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  High-throughput screening identifies suppressors of mitochondrial fragmentation in OPA1 fibroblasts

Cretin, E., Lopes, P., Vimont, E., Tatsuta, T., Langer, T., Gazi, A., et al. (2021). High-throughput screening identifies suppressors of mitochondrial fragmentation in OPA1 fibroblasts. EMBO Mol Med, 13(6), e13579. doi:10.15252/emmm.202013579.

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Cretin, E., Author
Lopes, P., Author
Vimont, E., Author
Tatsuta, T.1, Author           
Langer, T.1, Author           
Gazi, A., Author
Sachse, M., Author
Yu-Wai-Man, P., Author
Reynier, P., Author
Wai, T., Author
Affiliations:
1Department Langer - Mitochondrial Proteostasis, Max Planck Institute for Biology of Ageing, Max Planck Society, ou_3393994              

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Free keywords: DNA, Mitochondrial/genetics Fibroblasts GTP Phosphohydrolases/genetics *High-Throughput Screening Assays Humans *Optic Atrophy, Autosomal Dominant *opa1 *genetic modifiers *high-throughput screening *mitochondrial dynamics *phospholipid metabolism
 Abstract: Mutations in OPA1 cause autosomal dominant optic atrophy (DOA) as well as DOA+, a phenotype characterized by more severe neurological deficits. OPA1 deficiency causes mitochondrial fragmentation and also disrupts cristae, respiration, mitochondrial DNA (mtDNA) maintenance, and cell viability. It has not yet been established whether phenotypic severity can be modulated by genetic modifiers of OPA1. We screened the entire known mitochondrial proteome (1,531 genes) to identify genes that control mitochondrial morphology using a first-in-kind imaging pipeline. We identified 145 known and novel candidate genes whose depletion promoted elongation or fragmentation of the mitochondrial network in control fibroblasts and 91 in DOA+ patient fibroblasts that prevented mitochondrial fragmentation, including phosphatidyl glycerophosphate synthase (PGS1). PGS1 depletion reduces CL content in mitochondria and rebalances mitochondrial dynamics in OPA1-deficient fibroblasts by inhibiting mitochondrial fission, which improves defective respiration, but does not rescue mtDNA depletion, cristae dysmorphology, or apoptotic sensitivity. Our data reveal that the multifaceted roles of OPA1 in mitochondria can be functionally uncoupled by modulating mitochondrial lipid metabolism, providing novel insights into the cellular relevance of mitochondrial fragmentation.

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 Dates: 2021-06-072021-05-20
 Publication Status: Issued
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 Identifiers: Other: 34014035
DOI: 10.15252/emmm.202013579
ISSN: 1757-4684 (Electronic)1757-4676 (Linking)
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Title: EMBO Mol Med
Source Genre: Journal
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Pages: - Volume / Issue: 13 (6) Sequence Number: - Start / End Page: e13579 Identifier: -