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PISD is a mitochondrial disease gene causing skeletal dysplasia, cataracts, and white matter changes
Tian Zhao1,2, Caitlin M Goedhart1, Pingdewinde N Sam3
1Alberta Children's Hospital Research Institute, Department of Medical Genetics, Cumming School of Medicine, University of Calgary, Calgary, Alberta, Canada.
Insights
Genetic variants in the PISD gene cause a novel mitochondrial disease. This impairs phosphatidylserine decarboxylase (PISD) enzyme activity, leading to mitochondrial dysfunction and disease phenotypes.
Area of Science:
- Biochemistry
- Genetics
- Cell Biology
Background:
- Congenital cataracts, short stature, and white matter changes suggest a genetic basis for mitochondrial dysfunction.
- The phosphatidylserine decarboxylase (PISD) enzyme is crucial for synthesizing phosphatidylethanolamine (PE) in the inner mitochondrial membrane (IMM).
Observation:
- Exome sequencing revealed compound heterozygous variants in the PISD gene in affected sisters.
- Patient fibroblasts displayed fragmented mitochondria, enlarged lysosomes, reduced oxygen consumption, and increased sensitivity to 2-deoxyglucose, indicating mitochondrial dysfunction.
- Treatment with lyso-PE or genetic complementation ameliorated these cellular defects.
Findings:
- The identified PISD variants lead to an alternative splice product and impaired protein self-processing, reducing enzyme activity.
- Decreased PISD activity impairs the conversion of phosphatidylserine to PE, disrupting IMM function.
- Impaired mitochondrial IMM protease activity may contribute to the observed phenotypes, linking PISD deficiency to mitochondrial chaperonopathies.
Implications:
- PISD is identified as a novel gene associated with mitochondrial disease.
- Understanding PISD function provides new insights into the pathogenesis of mitochondrial disorders.
- This discovery opens avenues for potential therapeutic strategies targeting PE synthesis or mitochondrial function.
Abstract:
Exome sequencing of two sisters with congenital cataracts, short stature, and white matter changes identified compound heterozygous variants in the PISD gene, encoding the phosphatidylserine decarboxylase enzyme that converts phosphatidylserine to phosphatidylethanolamine (PE) in the inner mitochondrial membrane (IMM). Decreased conversion of phosphatidylserine to PE in patient fibroblasts is consistent with impaired phosphatidylserine decarboxylase (PISD) enzyme activity. Meanwhile, as evidence for mitochondrial dysfunction, patient fibroblasts exhibited more fragmented mitochondrial networks, enlarged lysosomes, decreased maximal oxygen consumption rates, and increased sensitivity to 2-deoxyglucose. Moreover, treatment with lyso-PE, which can replenish the mitochondrial pool of PE, and genetic complementation restored mitochondrial and lysosome morphology in patient fibroblasts. Functional characterization of the PISD variants demonstrates that the maternal variant causes an alternative splice product. Meanwhile, the paternal variant impairs autocatalytic self-processing of the PISD protein required for its activity. Finally, evidence for impaired activity of mitochondrial IMM proteases suggests an explanation as to why the phenotypes of these PISD patients resemble recently described "mitochondrial chaperonopathies." Collectively, these findings demonstrate that PISD is a novel mitochondrial disease gene.
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