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Published on: October 12, 2017
Therapeutic potential of HDL in cardioprotection and tissue repair
Sophie Van Linthout1, Miguel Frias, Neha Singh
1Charité-University-Medicine Berlin, Campus Virchow, Berlin-Brandenburg Center for Regenerative Therapy (BCRT), Berlin, Germany.
Insights
High-density lipoprotein (HDL) protects the heart by reducing injury and improving cardiac function. HDL interventions show promise for treating heart failure and enhancing tissue repair.
Area of Science:
- Cardiovascular Science
- Lipid Metabolism
- Regenerative Medicine
Background:
- Epidemiological studies link high-density lipoprotein (HDL) cholesterol to heart failure incidence.
- Experimental data suggest HDL plays a direct role in heart failure development, not merely an association.
Purpose of the Study:
- To investigate the cardioprotective mechanisms of HDL.
- To explore HDL's role in cardiac function, tissue repair, and wound healing.
Main Methods:
- In vitro, ex vivo, and in vivo studies using native HDL, reconstituted HDL, and human apoA-I gene transfer.
- Assessment of HDL's effects on ischemia/reperfusion injury, diabetic cardiomyopathy, and post-myocardial infarction remodeling.
- Evaluation of HDL's impact on endothelial progenitor cells and cutaneous wound healing.
Main Results:
- HDL protects the heart against ischemia/reperfusion injury, reducing infarct size.
- HDL improves cardiac function in diabetic cardiomyopathy and attenuates ventricular remodeling post-myocardial infarction.
- HDL enhances tissue repair by promoting endothelial progenitor cell function and wound healing.
Conclusions:
- HDL exerts direct cardioprotective effects through multiple mechanisms.
- HDL demonstrates significant potential in tissue repair and wound healing.
- HDL-targeted interventions are supported by strong clinical rationale and preclinical data for therapeutic development.
Abstract:
Epidemiological studies support a strong association between high-density lipoprotein (HDL) cholesterol levels and heart failure incidence. Experimental evidence from different angles supports the view that low HDL is unlikely an innocent bystander in the development of heart failure. HDL exerts direct cardioprotective effects, which are mediated via its interactions with the myocardium and more specifically with cardiomyocytes. HDL may improve cardiac function in several ways. Firstly, HDL may protect the heart against ischaemia/reperfusion injury resulting in a reduction of infarct size and thus in myocardial salvage. Secondly, HDL can improve cardiac function in the absence of ischaemic heart disease as illustrated by beneficial effects conferred by these lipoproteins in diabetic cardiomyopathy. Thirdly, HDL may improve cardiac function by reducing infarct expansion and by attenuating ventricular remodelling post-myocardial infarction. These different mechanisms are substantiated by in vitro, ex vivo, and in vivo intervention studies that applied treatment with native HDL, treatment with reconstituted HDL, or human apo A-I gene transfer. The effect of human apo A-I gene transfer on infarct expansion and ventricular remodelling post-myocardial infarction illustrates the beneficial effects of HDL on tissue repair. The role of HDL in tissue repair is further underpinned by the potent effects of these lipoproteins on endothelial progenitor cell number, function, and incorporation, which may in particular be relevant under conditions of high endothelial cell turnover. Furthermore, topical HDL therapy enhances cutaneous wound healing in different models. In conclusion, the development of HDL-targeted interventions in these strategically chosen therapeutic areas is supported by a strong clinical rationale and significant preclinical data.
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