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Beyond High-density Lipoprotein-cholesterol: Unraveling the Complexity of High-density Lipoprotein Functionality
Yasuhiro Endo1, Kei Sasaki2, Katsunori Ikewaki3
1Division of laboratory Medicine, Faculty of Medicine, Tohoku medical and Pharmaceutical University.
Insights
High-density lipoprotein (HDL) quantity, measured by HDL-cholesterol (HDL-C), may not fully capture HDL
Area of Science:
- Cardiovascular Biology
- Lipid Metabolism
- Molecular Medicine
Background:
- High-density lipoprotein (HDL) cholesterol (HDL-C) is traditionally linked to cardiovascular disease (CVD) risk.
- Recent evidence questions the sole reliance on HDL-C, emphasizing HDL functionality.
- HDL possesses diverse functions beyond cholesterol transport, including vasoprotective, anti-inflammatory, and antithrombotic roles.
Purpose of the Study:
- To explore the multifaceted functions of HDL beyond its cholesterol content.
- To highlight the limitations of current clinical assessments of HDL.
- To underscore the need for a comprehensive understanding of HDL's pleiotropic effects.
Main Methods:
- Review of recent scientific literature on HDL function.
- Analysis of key molecular pathways involved in HDL's actions, including reverse cholesterol transport (RCT).
- Examination of novel regulatory factors influencing HDL activity.
Main Results:
- HDL quantity (HDL-C) does not always correlate with HDL's functional capacity, such as RCT efficiency.
- HDL exerts vasoprotective, anti-inflammatory, and antithrombotic effects through various mechanisms.
- Emerging roles for HDL in the central nervous system suggest broader therapeutic potential.
Conclusions:
- A comprehensive understanding of HDL's diverse functions is crucial for both basic research and clinical practice.
- Current clinical assessments focusing primarily on HDL-C are insufficient.
- Further research into HDL's pleiotropic roles may unlock new therapeutic strategies for CVD and other conditions.
Abstract:
High-density lipoprotein (HDL) levels have long been inversely associated with cardiovascular disease (CVD) and are traditionally evaluated by serum HDL-cholesterol (HDL-C) levels. However, recent studies have raised doubts regarding the causal role of HDL quantity (HDL-C), drawing attention to HDL functionality. Reverse cholesterol transport (RCT) is a major anti-atherosclerotic mechanism involving ATP-binding cassette A1 (ABCA1), ATP-binding cassette G1 (ABCG1), scavenger receptor class B type I (SRB1), and regulatory factors, such as liver X receptor (LXR) and peroxisome proliferator-activated receptor gamma (PPARγ). Notably, HDL-C levels do not necessarily reflect RCT efficiency, and novel regulatory factors, such as microRNAs, endothelial lipase, and ANGPTL3, have been implicated. HDL also exhibits vasoprotective functions by enhancing nitric oxide (NO) production and modulating sphingosine-1-phosphate (S1P) signaling. Furthermore, it exerts anti-inflammatory effects by suppressing adhesion molecules, proinflammatory cytokines, and innate immune activation while modulating adaptive immune responses and attenuating tissue fibrosis. In addition, HDL influences megakaryopoiesis and platelet activation, thereby contributing to its antithrombotic properties. Despite these broad functional spectra, clinical assessments remain largely limited to cholesterol efflux capacity, and other key functional aspects have not been adequately explored. A more comprehensive understanding of HDL's pleiotropic roles, spanning lipid metabolism, vascular biology, inflammation, and hemostasis, is necessary from both the basic and clinical perspectives. Recent studies have further suggested potential roles of HDL in the central nervous system, expanding its relevance beyond cardiovascular prevention and toward broader therapeutic applications.
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