Patient-Derived Fibroblasts as a Clinically Relevant Model of Kearns-Sayre Syndrome.

Valls-Roca, Laura; Vilaseca-Capel, Adrià; Cantó-Santos, Judith; Tobías, Ester; Andújar-Sánchez, Félix; Farré-Tarrats, Laia; Tort, Frederic; Rentero, Carles et al. · Ann Neurol · 2026

cross_sectional · Level IV

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Abstract

Kearns-Sayre syndrome (KSS) is characterized by single large-scale mitochondrial DNA deletions and by severe early-onset clinical manifestations with neurological involvement. Reliable disease models, as well as validated biomarkers or effective treatments, are lacking. We aimed to determine whether patient-derived fibroblasts represent a suitable cellular model for translational research. In a cross-sectional multicenter study, fibroblasts from 12 patients with KSS, and 10 age- and sex-matched controls were analyzed to comprehensively characterize their genetic and transcriptomic profiles, mitochondrial functional signature, and secretion of soluble signaling molecules (lactate and growth differentiation factor-15). Fibroblasts derived from patients with KSS harbored single large-scale mitochondrial DNA deletions in 75% of cases and showed significant mitochondrial DNA depletion. Transcriptomic profiling identified 71 differentially expressed genes and multiple significantly enriched pathways. Despite mitochondrial respiratory chain enzymatic activities being preserved, ubiquinol-cytochrome c reductase core protein 2 complex III and MTCO1 complex IV protein expression was significantly decreased, and mitochondrial respiration was markedly impaired. Total adenosine triphosphate production rate was conserved, likely due to a metabolic shift toward glycolysis. Patient fibroblasts showed abnormal mitochondrial network organization and morphology, significant altered expression of fusion and fission proteins, a tendency to increase mitochondrial reactive oxygen species, and notably dysregulated antioxidant defenses. Mitochondrial content did not affect the functional signature. Lactate and growth differentiation factor-15 secretion were significantly increased, and demonstrated high sensitivity and specificity scores in distinguishing KSS. Patient-derived fibroblasts show a reproducible mitochondrial phenotype in KSS, supporting their use as a translational model for mechanistic studies, biomarker discovery, and therapeutic screening. ANN NEUROL 2026.