Pim1 maintains telomere length in mouse cardiomyocytes by inhibiting TGFβ signalling

Author:

Ebeid David E1ORCID,Khalafalla Farid G1ORCID,Broughton Kathleen M1,Monsanto Megan M1,Esquer Carolina Y1ORCID,Sacchi Veronica1ORCID,Hariharan Nirmala1ORCID,Korski Kelli I1,Moshref Maryam1ORCID,Emathinger Jacqueline1ORCID,Cottage Christopher T1ORCID,Quijada Pearl J1ORCID,Nguyen Jonathan H1,Alvarez Roberto1,Völkers Mirko1,Konstandin Mathias H1,Wang Bingyan J1ORCID,Firouzi Fareheh1,Navarrete Julian M1ORCID,Gude Natalie A1,Goumans Marie-Jose1ORCID,Sussman Mark A1ORCID

Affiliation:

1. Department of Biology, San Diego State University, North Life Sciences, 426, 5500 Campanile Drive, San Diego, CA 92182, USA

Abstract

Abstract Aims Telomere attrition in cardiomyocytes is associated with decreased contractility, cellular senescence, and up-regulation of proapoptotic transcription factors. Pim1 is a cardioprotective kinase that antagonizes the aging phenotype of cardiomyocytes and delays cellular senescence by maintaining telomere length, but the mechanism remains unknown. Another pathway responsible for regulating telomere length is the transforming growth factor beta (TGFβ) signalling pathway where inhibiting TGFβ signalling maintains telomere length. The relationship between Pim1 and TGFβ has not been explored. This study delineates the mechanism of telomere length regulation by the interplay between Pim1 and components of TGFβ signalling pathways in proliferating A549 cells and post-mitotic cardiomyocytes. Methods and results Telomere length was maintained by lentiviral-mediated overexpression of PIM1 and inhibition of TGFβ signalling in A549 cells. Telomere length maintenance was further demonstrated in isolated cardiomyocytes from mice with cardiac-specific overexpression of PIM1 and by pharmacological inhibition of TGFβ signalling. Mechanistically, Pim1 inhibited phosphorylation of Smad2, preventing its translocation into the nucleus and repressing expression of TGFβ pathway genes. Conclusion Pim1 maintains telomere lengths in cardiomyocytes by inhibiting phosphorylation of the TGFβ pathway downstream effectors Smad2 and Smad3, which prevents repression of telomerase reverse transcriptase. Findings from this study demonstrate a novel mechanism of telomere length maintenance and provide a potential target for preserving cardiac function.

Funder

National Institutes of Health

American Heart Association Scientist Development

Foundation Leducq Transatlantic Network Consortium

Publisher

Oxford University Press (OUP)

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine,Physiology

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