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December 28, 2007Proceedings of the National Academy of Sciences126 citationsOpen Access

Transgenic system for conditional induction and rescue of chronic myocardial hibernation provides insights into genomic programs of hibernation

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DMDalit MayDGDan GilonVDValentin Djonov

Key Result

A transgenic mouse model using conditional VEGF blockade successfully induced reversible chronic myocardial hibernation, revealing autophagy as a key prosurvival mechanism.

Structured PICO

P
Population
Transgenic mouse system
I
Intervention
Myocardium-specific induction (and deinduction) of a VEGF-sequestering soluble receptor
O
Outcome
Induction of long-term hibernation and rescue of hibernating cardiomyocytessurrogate

A novel transgenic mouse model allows for the conditional induction and rescue of chronic myocardial hibernation, revealing that VEGF is crucial for coronary vasculature adjustment and that autophagy is a key prosurvival mechanism.

Abstract

A key energy-saving adaptation to chronic hypoxia that enables cardiomyocytes to withstand severe ischemic insults is hibernation, i.e., a reversible arrest of contractile function. Whereas hibernating cardiomyocytes represent the critical reserve of dysfunctional cells that can be potentially rescued, a lack of a suitable animal model has hampered insights on this medically important condition. We developed a transgenic mouse system for conditional induction of long-term hibernation and a system to rescue hibernating cardiomyocytes at will. Via myocardium-specific induction (and, in turn, deinduction) of a VEGF-sequestering soluble receptor, we show that VEGF is indispensable for adjusting the coronary vasculature to match increased oxygen consumption and exploit this finding to generate a hypoperfused heart. Importantly, ensuing ischemia is tunable to a level at which large cohorts of cardiomyocytes are driven to enter a hibernation mode, without cardiac cell death. Relieving the VEGF blockade even months later resulted in rapid revascularization and full recovery of contractile function. Furthermore, we show that left ventricular remodeling associated with hibernation is also fully reversible. The unique opportunity to uncouple hibernation from other ischemic heart phenotypes (e.g., infarction) was used to determine the genetic program of hibernation; uncovering hypoxia-inducible factor target genes associated with metabolic adjustments and induced expression of several cardioprotective genes. Autophagy, specifically self-digestion of mitochondria, was identified as a key prosurvival mechanism in hibernating cardiomyocytes. This system may lend itself for examining the potential utility of treatments to rescue dysfunctional cardiomyocytes and reverse maladaptive remodeling.

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Cite This Study

May et al. (2007) studied Chronic myocardial hibernation. Conditional induction and deinduction of a VEGF-sequestering soluble receptor was evaluated on Reversibility of contractile function and left ventricular remodeling, and genetic program of hibernation. A transgenic mouse model using conditional VEGF blockade successfully induced reversible chronic myocardial hibernation, revealing autophagy as a key prosurvival mechanism.

synapsesocial.com/papers/6a07b4fa15d371b38838690bhttps://doi.org/10.1073/pnas.0707778105
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Hibernating Myocardium1997 · 365 citations
  2. 2Program of Cell Survival Underlying Human and Experimental Hibernating Myocardium2004 · 130 citations
  3. 3Role of B-type natriuretic peptide (BNP) and NT-proBNP in clinical routine2005 · 623 citations
  4. 4Time course of functional recovery after coronary artery bypass graft surgery in patients with chronic left ventricular ischemic dysfunction2000 · 154 citations
  5. 5Ultrastructural and morphometric study of the human heart muscle cell in acute coronary insufficiency1979 · 15 citations