Critical contribution of mitochondria in the development of cardiomyopathy linked to desmin mutation

Author:

Hovhannisyan Yeranuhi,Li Zhenlin,Callon Domitille,Suspène Rodolphe,Batoumeni Vivien,Canette Alexis,Blanc Jocelyne,Hocini Hakim,Lefebvre Cécile,El-Jahrani Nora,Kitsara Maria,L’honoré Aurore,Kordeli Ekaterini,Fornes Paul,Concordet Jean-Paul,Tachdjian Gérard,Rodriguez Anne-Marie,Vartanian Jean-Pierre,Béhin Anthony,Wahbi Karim,Joanne Pierre,Agbulut OnnikORCID

Abstract

Abstract Background Beyond the observed alterations in cellular structure and mitochondria, the mechanisms linking rare genetic mutations to the development of heart failure in patients affected by desmin mutations remain unclear due in part, to the lack of relevant human cardiomyocyte models. Methods To shed light on the role of mitochondria in these mechanisms, we investigated cardiomyocytes derived from human induced pluripotent stem cells carrying the heterozygous DESE439K mutation that were either isolated from a patient or generated by gene editing. To increase physiological relevance, cardiomyocytes were either cultured on an anisotropic micropatterned surface to obtain elongated and aligned cardiomyocytes, or as a cardiac spheroid to create a micro-tissue. Moreover, when applicable, results from cardiomyocytes were confirmed with heart biopsies of suddenly died patient of the same family harboring DESE439K mutation, and post-mortem heart samples from five control healthy donors. Results The heterozygous DESE439K mutation leads to dramatic changes in the overall cytoarchitecture of cardiomyocytes, including cell size and morphology. Most importantly, mutant cardiomyocytes display altered mitochondrial architecture, mitochondrial respiratory capacity and metabolic activity reminiscent of defects observed in patient’s heart tissue. Finally, to challenge the pathological mechanism, we transferred normal mitochondria inside the mutant cardiomyocytes and demonstrated that this treatment was able to restore mitochondrial and contractile functions of cardiomyocytes. Conclusions This work highlights the deleterious effects of DESE439K mutation, demonstrates the crucial role of mitochondrial abnormalities in the pathophysiology of desmin-related cardiomyopathy, and opens up new potential therapeutic perspectives for this disease.

Funder

Agence Nationale de la Recherche

AFM-Téléthon

Association Nationale de la Recherche et de la Technologie

Publisher

Springer Science and Business Media LLC

Subject

Cell Biology,Biochemistry, Genetics and Molecular Biology (miscellaneous),Molecular Medicine,Medicine (miscellaneous)

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