Desmosomal protein degradation as an underlying cause of arrhythmogenic cardiomyopathy

Publication date

2023-03-22

Authors

Tsui, Hoyee
van Kampen, Sebastiaan Johannes
Han, Su Ji
Meraviglia, Viviana
van Ham, Willem B
Casini, Simona
van der Kraak, Petra
Vink, A.ORCID 0000-0002-9371-8788ISNI 0000000390107997
Yin, Xiaoke
Mayr, Manuel

Editors

Advisors

Supervisors

Document Type

Article

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License

taverne

Abstract

Arrhythmogenic cardiomyopathy (ACM) is an inherited progressive cardiac disease. Many patients with ACM harbor mutations in desmosomal genes, predominantly in plakophilin-2 ( PKP2). Although the genetic basis of ACM is well characterized, the underlying disease-driving mechanisms remain unresolved. Explanted hearts from patients with ACM had less PKP2 compared with healthy hearts, which correlated with reduced expression of desmosomal and adherens junction (AJ) proteins. These proteins were also disorganized in areas of fibrotic remodeling. In vitro data from human-induced pluripotent stem cell-derived cardiomyocytes and microtissues carrying the heterozygous PKP2 c.2013delC pathogenic mutation also displayed impaired contractility. Knockin mice carrying the equivalent heterozygous Pkp2 c.1755delA mutation recapitulated changes in desmosomal and AJ proteins and displayed cardiac dysfunction and fibrosis with age. Global proteomics analysis of 4-month-old heterozygous Pkp2 c.1755delA hearts indicated involvement of the ubiquitin-proteasome system (UPS) in ACM pathogenesis. Inhibition of the UPS in mutant mice increased area composita proteins and improved calcium dynamics in isolated cardiomyocytes. Additional proteomics analyses identified lysine ubiquitination sites on the desmosomal proteins, which were more ubiquitinated in mutant mice. In summary, we show that a plakophilin-2 mutation can lead to decreased desmosomal and AJ protein expression through a UPS-dependent mechanism, which preceded cardiac remodeling. These findings suggest that targeting protein degradation and improving desmosomal protein stability may be a potential therapeutic strategy for the treatment of ACM.

Keywords

Animals, Cardiomyopathies/genetics, Humans, Infant, Mice, Mutation/genetics, Myocytes, Cardiac/metabolism, Plakophilins/genetics, Proteolysis, Taverne, General Medicine, Research Support, Non-U.S. Gov't, Journal Article

Citation

Tsui, H, van Kampen, S J, Han, S J, Meraviglia, V, van Ham, W B, Casini, S, van der Kraak, P, Vink, A, Yin, X, Mayr, M, Bossu, A, Marchal, G A, Monshouwer-Kloots, J, Eding, J, Versteeg, D, de Ruiter, H, Bezstarosti, K, Groeneweg, J, Klaasen, S J, van Laake, L W, Demmers, J A A, Kops, G J P L, Mummery, C L, van Veen, T A B, Remme, C A, Bellin, M & van Rooij, E 2023, 'Desmosomal protein degradation as an underlying cause of arrhythmogenic cardiomyopathy', Science translational medicine, vol. 15, no. 688, eadd4248. https://doi.org/10.1126/scitranslmed.add4248