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Published on: August 17, 2022
Coronary Microvascular Dysfunction and Lipid Molecules: Pathophysiological Mechanisms, Clinical Assessment, and
Abdelrahman Hafez1, Juan M Farina1, Kamal Awad1
1Department of Cardiovascular Medicine, Mayo Clinic, Phoenix, AZ 85054, USA.
Insights
Coronary microvascular dysfunction (CMD) is linked to abnormal lipid profiles, including high lipoprotein(a) [Lp(a)] and dysfunctional high-density lipoprotein (HDL). Personalized lipid assessment and management are key for treating this condition in INOCA patients.
Area of Science:
- Cardiology
- Lipidology
- Vascular Biology
Background:
- Coronary microvascular dysfunction (CMD) significantly contributes to cardiovascular disease, especially in patients with ischemia and non-obstructive coronary arteries (INOCA).
- CMD involves complex structural and functional abnormalities in small coronary vessels, influenced by endothelial nitric oxide synthase (eNOS) uncoupling, oxidative stress, and inflammation.
- Lipid metabolism, particularly elevated low-density lipoprotein cholesterol (LDL-C), plays a critical role in CMD pathogenesis.
Purpose of the Study:
- To review current evidence linking diverse lipid phenotypes to coronary microvascular dysfunction.
- To propose a framework for understanding and managing lipid-driven CMD endotypes.
- To highlight the need for integrated lipid profiling and advanced risk stratification in CMD.
Main Methods:
- Synthesis of observational, mechanistic, and early interventional data on lipid profiles and CMD.
- Review of established and emerging lipid biomarkers, including apolipoprotein B (ApoB), lipoprotein(a) [Lp(a)], and the triglyceride-glucose (TyG) index.
- Integration of lipid assessment with measures of coronary flow reserve.
Main Results:
- Dysfunctional high-density lipoprotein (HDL) and elevated lipoprotein(a) [Lp(a)] are identified as independent contributors to microvascular injury.
- Proposed lipid-driven CMD endotypes include ApoB/particle overload, dysfunctional HDL, Lp(a)-mediated risk, and metabolic/TyG-high states.
- Current guideline-directed therapy focuses on LDL-C lowering, but dedicated microvascular benefit from newer agents requires further investigation.
Conclusions:
- Comprehensive lipid phenotyping is essential for accurate CMD risk assessment and management.
- A personalized approach integrating lipid endotyping with guideline-based therapies may refine patient care.
- Future research should focus on the microvascular benefits of novel lipid-modulating and cardiometabolic agents.
Abstract:
Coronary microvascular dysfunction (CMD) has emerged as a crucial contributor to cardiovascular morbidity and mortality, particularly in patients with ischemia and non-obstructive coronary arteries (INOCA). The condition arises from a complex interplay of structural and functional abnormalities within the small coronary vessels, driven by underlying molecular mechanisms including endothelial nitric oxide synthase (eNOS) uncoupling, oxidative stress, and chronic inflammation. Lipid metabolism plays a central role in this pathology, especially in the setting of elevated low-density lipoprotein cholesterol (LDL-C). Furthermore, the protective capacity of high-density lipoprotein (HDL) is increasingly understood to depend on its functionality rather than absolute levels, as it can become dysfunctional and pro-inflammatory in pathological states. Emerging evidence has identified lipoprotein(a) [Lp(a)] and triglyceride-rich lipoproteins as significant, independent contributors to microvascular injury. Comprehensive clinical assessment of microvascular dysfunction therefore requires integration of advanced lipid profiling, including apolipoprotein B (ApoB), [Lp(a)], and the triglyceride-glucose (TyG) index with invasive and non-invasive measures of coronary flow reserve to more precisely stratify risk. In this narrative review, we synthesize current observational, mechanistic, and early interventional data linking diverse lipid phenotypes to coronary microvascular dysfunction. We propose a concept of lipid-driven CMD endotypes, such as ApoB-/particle overload, dysfunctional HDL, Lp(a)-mediated risk, and metabolic/TyG-high states, and map these to a practical, mechanism-informed management framework. While intensive LDL-C lowering with high-intensity statins and combination therapy remains guideline-directed care for high-risk patients, evidence for dedicated microvascular benefit from newer lipid and cardiometabolic agents is still largely hypothesis-generating. A personalized approach that aligns lipid phenotyping, CMD endotyping, and existing guideline-based therapies may help refine risk assessment and inform future trials.
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