Defective mitochondrial fusion, altered respiratory function, and distorted cristae structure in skin fibroblasts with heterozygous OPA1 mutations

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Abstract

Deleterious consequences of heterozygous OPA1 mutations responsible for autosomal dominant optic atrophy remain a matter of debate. Primary skin fibroblasts derived from patients have shown diverse mitochondrial alterations that were however difficult to resolve in a unifying scheme. To address the potential use of these cells as disease model, we undertook parallel and quantitative analyses of the diverse reported alterations in four fibroblast lines harboring different OPA1 mutations, nonsense or missense, in the guanosine triphosphatase or the C-terminal coiled-coil domains. We tackled several factors potentially underlying discordant reports and showed that fibroblasts with heterozygous OPA1 mutations present with several mitochondrial alterations. These included defective mitochondrial fusion during pharmacological challenge with the protonophore carbonyl cyanide m‐chlorophenyl hydrazone, significant mitochondrial elongation with decreased OPA1 and DRP1 proteins, and abnormal mitochondrial fragmentation during glycolysis shortage or exogenous oxidative stress. Respiratory complex IV activity and subunits steady-state were decreased without alteration of the mitochondrial deoxyribonucleic acid size, amount or transcription. Physical link between OPA1 protein and oxidative phosphorylation was shown by reciprocal immunoprecipitation. Altered cristae structure coexisted with normal response to pro-apoptotic stimuli and expression of Bax or Bcl2 proteins. Skin fibroblasts with heterozygous OPA1 mutations thus share significant mitochondrial remodeling, and may therefore be useful for analyzing disease pathophysiology. Identifying whether the observed alterations are also present in ganglion retinal cells, and which of them underlies their degeneration process remains however an essential goal for therapeutic strategy.

Highlights

► Heterozygous OPA1 mutations are associated with defective mitochondrial fusion. ► Mitochondrial morphology may be elongated despite defective mitochondrial fusion. ► Mutant OPA1 cells have altered mitochondrial dynamic response to nutritional stress. ► Mitochondrial activities are significantly altered in mutant OPA1 cells. ► Physical link between OPA1 and OXPHOS proteins is widespread.

Abbreviations

ADOA
autosomal dominant optic atrophy
AR
aspect ratio
cccp
carbonyl cyanide m-chlorophenyl hydrazone
Δψ
mitochondrial inner membrane potential
mtDNA
mitochondrial DNA
OXPHOS
oxidative phosphorylation
SOD1
Cu,Zn-superoxide dismutase
SOD2
Mn-superoxide dismutase
t-BH
tert-butyl hydroperoxide
VO2
oxygen consumption rate
TMRM
tetramethylrhodamine methyl ester

Keywords

Mitochondrial compartment
Mitochondrial fusion
Oxidative phosphorylation
Energy metabolism
Mitochondrial disease

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