucial for mitochondrial homeostasis. AFG3L2, whi...

Descripción completa

Detalles Bibliográficos
Autores principales: Murru, Sara, Hess, Simon, Barth, Esther, Almajan, Eva R., Schatton, Désirée, Hermans, Steffen, Brodesser, Susanne, Langer, Thomas, Kloppenburg, Peter, Rugarli, Elena I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6618114/
https://www.ncbi.nlm.nih.gov/pubmed/30989755
http://dx.doi.org/10.1002/glia.23626
_version_ 1783433846447931392
author Murru, Sara
Hess, Simon
Barth, Esther
Almajan, Eva R.
Schatton, Désirée
Hermans, Steffen
Brodesser, Susanne
Langer, Thomas
Kloppenburg, Peter
Rugarli, Elena I.
author_facet Murru, Sara
Hess, Simon
Barth, Esther
Almajan, Eva R.
Schatton, Désirée
Hermans, Steffen
Brodesser, Susanne
Langer, Thomas
Kloppenburg, Peter
Rugarli, Elena I.
author_sort Murru, Sara
collection PubMed
description Mitochondrial dysfunction causes neurodegeneration but whether impairment of mitochondrial homeostasis in astrocytes contributes to this pathological process remains largely unknown. The m‐AAA protease exerts quality control and regulatory functions crucial for mitochondrial homeostasis. AFG3L2, which encodes one of the subunits of the m‐AAA protease, is mutated in spinocerebellar ataxia SCA28 and in infantile syndromes characterized by spastic‐ataxia, epilepsy and premature death. Here, we investigate the role of Afg3l2 and its redundant homologue Afg3l1 in the Bergmann glia (BG), radial astrocytes of the cerebellum that have functional connections with Purkinje cells (PC) and regulate glutamate homeostasis. We show that astrocyte‐specific deletion of Afg3l2 in the mouse leads to late‐onset motor impairment and to degeneration of BG, which display aberrant morphology, altered expression of the glutamate transporter EAAT2, and a reactive inflammatory signature. The neurological and glial phenotypes are drastically exacerbated when astrocytes lack both Afg31l and Afg3l2, and therefore, are totally depleted of the m‐AAA protease. Moreover, mitochondrial stress responses and necroptotic markers are induced in the cerebellum. In both mouse models, targeted BG show a fragmented mitochondrial network and loss of mitochondrial cristae, but no signs of respiratory dysfunction. Importantly, astrocyte‐specific deficiency of Afg3l1 and Afg3l2 triggers secondary morphological degeneration and electrophysiological changes in PCs, thus demonstrating a non‐cell‐autonomous role of glia in neurodegeneration. We propose that astrocyte dysfunction amplifies both neuroinflammation and glutamate excitotoxicity in patients carrying mutations in AFG3L2, leading to a vicious circle that contributes to neuronal death.
format Online
Article
Text
id pubmed-6618114
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher John Wiley & Sons, Inc.
record_format MEDLINE/PubMed
spelling pubmed-66181142019-07-22 Astrocyte‐specific deletion of the mitochondrial m‐AAA protease reveals glial contribution to neurodegeneration Murru, Sara Hess, Simon Barth, Esther Almajan, Eva R. Schatton, Désirée Hermans, Steffen Brodesser, Susanne Langer, Thomas Kloppenburg, Peter Rugarli, Elena I. Glia Research Articles Mitochondrial dysfunction causes neurodegeneration but whether impairment of mitochondrial homeostasis in astrocytes contributes to this pathological process remains largely unknown. The m‐AAA protease exerts quality control and regulatory functions crucial for mitochondrial homeostasis. AFG3L2, which encodes one of the subunits of the m‐AAA protease, is mutated in spinocerebellar ataxia SCA28 and in infantile syndromes characterized by spastic‐ataxia, epilepsy and premature death. Here, we investigate the role of Afg3l2 and its redundant homologue Afg3l1 in the Bergmann glia (BG), radial astrocytes of the cerebellum that have functional connections with Purkinje cells (PC) and regulate glutamate homeostasis. We show that astrocyte‐specific deletion of Afg3l2 in the mouse leads to late‐onset motor impairment and to degeneration of BG, which display aberrant morphology, altered expression of the glutamate transporter EAAT2, and a reactive inflammatory signature. The neurological and glial phenotypes are drastically exacerbated when astrocytes lack both Afg31l and Afg3l2, and therefore, are totally depleted of the m‐AAA protease. Moreover, mitochondrial stress responses and necroptotic markers are induced in the cerebellum. In both mouse models, targeted BG show a fragmented mitochondrial network and loss of mitochondrial cristae, but no signs of respiratory dysfunction. Importantly, astrocyte‐specific deficiency of Afg3l1 and Afg3l2 triggers secondary morphological degeneration and electrophysiological changes in PCs, thus demonstrating a non‐cell‐autonomous role of glia in neurodegeneration. We propose that astrocyte dysfunction amplifies both neuroinflammation and glutamate excitotoxicity in patients carrying mutations in AFG3L2, leading to a vicious circle that contributes to neuronal death. John Wiley & Sons, Inc. 2019-04-16 2019-08 /pmc/articles/PMC6618114/ /pubmed/30989755 http://dx.doi.org/10.1002/glia.23626 Text en © 2019 The Authors. Glia published by Wiley Periodicals, Inc. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Murru, Sara
Hess, Simon
Barth, Esther
Almajan, Eva R.
Schatton, Désirée
Hermans, Steffen
Brodesser, Susanne
Langer, Thomas
Kloppenburg, Peter
Rugarli, Elena I.
Astrocyte‐specific deletion of the mitochondrial m‐AAA protease reveals glial contribution to neurodegeneration
title Astrocyte‐specific deletion of the mitochondrial m‐AAA protease reveals glial contribution to neurodegeneration
title_full Astrocyte‐specific deletion of the mitochondrial m‐AAA protease reveals glial contribution to neurodegeneration
title_fullStr Astrocyte‐specific deletion of the mitochondrial m‐AAA protease reveals glial contribution to neurodegeneration
title_full_unstemmed Astrocyte‐specific deletion of the mitochondrial m‐AAA protease reveals glial contribution to neurodegeneration
title_short Astrocyte‐specific deletion of the mitochondrial m‐AAA protease reveals glial contribution to neurodegeneration
title_sort astrocyte‐specific deletion of the mitochondrial m‐aaa protease reveals glial contribution to neurodegeneration
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6618114/
https://www.ncbi.nlm.nih.gov/pubmed/30989755
http://dx.doi.org/10.1002/glia.23626
work_keys_str_mv AT murrusara astrocytespecificdeletionofthemitochondrialmaaaproteaserevealsglialcontributiontoneurodegeneration
AT hesssimon astrocytespecificdeletionofthemitochondrialmaaaproteaserevealsglialcontributiontoneurodegeneration
AT barthesther astrocytespecificdeletionofthemitochondrialmaaaproteaserevealsglialcontributiontoneurodegeneration
AT almajanevar astrocytespecificdeletionofthemitochondrialmaaaproteaserevealsglialcontributiontoneurodegeneration
AT schattondesiree astrocytespecificdeletionofthemitochondrialmaaaproteaserevealsglialcontributiontoneurodegeneration
AT hermanssteffen astrocytespecificdeletionofthemitochondrialmaaaproteaserevealsglialcontributiontoneurodegeneration
AT brodessersusanne astrocytespecificdeletionofthemitochondrialmaaaproteaserevealsglialcontributiontoneurodegeneration
AT langerthomas astrocytespecificdeletionofthemitochondrialmaaaproteaserevealsglialcontributiontoneurodegeneration
AT kloppenburgpeter astrocytespecificdeletionofthemitochondrialmaaaproteaserevealsglialcontributiontoneurodegeneration
AT rugarlielenai astrocytespecificdeletionofthemitochondrialmaaaproteaserevealsglialcontributiontoneurodegeneration