Dysregulated Ribonucleoprotein Granules Impair Mitochondrial Function in RBM20 -Related Dilated Cardiomyopathy

BACKGROUND: Pathogenic variants in RBM20 cause severe dilated cardiomyopathy. Loss-of-function variants disrupt splicing; neomorphic gain-of-function (GoF) variants also mislocalize RBM20 to cytoplasmic ribonucleoprotein granules and are associated with more aggressive disease. The mechanism by which RBM20 mislocalization drives cardiac dysfunction remains unknown. METHODS: We investigated the effects of Rbm20 GoF and loss-of-function (LoF) variants using proteomic profiling, protein solubility assays, mitochondrial respiration and calcium flux analyses, and ultrastructural imaging in mouse models. Human induced pluripotent stem cell–derived cardioids were used to validate variant-specific phenotypes. RESULTS: Rbm20 GoF, but not LoF, variants caused posttranscriptional downregulation of soluble mitochondrial proteins, including the calcium efflux regulator TMEM65 (transmembrane protein 65), and reduced solubility of mitochondrial membrane proteins. Electron microscopy revealed enlarged mitochondria with cristae disorganization. Functional assays confirmed impaired oxidative phosphorylation, reduced mitochondrial membrane potential, and abnormal calcium handling in Rbm20 GoF models. Human cardioids reproduced these findings, demonstrating that cytoplasmic mislocalization, rather than splicing deficiency, drives mitochondrial dysfunction. CONCLUSIONS: Cytoplasmic mislocalization of RBM20 disrupts mitochondrial function by reducing mitochondrial protein abundance, leading to oxidative phosphorylation failure and abnormal mitochondrial calcium handling. This mechanism distinguishes RBM20 GoF from LoF variants and may explain the more severe heart failure phenotype observed in patients with RBM20 GoF variants. These insights advance the mechanistic understanding of RBM20 -related cardiomyopathy and identify mitochondrial mRNA/protein regulation as a key node in cardiac energetics.

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Publication Details

Journal
Circulation
Published
2026-09-15
DOI
https://doi.org/10.1161/circulationaha.125.077061
Primary Topic
Cardiomyopathy and Myosin Studies
Type
article
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article

Dysregulated Ribonucleoprotein Granules Impair Mitochondrial Function in RBM20 -Related Dilated Cardiomyopathy

Lars M. Steinmetz, Michael Gotthardt, Kai Fenzl, Mandy Boermel et al.
Circulation
Cardiomyopathy and Myosin Studies
article

Dysregulated Ribonucleoprotein Granules Impair Mitochondrial Function in RBM20 -Related Dilated Cardiomyopathy

Lars M. Steinmetz, Michael Gotthardt, Kai Fenzl, Mandy Boermel, Carlos Alfonso-Gonzalez, Laura Konrad, Vita Dauksaite, Maarten M.G. van den Hoogenhof, Viola Oorschot, Julia Kornienko, Michael Kohlhaas, Christoph Maack, Dominik Lindenhofer, Laura Schraft, Linda Helena Müller, Sandra Clauder‐Münster, Per Haberkant, Alexander Nickel, Michel Fungate, Johanna Müller, Susanne Lewey, Frank D.M. Montoya, Jacob Kees
article en

Abstract

BACKGROUND: Pathogenic variants in RBM20 cause severe dilated cardiomyopathy. Loss-of-function variants disrupt splicing; neomorphic gain-of-function (GoF) variants also mislocalize RBM20 to cytoplasmic ribonucleoprotein granules and are associated with more aggressive disease. The mechanism by which RBM20 mislocalization drives cardiac dysfunction remains unknown. METHODS: We investigated the effects of Rbm20 GoF and loss-of-function (LoF) variants using proteomic profiling, protein solubility assays, mitochondrial respiration and calcium flux analyses, and ultrastructural imaging in mouse models. Human induced pluripotent stem cell–derived cardioids were used to validate variant-specific phenotypes. RESULTS: Rbm20 GoF, but not LoF, variants caused posttranscriptional downregulation of soluble mitochondrial proteins, including the calcium efflux regulator TMEM65 (transmembrane protein 65), and reduced solubility of mitochondrial membrane proteins. Electron microscopy revealed enlarged mitochondria with cristae disorganization. Functional assays confirmed impaired oxidative phosphorylation, reduced mitochondrial membrane potential, and abnormal calcium handling in Rbm20 GoF models. Human cardioids reproduced these findings, demonstrating that cytoplasmic mislocalization, rather than splicing deficiency, drives mitochondrial dysfunction. CONCLUSIONS: Cytoplasmic mislocalization of RBM20 disrupts mitochondrial function by reducing mitochondrial protein abundance, leading to oxidative phosphorylation failure and abnormal mitochondrial calcium handling. This mechanism distinguishes RBM20 GoF from LoF variants and may explain the more severe heart failure phenotype observed in patients with RBM20 GoF variants. These insights advance the mechanistic understanding of RBM20 -related cardiomyopathy and identify mitochondrial mRNA/protein regulation as a key node in cardiac energetics.

Circulation
Helmholtz Association of German Research Centres (DE), Max Delbrück Center (DE), Heidelberg University (DE), University Hospital Heidelberg (DE), Universitätsklinikum Würzburg (DE), German Centre for Cardiovascular Research (DE), Second Genome (United States) (US), European Molecular Biology Laboratory (DE), European Molecular Biology Laboratory (DE), Charité - Universitätsmedizin Berlin (DE), Stanford University (US)
Good health and well-being
Openalex Percentile: Top 11%
Cardiomyopathy and Myosin Studies
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