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Unmasking supervillin: SVIL haploinsufficiency causes hypertrophic cardiomyopathy by impairing mechanotransduction and cellular energetics

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Item Type:Preprint
Title:Unmasking supervillin: SVIL haploinsufficiency causes hypertrophic cardiomyopathy by impairing mechanotransduction and cellular energetics
Creators: Li, Yifan J. ORCID logoORCID: https://orcid.org/0000-0002-1349-3188, Psaras, Yiangos, Steeples, Violetta, Watkins, Josephine M., Hooper, Charlotte, Moya-Jodar, Marta, Nicol, Thomas ORCID logoORCID: https://orcid.org/0000-0002-9636-9026, Sparrow, Alexander J. ORCID logoORCID: https://orcid.org/0000-0002-3354-3314, Garcia-Lacarte, Marcos, Jones, Samuel T.M., Bond, Isabelle, Beyhoff, Niklas, Robinson, Paul, Kirchner, Marieluise ORCID logoORCID: https://orcid.org/0000-0002-7049-534X, Mertins, Philipp ORCID logoORCID: https://orcid.org/0000-0002-2245-528X, Ware, James ORCID logoORCID: https://orcid.org/0000-0002-6110-5880, Lumbers, R. Thomas ORCID logoORCID: https://orcid.org/0000-0002-9077-4741, Raman, Betty ORCID logoORCID: https://orcid.org/0000-0002-1239-9608, Watkins, Hugh C. ORCID logoORCID: https://orcid.org/0000-0002-5287-9016 and Toepfer, Christopher N. ORCID logoORCID: https://orcid.org/0000-0003-4671-2030
Abstract:BACKGROUND: Rare heterozygous loss-of-function (LoF) variants in SVIL, encoding the Z-disk and costameric protein supervillin, have recently been identified as a cause of hypertrophic cardiomyopathy (HCM). Although supervillin is implicated in actin-dependent mechanotransduction, the mechanisms linking SVIL deficiency to cardiomyopathy remain poorly understood. Homozygous LoF cause a novel skeletal Myofibrillar Myopathy-10 (MFM-10) while heterozygous LoF cause HCM without skeletal myopathy. In this study we use a human model system to disentangle the LoF pathomechanism of the scaffolding protein supervillin in cardiomyocytes and its clinical implications. METHODS: Using CRISPR/Cas-9 we engineered a representative pathogenic LoF variant Q255X into an isogenic induced pluripotent stem cell (iPSC) line creating the heterozygous SVIL(Q255X/+) and homozygous SVIL(Q255X/Q255X) cell lines. These lines were differentiated into iPSC-derived cardiomyocytes (iPSC-CMs) and cellular phenotypes were assessed using bulk RNA-sequencing, LC-MS proteomics, electrophysiological and calcium handling analyses, contractility measurements, sarcomere organization analysis, Seahorse metabolic flux assay, and pharmacological intervention with mavacamten. RESULTS: The Q255X variant resulted in SVIL haploinsufficiency at both RNA and protein levels with no evidence of a truncated protein. Compared with isogenic controls, SVIL(Q255X/+) iPSC-CMs demonstrated action potential shortening, calcium transient elongation, sarcomeric disorganization and hypertrophy, and impaired mitochondrial respiration. Multi-omic analyses of SVIL(Q255X/+) iPSC-CMs showed a profile of cellular stress and inflammation, hypertrophic and pro-fibrotic signalling, and a pseudohypoxic state driven by decreased respiration and a HIF-induced glycolytic shift. These abnormalities were not present in SVIL(Q255X/Q255X) cardiomyocytes, consistent with a relatively limited cardiac phenotype reported in homozygous variant carriers. Mavacamten improved sarcomeric disorganization and hypertrophy in SVIL(Q255X/+) cells but did not rescue energetic compromise. CONCLUSIONS: Pathogenic heterozygous SVIL LoF produces a distinct cellular phenotype characterized by impaired mechanotransduction, mitochondrial dysfunction, and maladaptive metabolic remodelling that promotes hypertrophic and pro-fibrotic signalling. These findings define a mechanistic basis for SVIL-associated cardiomyopathy and identify metabolic dysfunction as a potential therapeutic target beyond sarcomere-directed therapy.
Source:bioRxiv
Publisher:Cold Spring Harbor Laboratory Press
Article Number:2026.07.01.735949v2
Date:24 July 2026
Official Publication:https://doi.org/10.64898/2026.07.01.735949

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