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Updated: Aug 7, 2026

In Vitro Model of Coronary Angiogenesis
Published on: March 10, 2020
Molecular mechanisms controlling the coupled development of myocardium and coronary vasculature
Shoumo Bhattacharya1, Simon T Macdonald, Cassandra R Farthing
1Department of Cardiovascular Medicine, University of Oxford, Wellcome Trust Centre for Human Genetics, Roosevelt Drive, Oxford OX3 7BN, UK. shoumo.bhattacharya@well.ox.ac.uk
Insights
Adult cardiac myocytes cannot regenerate after injury. This review examines mouse mutations to understand how heart muscle and blood vessel development are coordinated, offering potential for cardiac repair therapies.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Genetics
Background:
- Cardiac failure, often due to myocardial dysfunction and coronary vascular insufficiency, affects 1.5% of adults.
- Current therapies offer limited improvement as they don't restore lost cardiac myocytes.
- Adult cardiac myocytes have minimal regenerative capacity, unlike during embryogenesis.
Purpose of the Study:
- To systematically review mouse mutations affecting heart muscle development.
- To identify genetic interactions coordinating myocardial and coronary vascular development.
- To explore potential therapeutic targets for cardiac regeneration.
Main Methods:
- Systematic evaluation of approximately 90 mouse mutations impacting cardiac development.
- Analysis of genetic evidence for cell-cell interactions (myocytes, endothelium, proepicardial organ, neural crest).
- Review of conditional knockout and transgenic rescue experiments.
Main Results:
- Identified key molecules in cardiac myocytes (e.g., Vegfa, Hand1, Gata4), proepicardial organ (e.g., Rxra, Wt1), endothelium (e.g., EfnB2, Tek), and neural crest (e.g., Bmpr1a, Pax3).
- Demonstrated coordinated development of myocardium and coronary vasculature.
- Highlighted the role of signaling pathways like BMP, FGF, and VEGFA, potentially involving hypoxia.
Conclusions:
- Genetic studies reveal crucial molecular players and interactions governing heart development.
- Targeting identified pathways could potentially restore embryonic conditions for cardiac regeneration.
- This research offers a basis for developing novel therapies for heart failure by promoting myocardial and vascular repair.
Abstract:
Cardiac failure affects 1.5% of the adult population and is predominantly caused by myocardial dysfunction secondary to coronary vascular insufficiency. Current therapeutic strategies improve prognosis only modestly, as the primary cause -- loss of normally functioning cardiac myocytes -- is not being corrected. Adult cardiac myocytes are unable to divide and regenerate to any significant extent following injury. New cardiac myocytes are, however, created during embryogenesis from progenitor cells and then by cell division from existing cardiac myocytes. This process is intimately linked to the development of coronary vasculature from progenitors originating in the endothelium, the proepicardial organ and neural crest. In this review, we systematically evaluate approx. 90 mouse mutations that impair heart muscle growth during development. These studies provide genetic evidence for interactions between myocytes, endothelium and cells derived from the proepicardial organ and the neural crest that co-ordinate myocardial and coronary vascular development. Conditional knockout and transgenic rescue experiments indicate that Vegfa, Bmpr1a (ALK3), Fgfr1/2, Mapk14 (p38), Hand1, Hand2, Gata4, Zfpm2 (FOG2), Srf and Txnrd2 in cardiac myocytes, Rxra and Wt1 in the proepicardial organ, EfnB2, Tek, Mapk7, Pten, Nf1 and Casp8 in the endothelium, and Bmpr1a and Pax3 in neural crest cells are key molecules controlling myocardial development. Coupling of myocardial and coronary development is mediated by BMP (bone morphogenetic protein), FGF (fibroblast growth factor) and VEGFA (vascular endothelial growth factor A) signalling, and also probably involves hypoxia. Pharmacological targeting of these molecules and pathways could, in principle, be used to recreate the embryonic state and achieve coupled myocardial and coronary vascular regeneration in failing hearts.
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