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Updated: Mar 21, 2026

Author Spotlight: Establishing a New Fluorescence-Based Protocol for In Vivo Mitochondrial Morphology Analysis in Parkinson's Disease
Published on: June 23, 2023
Mitochondrial DNA variants as genetic risk factors for Parkinson disease
C W Liou1,2, J H Chuang3, J B Chen4
1Department of Neurology, Kaohsiung Chang Gung Memorial Hospital and Chang Gung University College of Medicine, Kaohsiung, Taiwan. cwliou@ms22.hinet.net.
Background And Purpose:
Investigation of the relationship between mitochondrial DNA (mtDNA) variants and Parkinson disease (PD) remains an issue awaiting more supportive evidence. Moreover, an affirming cellular model study is also lacking.
Methods:
The index mtDNA variants and their defining mitochondrial haplogroup were determined in 725 PD patients and 744 non-PD controls. Full-length mtDNA sequences were also conducted in 110 cases harboring various haplogroups. Cybrid cellular models, composed by fusion of mitochondria-depleted rho-zero cells and donor mitochondria, were used for a rotenone-induced PD simulation study.
Results:
Multivariate logistic regression analysis revealed that subjects harboring the mitochondrial haplogroup B5 have resistance against PD (odds ratio 0.50, 95% confidence interval 0.32-0.78; P = 0.002). Furthermore, a composite mtDNA variant group consisting of A10398G and G8584A at the coding region was found to have resistance against PD (odds ratio 0.50, 95% confidence interval 0.33-0.78; P = 0.001). In cellular studies, B4 and B5 cybrids were selected according to their higher resistance to rotenone, in comparison with cybrids harboring other haplogroups. The B5 cybrid, containing G8584A/A10398G variants, showed more resistance to rotenone than the B4 cybrid not harboring these variants. This is supported by findings of low reactive oxygen species generation and a low apoptosis rate in the B5 cybrid, whereas a higher expression of autophagy was observed in the B4 cybrid particularly under medium dosage and longer treatment time with rotenone.
Conclusions:
Our studies, offering positive results from clinical investigations and cybrid experiments, provide data supporting the role of variant mtDNA in the risk of PD.
Insights
Mitochondrial DNA (mtDNA) variants, specifically haplogroup B5 and composite variants A10398G/G8584A, show resistance to Parkinson disease (PD). Cellular models confirm these findings, supporting mtDNA's role in PD risk.
Area of Science:
- Genetics
- Neuroscience
- Cell Biology
Background:
- Mitochondrial DNA (mtDNA) variants' link to Parkinson disease (PD) lacks robust evidence.
- A cellular model for studying mtDNA and PD is needed.
Purpose of the Study:
- To investigate the association between specific mtDNA variants and haplogroups with Parkinson disease risk.
- To validate findings using a cellular model simulating PD.
Main Methods:
- Determined mtDNA variants and haplogroups in 725 PD patients and 744 controls.
- Sequenced full-length mtDNA in 110 cases.
- Created cybrid cellular models for rotenone-induced PD simulation.
Main Results:
- Mitochondrial haplogroup B5 and composite variants (A10398G, G8584A) demonstrated resistance to PD.
- Cybrid cells with B5 variants showed increased resistance to rotenone, with lower reactive oxygen species and apoptosis.
- B4 cybrids exhibited higher autophagy expression under rotenone exposure.
Conclusions:
- Clinical and cellular data support the role of variant mtDNA in modulating Parkinson disease risk.
- Specific mtDNA haplogroups and variants offer protective effects against PD.
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