Telomerase is essential for cardiac differentiation and sustained metabolism of human cardiomyocytes

Author:

Chatterjee Shambhabi,Leach-Mehrwald Megan,Huang Cheng-Kai,Xiao Ke,Fuchs Maximilian,Otto Mandy,Lu Dongchao,Dang Vinh,Winkler Thomas,Dunbar Cynthia E.,Thum Thomas,Bär ChristianORCID

Abstract

AbstractTelomeres as the protective ends of linear chromosomes, are synthesized by the enzyme telomerase (TERT). Critically short telomeres essentially contribute to aging-related diseases and are associated with a broad spectrum of disorders known as telomeropathies. In cardiomyocytes, telomere length is strongly correlated with cardiomyopathies but it remains ambiguous whether short telomeres are the cause or the result of the disease. In this study, we employed an inducible CRISPRi human induced pluripotent stem cell (hiPSC) line to silence TERT expression enabling the generation of hiPSCs and hiPSC-derived cardiomyocytes with long and short telomeres. Reduced telomerase activity and shorter telomere lengths of hiPSCs induced global transcriptomic changes associated with cardiac developmental pathways. Consequently, the differentiation potential towards cardiomyocytes was strongly impaired and single cell RNA sequencing revealed a shift towards a more smooth muscle cell like identity in the cells with the shortest telomeres. Poor cardiomyocyte function and increased sensitivity to stress directly correlated with the extent of telomere shortening. Collectively our data demonstrates a TERT dependent cardiomyogenic differentiation defect, highlighting the CRISPRi TERT hiPSCs model as a powerful platform to study the mechanisms and consequences of short telomeres in the heart and also in the context of telomeropathies.

Funder

Deutsche Forschungsgemeinschaft

European Research Council

NHLBI Division of Intramural Research

Medizinische Hochschule Hannover

Förderkreis Dresdener Herz-Kreislauf-Tage

Medizinische Hochschule Hannover (MHH)

Publisher

Springer Science and Business Media LLC

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