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HDL cholesterol in cardiovascular diseases: the good, the bad, and the ugly?
Suowen Xu1, Zhiping Liu, Peiqing Liu
1Department of Pharmacology and Toxicology, School of Pharmaceutical Sciences, Sun Yat-sen University, Guangzhou, 510006, PR China.
Insights
High-density lipoprotein (HDL) from patients with coronary artery disease (CAD) and chronic kidney dysfunction (CKD) impairs endothelial function. This dysfunction explains why HDL-raising therapies have failed and why CKD accelerates atherosclerosis.
Area of Science:
- Cardiovascular Science
- Lipid Metabolism
- Renal Medicine
Background:
- Atherosclerotic cardiovascular diseases (ASCVDs) are a leading global cause of mortality.
- HDL-raising therapies, including CETP inhibitors, aim to reduce ASCVDs but have faced setbacks.
- Qualitative HDL functionality is crucial, surpassing quantitative HDL cholesterol levels.
Discussion:
- HDL from coronary artery disease (CAD) patients (HDL(CAD)) activates LOX-1, limiting anti-inflammatory and endothelial repair functions.
- HDL from chronic kidney dysfunction (CKD) patients (HDL(CKD)) activates TLR-2, promoting superoxide production and reducing nitric oxide (NO) bioavailability.
- These dysfunctions in HDL particles contribute to endothelial dysfunction and accelerated atherosclerosis.
Key Insights:
- HDL(CAD) impairs endothelial nitric oxide (NO) production via LOX-1 activation.
- HDL(CKD) promotes superoxide production and hypertension via TLR-2 activation.
- Dysfunctional HDL particles offer a mechanistic explanation for clinical trial failures of HDL-raising agents.
Outlook:
- Further investigation into HDL(CKD) and HDL(CAD) roles in foam cell formation and smooth muscle cell proliferation is needed.
- Understanding these dysfunctional HDL mechanisms is critical for developing effective cardiovascular disease treatments.
- Research should focus on plaque destabilization and other cellular processes influenced by dysfunctional HDL.
Abstract:
Atherosclerotic cardiovascular diseases are the leading cause of death in developed and developing countries. HDL-raising therapeutic modalities (such as cholesterol ester transferase protein (CETP) inhibitors) are being developed to combat these diseases. However, recent setback of two CETP inhibitors (Torcetrapib and Dalcetrapib) has highlighted the importance of measuring qualitative functionality of HDL particles, rather than focusing quantitatively on HDL cholesterol serum concentrations. It has been known that, HDL from patients with coronary artery disease (CAD) (i.e., HDL(CAD)) limits the anti-inflammatory and endothelial repair properties of normal HDL, due to the activation of lectin-like oxidized LDL receptor-1 (LOX-1), thereby causing failure in endothelial nitric oxide (NO) production. A more recent study (Immunity 2013; 38: 754-768) also demonstrates that HDL from patients with chronic kidney dysfunction (CKD) (i.e., HDL(CKD)), unlike its healthy counterpart (i.e., HDL(Healthy)), promotes superoxide production, reduces NO bioavailability and raises blood pressure via toll-like receptor-2 (TLR-2) activation. This study provides novel insights into understanding why HDL-raising agents failed to demonstrate beneficial effects on cardiovascular mortality in large clinical trials and why CKD accelerates the development of atherosclerosis in CAD patients. Further research is warranted to elucidate whether HDL(CKD) and HDL(CAD) participate in other cellular processes in atherosclerosis, such as foam cell formation, the proliferation and migration of smooth muscle cells, and most importantly, plaque destabilization.
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