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Frataxin deficiency drives cardiac dysfunction and transcriptional dysregulation in Friedreich ataxia iPSC model.

Friedreich ataxia (FRDA) is a progressive neuromuscular degenerative disorder caused by GAA repeat expansions in the FXN gene, leading to frataxin deficiency and multisystem pathology. Cardiomyopathy is the leading cause of mortality in individuals with FRDA. To investigate the cellular and molecular mechanisms underlying FRDA-associated cardiac dysfunction, we employed induced pluripotent stem cell (iPSC) lines derived from three individuals with FRDA, each paired with an isogenic control line generated through CRISPR/Cas9-mediated excision of the pathogenic GAA repeat expansion. Correction of the mutation restored FXN expression to levels comparable to healthy donor iPSCs, and all lines differentiated efficiently into cardiomyocytes. Functional analysis revealed significant contractile abnormalities in FRDA cardiomyocytes and multicellular cardiac microtissues, including prolonged contraction and relaxation times and faster beating rates, consistent with clinical observations of cardiac contractile dysfunction. FRDA cardiomyocytes also exhibited pathological features such as increased cell size, irregular calcium transients, elevated mitochondrial reactive oxygen species levels, increased mitochondrial fission and increased cell death. These phenotypes were exacerbated by pathological levels of iron supplementation in culture media, highlighting the heightened sensitivity of frataxin-deficient cardiomyocytes to iron-induced metabolic stress. RNA sequencing revealed a distinct transcriptional profile associated with frataxin deficiency. MEG3 and PCDHGA10 were consistently dysregulated across all three FRDA-iPSC lines and may represent early molecular markers of FRDA cardiomyopathy. Functional interrogation of these candidates demonstrated that targeted silencing of MEG3 or PCDHGA10 in FRDA cardiomyocytes significantly reduced disease‑associated cell death without affecting FXN expression. Notably, PCDHGA10 silencing also normalized elevated mitochondrial reactive oxygen species, whereas MEG3 silencing did not, highlighting gene‑specific contributions to FRDA cardiomyocyte survival. Collectively, these findings identify MEG3 and PCDHGA10 as functionally relevant regulators of FRDA cardiomyocyte pathology.

Friedreich Ataxia

Type and position of repeat interruptions as determinants of disease severity and expansion size in Friedreich ataxia.

PURPOSE: In Friedreich ataxia (FRDA) the size of the smaller GAA expansion is a major determinant of disease severity; interruption motifs were identified after the discovery of the pathogenic expansions; however, their impact is only recently investigated. METHODS: 164 patients with FRDA with biallelic expansions and 15 patients without FRDA were analyzed for interruption(s) number, position, and motif. Expansion size and age at onset of ataxia (AAO) were determined for patients with FRDA. RESULTS: Three groups of patients with FRDA were identified by the simultaneous analysis of the precise distance ("depth") between the interruptions (mostly nontriplet) and the 3' end of the expansion (P < .001), the smaller expansion size (P < .001), and AAO (P < .001). Classical FRDA corresponds to absence of interruption or interruption depth < 8 repeats, with AAO often <15 years (area under the curve [AUC] = 0.90; 95% CI, 0.84-0.96); LOFA to interruption depth of 8 to 18 repeats (AUC = 0.97; 95% CI, 0.94-1), with AAO 15 to 34 years (AUC = 1; 95% CI, 1-1); and vLOFA to interruption depth > 18 (AUC = 0.97; 95% CI, 0.92-1), with AAO > 34 years. Multiple (>5) triplet interruptions hamper further expansion. CONCLUSION: This study provides the molecular basis for a novel classification of FRDA that should be recommended for correct diagnosis.

Humans