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Updated: Apr 12, 2026

Author Spotlight: Decoding Mitochondrial Aging
Published on: June 30, 2023
Loss of PLA2G6 leads to elevated mitochondrial lipid peroxidation and mitochondrial dysfunction
Kerri J Kinghorn1, Jorge Iván Castillo-Quan2, Fernando Bartolome3
11 Institute of Healthy Ageing and Department of Genetics, Evolution and Environment, University College London, London WC1E 6BT, UK 2 Institute of Neurology, University College London, Queen Square, London WC1N 3BG, UK k.kinghorn@ucl.ac.uk.
Abstract:
The PLA2G6 gene encodes a group VIA calcium-independent phospholipase A2 beta enzyme that selectively hydrolyses glycerophospholipids to release free fatty acids. Mutations in PLA2G6 have been associated with disorders such as infantile neuroaxonal dystrophy, neurodegeneration with brain iron accumulation type II and Karak syndrome. More recently, PLA2G6 was identified as the causative gene in a subgroup of patients with autosomal recessive early-onset dystonia-parkinsonism. Neuropathological examination revealed widespread Lewy body pathology and the accumulation of hyperphosphorylated tau, supporting a link between PLA2G6 mutations and parkinsonian disorders. Here we show that knockout of the Drosophila homologue of the PLA2G6 gene, iPLA2-VIA, results in reduced survival, locomotor deficits and organismal hypersensitivity to oxidative stress. Furthermore, we demonstrate that loss of iPLA2-VIA function leads to a number of mitochondrial abnormalities, including mitochondrial respiratory chain dysfunction, reduced ATP synthesis and abnormal mitochondrial morphology. Moreover, we show that loss of iPLA2-VIA is strongly associated with increased lipid peroxidation levels. We confirmed our findings using cultured fibroblasts taken from two patients with mutations in the PLA2G6 gene. Similar abnormalities were seen including elevated mitochondrial lipid peroxidation and mitochondrial membrane defects, as well as raised levels of cytoplasmic and mitochondrial reactive oxygen species. Finally, we demonstrated that deuterated polyunsaturated fatty acids, which inhibit lipid peroxidation, were able to partially rescue the locomotor abnormalities seen in aged flies lacking iPLA2-VIA gene function, and restore mitochondrial membrane potential in fibroblasts from patients with PLA2G6 mutations. Taken together, our findings demonstrate that loss of normal PLA2G6 gene activity leads to lipid peroxidation, mitochondrial dysfunction and subsequent mitochondrial membrane abnormalities. Furthermore we show that the iPLA2-VIA knockout fly model provides a useful platform for the further study of PLA2G6-associated neurodegeneration.
Insights
Mutations in the PLA2G6 gene cause neurodegenerative disorders. Loss of PLA2G6 function leads to lipid peroxidation and mitochondrial dysfunction, offering a new fly model for studying these diseases.
Area of Science:
- Genetics and Molecular Biology
- Neuroscience
- Cell Biology
Background:
- PLA2G6 gene mutations are linked to neurodegenerative conditions like infantile neuroaxonal dystrophy and parkinsonism.
- PLA2G6 encodes phospholipase A2 beta, crucial for glycerophospholipid hydrolysis.
- Recent studies implicate PLA2G6 in autosomal recessive early-onset dystonia-parkinsonism with Lewy body pathology.
Purpose of the Study:
- To investigate the function of the PLA2G6 gene homologue (iPLA2-VIA) in Drosophila.
- To elucidate the molecular mechanisms underlying PLA2G6-associated neurodegeneration.
- To establish a Drosophila model for studying PLA2G6-related disorders.
Main Methods:
- Generated iPLA2-VIA knockout Drosophila.
- Assessed survival, locomotion, and oxidative stress sensitivity in knockout flies.
- Analyzed mitochondrial function, morphology, and lipid peroxidation levels.
- Utilized patient-derived fibroblasts to confirm findings.
Main Results:
- iPLA2-VIA knockout flies exhibited reduced survival, locomotor deficits, and oxidative stress hypersensitivity.
- Loss of iPLA2-VIA function caused mitochondrial dysfunction, including respiratory chain defects and reduced ATP synthesis.
- Elevated lipid peroxidation and reactive oxygen species were observed in knockout flies and patient fibroblasts.
- Deuterated polyunsaturated fatty acids partially rescued locomotor deficits and restored mitochondrial membrane potential.
Conclusions:
- PLA2G6 gene dysfunction leads to lipid peroxidation, mitochondrial dysfunction, and membrane abnormalities.
- The Drosophila iPLA2-VIA knockout model is valuable for studying PLA2G6-associated neurodegeneration.
- Targeting lipid peroxidation may offer therapeutic potential for PLA2G6-related disorders.
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