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Published on: October 12, 2017
Apolipoprotein B in the Risk Assessment, Diagnosis, and Treatment of Cardiometabolic Diseases
Shaan Patel1, Hina Patel1, Shaanali Mukadam1
1Department of Translational Research, College of Osteopathic Medicine of the Pacific, Western University of Health Sciences, Pomona, California 91766 USA.
Insights
Apolipoprotein B (ApoB) is a superior biomarker for atherosclerotic cardiovascular disease (ASCVD) risk, outperforming LDL-C. Measuring ApoB offers better risk prediction and guides targeted therapies for cardiometabolic diseases.
Area of Science:
- Cardiovascular Medicine
- Lipid Metabolism
- Biomarker Discovery
Background:
- Apolipoprotein B (ApoB) is a key driver of atherosclerotic cardiovascular disease (ASCVD), surpassing traditional lipid metrics.
- ApoB isoforms (ApoB100, ApoB48) have distinct roles in lipid transport, influenced by metabolic and genetic factors.
- Dyslipoproteinemic phenotypes linked to ASCVD and metabolic syndrome are associated with ApoB particle density.
Purpose of the Study:
- To critically evaluate the molecular biology, metabolic regulation, and clinical relevance of ApoB isoforms.
- To highlight ApoB's superior predictive value over LDL-C for cardiovascular risk, especially in specific patient groups.
- To review emerging therapies targeting ApoB reduction and their impact on cardiovascular events.
Main Methods:
- Literature review and critical evaluation of existing information on ApoB.
- Analysis of factors influencing ApoB particle density (insulin resistance, inflammation, genetics).
- Assessment of ApoB's role in risk stratification and therapeutic targeting for ASCVD.
Main Results:
- ApoB levels directly measure atherogenic particle number, offering better prediction than LDL-C, particularly in lipid discordance and among statin-treated patients.
- Therapies like statins, PCSK9 inhibitors, and GLP-1 receptor agonists effectively reduce ApoB and cardiovascular events.
- Four ApoB-related dyslipoproteinemic phenotypes provide a nuanced approach to cardiovascular risk assessment.
Conclusions:
- ApoB measurement should be integrated into routine clinical practice as a diagnostic tool and therapeutic target.
- ApoB offers enhanced personalized management for cardiometabolic diseases.
- Understanding ApoB's role is crucial for advancing ASCVD prevention and treatment strategies.
Abstract:
Apolipoprotein B (ApoB) has emerged as a central biomarker and mechanistic driver of atherosclerotic cardiovascular disease (ASCVD), outperforming traditional lipid metrics in both risk stratification and therapeutic targeting. In this article a critical evaluation of the information is presented on the molecular biology, metabolic regulation, and clinical relevance of ApoB isoforms, ApoB100 and ApoB48, which play their own distinct, yet complementary roles in hepatic and intestinal lipid transport. The ways in which ApoB particle density is influenced by insulin resistance, nutrient status, hepatic lipid flux, inflammation, and genetic variation, all of which contribute to dyslipoproteinemic phenotypes associated with ASCVD and metabolic syndrome. Importantly, ApoB levels provide a direct measure atherogenic particle number, offering superior predictive value over low-density lipoprotein cholesterol (LDL-C), particularly in cases of lipid discordance and among statin-treated patients with residual cardiovascular risk. Emerging evidence demonstrates therapies targeting ApoB reduction, including statins, PCSK9 inhibitors, and glucose-lowering agents such as GLP-1 receptor agonists, can significantly reduce major adverse cardiovascular events. However, the lipid-modulating effects of agents like SGLT2 inhibitors, metformin, and thiazolidinediones are variable or independent of ApoB changes. The classification of four ApoB-related dyslipoproteinemic phenotypes, normotriglyceridemic hyperApoB, hypertriglyceridemic normoApoB, hypertriglyceridemic hyperApoB, and hyperchylomicronemia, offers a more nuanced approach to cardiovascular risk assessment than LDL-c alone. Collectively, these findings support the integration of ApoB measurement into routine clinical practice as both diagnostic tool and therapeutic target, with the potential to substantially enhance personalized management of cardiometabolic disease.
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