Literature DB >> 23884809

Accumulation of mitochondrial DNA deletions within dopaminergic neurons triggers neuroprotective mechanisms.

Celine Perier1, Andreas Bender, Elena García-Arumí, Ma Jesus Melià, Jordi Bové, Christoph Laub, Thomas Klopstock, Matthias Elstner, Ross B Mounsey, Peter Teismann, Tomas Prolla, Antoni L Andreu, Miquel Vila.   

Abstract

Acquired alterations in mitochondrial DNA are believed to play a pathogenic role in Parkinson's disease. In particular, accumulation of mitochondrial DNA deletions has been observed in substantia nigra pars compacta dopaminergic neurons from patients with Parkinson's disease and aged individuals. Also, mutations in mitochondrial DNA polymerase gamma result in multiple mitochondrial DNA deletions that can be associated with levodopa-responsive parkinsonism and severe substantia nigra pars compacta dopaminergic neurodegeneration. However, whether mitochondrial DNA deletions play a causative role in the demise of dopaminergic neurons remains unknown. Here we assessed the potential pathogenic effects of mitochondrial DNA deletions on the dopaminergic nigrostriatal system by using mutant mice possessing a proofreading-deficient form of mitochondrial DNA polymerase gamma (POLGD257A), which results in a time-dependent accumulation of mitochondrial DNA deletions in several tissues, including the brain. In these animals, we assessed the occurrence of mitochondrial DNA deletions within individual substantia nigra pars compacta dopaminergic neurons, by laser capture microdissection and quantitative real-time polymerase chain reaction, and determined the potential deleterious effects of such mitochondrial DNA alterations on mitochondrial function and dopaminergic neuronal integrity, by cytochrome c oxidase histochemistry and quantitative morphology. Nigral dopaminergic neurons from POLGD257A mice accumulate mitochondrial DNA deletions to a similar extent (∼40-60%) as patients with Parkinson's disease and aged individuals. Despite such high levels of mitochondrial DNA deletions, the majority of substantia nigra pars compacta dopaminergic neurons from these animals did not exhibit mitochondrial dysfunction or degeneration. Only a few individual substantia nigra pars compacta neurons appeared as cytochrome c oxidase-negative, which exhibited higher levels of mitochondrial DNA deletions than cytochrome c oxidase-positive cells (60.38±3.92% versus 45.18±2.83%). Survival of dopaminergic neurons in POLGD257A mice was associated with increased mitochondrial DNA copy number, enhanced mitochondrial cristae network, improved mitochondrial respiration, decreased exacerbation of mitochondria-derived reactive oxygen species, greater striatal dopamine levels and resistance to parkinsonian mitochondrial neurotoxins. These results indicate that primary accumulation of mitochondrial DNA deletions within substantia nigra pars compacta dopaminergic neurons, at an extent similar to that observed in patients with Parkinson's disease, do not kill dopaminergic neurons but trigger neuroprotective compensatory mechanisms at a mitochondrial level that may account for the high pathogenic threshold of mitochondrial DNA deletions in these cells.

Entities:  

Keywords:  Parkinson disease; mitochondria; mtDNA deletions; neurodegeneration

Mesh:

Substances:

Year:  2013        PMID: 23884809     DOI: 10.1093/brain/awt196

Source DB:  PubMed          Journal:  Brain        ISSN: 0006-8950            Impact factor:   13.501


  26 in total

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2.  Lack of Parkin Anticipates the Phenotype and Affects Mitochondrial Morphology and mtDNA Levels in a Mouse Model of Parkinson's Disease.

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5.  One complex world of mitochondrial parkinsonism.

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6.  Critical Role of Oxidatively Damaged DNA in Selective Noradrenergic Vulnerability.

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Authors:  Atossa Shaltouki; Renuka Sivapatham; Ying Pei; Akos A Gerencser; Olga Momčilović; Mahendra S Rao; Xianmin Zeng
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8.  The Polg Mutator Phenotype Does Not Cause Dopaminergic Neurodegeneration in DJ-1-Deficient Mice.

Authors:  David N Hauser; Christopher T Primiani; Rebekah G Langston; Ravindran Kumaran; Mark R Cookson
Journal:  eNeuro       Date:  2015-03-23

Review 9.  Unravelling mitochondrial pathways to Parkinson's disease.

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10.  Serum FGF-21, GDF-15, and blood mtDNA copy number are not biomarkers of Parkinson disease.

Authors:  Ryan L Davis; Siew L Wong; Phillippa J Carling; Thomas Payne; Carolyn M Sue; Oliver Bandmann
Journal:  Neurol Clin Pract       Date:  2020-02
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