Impact of diffused versus vasculature targeted DNA damage on the heart of mice depleted of telomeric factor Ft1

Author:

La Torre Mattia1,Centofante Eleonora1,Nicoletti Carmine23,Burla Romina14,Giampietro Alessandro1,Cannistrà Federica1,Schirone Leonardo5,Valenti Valentina6,Sciarretta Sebastiano57,Musarò Antonio23ORCID,Saggio Isabella13489ORCID

Affiliation:

1. Department Biology and Biotechnologies “Charles Darwin” Sapienza University Rome Italy

2. DAHFMO‐Unit of Histology and Medical Embryology Sapienza University Rome Italy

3. Istituto Pasteur Fondazione Cenci Bolognetti Rome Italy

4. CNR Institute of Molecular Biology and Pathology Rome Italy

5. IRCCS Neuromed Pozzilli IS Italy

6. Department of Cardiology Santa Maria Goretti Hospital Latina Italy

7. Department Medical and Surgical Sciences and Biotechnologies Sapienza University Rome Italy

8. School of Biological Sciences Nanyang Technological University Singapore Singapore

9. NISB Institute of Structural Biology Nanyang Technological University Singapore Singapore

Abstract

AbstractDNA damage is emerging as a driver of heart disease, although the cascade of events, its timing, and the cell types involved are yet to be fully clarified. In this context, the implication of cardiomyocytes has been highlighted, while that of vasculature smooth muscle cells has been implicated but not explored exhaustively. In our previous work we characterized a factor called Ft1 in mice and AKTIP in humans whose depletion generates telomere instability and DNA damage. Herein, we explored the effect of the reduction of Ft1 on the heart with the goal of comparatively defining the impact of DNA damage targeted to vasculature smooth muscle cells to that of diffuse damage. Using two newly generated mouse models, Ft1 constitutively knocked out (Ft1ko) mice, and mice in which we targeted the Ft1 depletion to the smooth muscle cells (Ft1sm22ko), it is shown that both genetic models display cardiac defects but with differences. Both Ft1ko and Ft1sm22ko mice display hypertrophy, fibrosis, and functional heart defects. Interestingly, Ft1sm22ko mice have early milder pathological traits that become manifest with age. Significantly, the defects of Ft1ko mice, including the alteration of the left ventricle and functional heart defects, are rescued by depletion of the DNA damage sensor p53. These results point to Ft1 deficiency as a driver of cardiac disease and show that Ft1 deficiency targeted to vasculature smooth muscle cells generates a pre‐pathological profile exacerbated by age.

Funder

Artificial Intelligence Research Center

Fondazione Roma

Ministero della Salute

Publisher

Wiley

Subject

Cell Biology,Aging

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