Inhibiting Runx1 protects heart function after myocardial infarction
Martin, T. P.; MacDonald, E. A.; Bradley, A.; Watson, H.; Saxena, P.; Rog-Zielinska, E. A.; Fisher, S.; Elbassioni, A. A. M.; Almuzaini, O.; Booth, C.; Campbell, M.; Herzyk, P.; Blyth, K.; Nixon, C.; Zentilin, L.; Berry, C.; Braun, T.; Giacca, M.; McBride, M. W.; Nicklin, S. A.; Cameron, E. R.; Loughrey, C. M.
Show abstract
Myocardial infarction is a major cause of death worldwide. Effective treatments are required that limit adverse cardiac remodelling and preserve cardiac contractility following myocardial infarction, with the aim of improving patient outcomes and preventing progression to heart failure. The perfused but hypocontractile myocardium bordering a newly created infarct is functionally distinct from the remote surviving myocardium; it is also a major determinant of adverse cardiac remodelling and whole heart contractility. Expression of the transcription factor RUNX1 is increased in the border zone at 1 day after myocardial infarction, suggesting potential for targeted therapeutic intervention. Here we demonstrate that RUNX1 drives reductions in cardiomyocyte contractility, sarcoplasmic reticulum-mediated calcium release, mitochondrial density, and the expression of genes important for oxidative phosphorylation. Antagonising RUNX1 expression via short-hairpin RNA interference preserved cardiac contractile function following myocardial infarction when delivered either via direct adenoviral delivery into the border zone or via an adeno-associated virus vector administered intravenously. Equivalent effects were obtained with a small molecule inhibitor (Ro5-3335) that reduces RUNX1 function by blocking its interaction with the essential co-factor CBF{beta}. Both tamoxifen-inducible Runx1-deficient and Cbf{beta}-deficient cardiomyocyte-specific mouse models demonstrated that antagonising RUNX1 function preserves the expression of genes important for oxidative phosphorylation following myocardial infarction. Our results confirm the translational potential of RUNX1 as a novel therapeutic target in myocardial infarction, with wider opportunities for use across a range of cardiac diseases where RUNX1 drives adverse cardiac remodelling.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Increased CPT1a expression is a critical cardioprotective response to pathological stress that suppresses gene programs for remodeling and enables rescue by gene transfer 97%
- Rapid differentiation of regulatory CD4+ T cells in the infarcted myocardium blunts in situ inflammation 96%
- RBPMS and RBPMS2 Cooperate to Safeguard Cardiac Splicing 96%
Similar papers in this journal
- A microRNA program controls the transition of cardiomyocyte hyperplasia to hypertrophy and stimulates mammalian cardiac regeneration 98%
- Mitochondrial CaMKII causes metabolic reprogramming, energetic insufficiency, and dilated cardiomyopathy 97%
- Nkx2-5 defines distinct scaffold and recruitment phases during formation of the cardiac Purkinje fiber network 97%
Similar papers in this journal
- The EMT transcription factor Snai1 maintains myocardial wall integrity by repressing intermediate filament gene expression 97%
- Crest maturation at the cardiomyocyte surface contributes to a new late postnatal development stage that controls the diastolic function of the adult heart 96%
- Contraction-induced endocardial id2b plays a dual role in regulating myocardial contractility and valve formation 96%
Similar papers in this journal
- FAM210A Regulates Mitochondrial Translation and Maintains Cardiac Mitochondrial Homeostasis 97%
- Sodium-myo-inositol cotransporter-1, SMIT1, promotes cardiac hypertrophy and fibrosis induced by pressure overload in mice 97%
- Lem2 is essential for cardiac development by maintaining nuclear integrity 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.