Literature DB >> 33321831

Mitochondrial Dysfunction in Parkinson's Disease: Focus on Mitochondrial DNA.

Olga Buneeva1, Valerii Fedchenko1, Arthur Kopylov1, Alexei Medvedev1.   

Abstract

Mitochondria, the energy stations of the cell, are the only extranuclear organelles, containing their own (mitochondrial) DNA (mtDNA) and the protein synthesizing machinery. The location of mtDNA in close proximity to the oxidative phosphorylation system of the inner mitochondrial membrane, the main source of reactive oxygen species (ROS), is an important factor responsible for its much higher mutation rate than nuclear DNA. Being more vulnerable to damage than nuclear DNA, mtDNA accumulates mutations, crucial for the development of mitochondrial dysfunction playing a key role in the pathogenesis of various diseases. Good evidence exists that some mtDNA mutations are associated with increased risk of Parkinson's disease (PD), the movement disorder resulted from the degenerative loss of dopaminergic neurons of substantia nigra. Although their direct impact on mitochondrial function/dysfunction needs further investigation, results of various studies performed using cells isolated from PD patients or their mitochondria (cybrids) suggest their functional importance. Studies involving mtDNA mutator mice also demonstrated the importance of mtDNA deletions, which could also originate from abnormalities induced by mutations in nuclear encoded proteins needed for mtDNA replication (e.g., polymerase γ). However, proteomic studies revealed only a few mitochondrial proteins encoded by mtDNA which were downregulated in various PD models. This suggests nuclear suppression of the mitochondrial defects, which obviously involve cross-talk between nuclear and mitochondrial genomes for maintenance of mitochondrial functioning.

Entities:  

Keywords:  Parkinson’s disease; Parkinson’s disease models; mitochondrial DNA; mitochondrial dysfunction; proteins encoded by mitochondrial genes; proteomics

Year:  2020        PMID: 33321831      PMCID: PMC7763033          DOI: 10.3390/biomedicines8120591

Source DB:  PubMed          Journal:  Biomedicines        ISSN: 2227-9059


  173 in total

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Authors:  Laurie H Sanders; Jennifer McCoy; Xiaoping Hu; Pier G Mastroberardino; Bryan C Dickinson; Christopher J Chang; Charleen T Chu; Bennett Van Houten; J T Greenamyre
Journal:  Neurobiol Dis       Date:  2014-06-27       Impact factor: 5.996

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Authors:  F Cardellach; M J Martí; J Fernández-Solá; C Marín; J B Hoek; E Tolosa; A Urbano-Márquez
Journal:  Neurology       Date:  1993-11       Impact factor: 9.910

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5.  Mitochondrial complex I and II activities of lymphocytes and platelets in Parkinson's disease.

Authors:  H Yoshino; Y Nakagawa-Hattori; T Kondo; Y Mizuno
Journal:  J Neural Transm Park Dis Dement Sect       Date:  1992

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Review 10.  Mitochondrial transcription and translation: overview.

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