Ribonucleicacid interference or small molecule inhibition of Runx1 in the border zone prevents cardiac contractile dysfunction following myocardial infarction

Author:

Martin Tamara P1,MacDonald Eilidh A1ORCID,Bradley Ashley1,Watson Holly1,Saxena Priyanka1,Rog-Zielinska Eva A2,Raheem Anmar1,Fisher Simon1,Elbassioni Ali Ali Mohamed13,Almuzaini Ohood1,Booth Catriona1,Campbell Morna1,Riddell Alexandra1,Herzyk Pawel45,Blyth Karen67,Nixon Colin7,Zentilin Lorena8ORCID,Berry Colin1ORCID,Braun Thomas9,Giacca Mauro810ORCID,McBride Martin W1,Nicklin Stuart A1,Cameron Ewan R11,Loughrey Christopher M1ORCID

Affiliation:

1. British Heart Foundation Glasgow Cardiovascular Research Centre, School of Cardiovascular and Metabolic Health, University of Glasgow , University Place, Glasgow G12 8TA , UK

2. Faculty of Medicine, Institute for Experimental Cardiovascular Medicine, University Heart Centre Freiburg/Bad Krozingen , 79110 Freiburg , Germany

3. Department of Cardiothoracic Surgery, Suez Canal University , 41522 Ismailia , Egypt

4. School of Molecular Biosciences, University of Glasgow , Glasgow G12 8QQ , UK

5. College of Medical, Veterinary and Life Sciences, Glasgow Polyomics, University of Glasgow , Garscube Campus, Glasgow G61 1BD , UK

6. School of Cancer Sciences, University of Glasgow , Glasgow G12 0YN , UK

7. Cancer Research UK Beatson Institute , Garscube Estate, Glasgow G12 0YN , UK

8. Molecular Medicine Laboratory, International Centre for Genetic Engineering and Biotechnology , 34149 Trieste , Italy

9. Department of Cardiac Development and Remodelling, Max Planck Institute for Heart and Lung Research , 61231 Bad Nauheim , Germany

10. School of Cardiovascular Medicine and Sciences, King’s College London British Heart Foundation Centre , London WC2R 2LS , UK

11. School of Biodiversity, One Health and Veterinary Medicine, University of Glasgow , Glasgow G12 0YN , UK

Abstract

Abstract Aims Myocardial infarction (MI) is a major cause of death worldwide. Effective treatments are required to improve recovery of cardiac function following MI, with the aim of improving patient outcomes and preventing progression to heart failure. The perfused but hypocontractile region bordering an infarct is functionally distinct from the remote surviving myocardium and is a determinant of adverse remodelling and cardiac contractility. Expression of the transcription factor RUNX1 is increased in the border zone 1-day after MI, suggesting potential for targeted therapeutic intervention. Objective This study sought to investigate whether an increase in RUNX1 in the border zone can be therapeutically targeted to preserve contractility following MI. Methods and results In this work we demonstrate that Runx1 drives reductions in cardiomyocyte contractility, calcium handling, mitochondrial density, and expression of genes important for oxidative phosphorylation. Both tamoxifen-inducible Runx1-deficient and essential co-factor common β subunit (Cbfβ)-deficient cardiomyocyte-specific mouse models demonstrated that antagonizing RUNX1 function preserves the expression of genes important for oxidative phosphorylation following MI. Antagonizing RUNX1 expression via short-hairpin RNA interference preserved contractile function following MI. Equivalent effects were obtained with a small molecule inhibitor (Ro5-3335) that reduces RUNX1 function by blocking its interaction with CBFβ. Conclusions Our results confirm the translational potential of RUNX1 as a novel therapeutic target in MI, with wider opportunities for use across a range of cardiac diseases where RUNX1 drives adverse cardiac remodelling.

Funder

British Heart Foundation

British Heart Foundation Centre of Excellence

Wellcome Trust

Newton-Mosharafa Fund

Beatson Institute

Karen Blyth

German Research Foundation Emmy Noether Fellow

German Research Foundation Collaborative Research Centre

Publisher

Oxford University Press (OUP)

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine,Physiology

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