Open access · OA
via OpenAlex
Mitochondrial DNA Double-Strand Breaks in Oligodendrocytes Cause Demyelination, Axonal Injury, and CNS Inflammation
Pernille M. Madsen, Milena Pinto, Shreyans Patel, Stephanie M. McCarthy, Han Gao, Mehran Taherian, Shaffiat Karmally, Cláudia V. Pereira, Galina Dvoriantchikova, Dmitry Ivanov, Kenji F. Tanaka, Carlos T. Moraes, Roberta Brambilla
Journal of Neuroscience · 2017 · ▲ 54 citations
Abstract
Mitochondrial dysfunction(definition) has been implicated in the pathophysiology of neurodegenerative disorders, including multiple sclerosis (MS). To date, the investigation of mitochondrial dysfunction in MS has focused exclusively on neurons, with no studies exploring whether dysregulation of mitochondrial bioenergetics and/or genetics in oligodendrocytes might be associated with the etiopathogenesis of MS and other demyelinating syndromes. To address this question, we established a mouse model where mitochondrial DNA (mtDNA) double-strand breaks (DSBs) were specifically induced in myelinating oligodendrocytes (PLP:mtPstI mice) by expressing a mitochondrial-targeted endonuclease, mtPstI, starting at 3 weeks of age. In both female and male mice, DSBs of oligodendroglial mtDNA caused impairment of locomotor function, chronic demyelination, glial activation, and axonal degeneration, which became more severe with time of induction. In addition, after short transient induction of mtDNA DSBs, PLP:mtPstI mice showed an exacerbated response to experimental autoimmune encephalomyelitis. Together, our data demonstrate that mtDNA damage can cause primary oligodendropathy, which in turn triggers demyelination, proving PLP:mtPstI mice to be a useful tool to study the pathological consequences of mitochondrial dysfunction in oligodendrocytes. In addition, the demyelination and axonal loss displayed by PLP:mtPstI mice recapitulate some of the key features of chronic demyelinating syndromes, including progressive MS forms, which are not accurately reproduced in the models currently available. For this reason, the PLP:mtPstI mouse represents a unique and much needed platform for testing remyelinating therapies. SIGNIFICANCE STATEMENT In this study, we show that oligodendrocyte-specific mitochondrial DNA double-strand breaks in PLP:mtPstI mice cause oligodendrocyte death and demyelination associated with axonal damage and glial activation. Hence, PLP:mtPstI mice represent a unique tool to study the pathological consequences of mitochondrial dysfunction in oligodendrocytes, as well as an ideal platform to test remyelinating and neuroprotective agents.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1523/jneurosci.1378-17.2017
- Canonical
- link ↗
- Fetched
- 2026-06-07 MST
Cite this
APA
Madsen, P.M., Pinto, M., Patel, S., McCarthy, S.M., Gao, H., Taherian, M., Karmally, S., Pereira, C.V., Dvoriantchikova, G., Ivanov, D., Tanaka, K.F., Moraes, C.T., & Brambilla, R. (2017). Mitochondrial DNA Double-Strand Breaks in Oligodendrocytes Cause Demyelination, Axonal Injury, and CNS Inflammation. <em>Journal of Neuroscience</em>. https://doi.org/10.1523/jneurosci.1378-17.2017
Vancouver
Madsen PM, Pinto M, Patel S, McCarthy SM, Gao H, Taherian M, et al. Mitochondrial DNA Double-Strand Breaks in Oligodendrocytes Cause Demyelination, Axonal Injury, and CNS Inflammation. Journal of Neuroscience. 2017. doi:10.1523/jneurosci.1378-17.2017.
BibTeX
@article{pernille2017Mitoch,
title = {Mitochondrial DNA Double-Strand Breaks in Oligodendrocytes Cause Demyelination, Axonal Injury, and CNS Inflammation},
author = {Pernille M. Madsen and Milena Pinto and Shreyans Patel and Stephanie M. McCarthy and Han Gao and Mehran Taherian and Shaffiat Karmally and Cláudia V. Pereira and Galina Dvoriantchikova and Dmitry Ivanov and Kenji F. Tanaka and Carlos T. Moraes and Roberta Brambilla},
journal = {Journal of Neuroscience},
year = {2017},
doi = {10.1523/jneurosci.1378-17.2017},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Aging and Disease 2017
Open access · CC-BY
Metformin Impairs Spatial Memory and Visual Acuity in Old Male Mice
Aging Cell 2020
Open access · CC-BY
Sulforaphane prevents age‐associated cardiac and muscular dysfunction through Nrf2 signaling
Skeletal Muscle 2016
Open access · CC-BY
Voluntary resistance wheel exercise from mid-life prevents sarcopenia and increases markers of mitochondrial function and autophagy in muscles of old male and female C57BL/6J mice
Aging Pathobiology and Therapeutics 2021
Open access · CC-BY
The antidiabetic drug acarbose suppresses age-related lesions in C57BL/6 mice in an organ dependent manner
Aging Cell 2021
Open access · CC-BY
Alterations in mitochondrial dynamics with age‐related Sirtuin1/Sirtuin3 deficiency impair cardiomyocyte contractility
Nature Communications 2019
Open access · CC-BY