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Author Spotlight: Assessing the Cardiovascular Profile of Patients with Metabolic Syndrome
Published on: September 27, 2024
Beyond BMI: Metabolic Signatures of Obstructive Coronary Artery Disease in a Sudanese Cohort
Ramaze F Elhakeem1, Mohamed F Lutfi1, Abdelkarim A Abdrabo2
1Department of Physiology, College of Medicine, Qassim University, Buraydah 51452, Saudi Arabia.
Insights
In Sudanese patients, high fasting glucose and low HDL cholesterol, not BMI, predict obstructive coronary artery disease (CAD). This highlights the need for population-specific risk markers in African populations.
Area of Science:
- Cardiology
- Metabolic Syndrome
- Public Health
Background:
- Coronary artery disease (CAD) is a global health burden, but its metabolic factors in African populations are understudied.
- Traditional risk predictors like BMI and insulin resistance may be insufficient in these groups.
Purpose of the Study:
- To investigate the metabolic underpinnings of obstructive CAD in Sudanese patients.
- To identify population-specific predictors of coronary artery disease.
Main Methods:
- A cross-sectional study of 138 Sudanese patients with symptomatic angina undergoing coronary angiography.
- Analysis of clinical data, fasting blood glucose (FBG), fasting insulin (FI), lipid profiles, and Quantitative Insulin Sensitivity Check Index (QUICKI).
- Comparison between obstructive (≥50% stenosis) and non-obstructive (<50% stenosis) CAD groups using statistical analyses and logistic regression.
Main Results:
- Obstructive CAD patients were older, predominantly male, and more diabetic, with lower BMI.
- Higher FBG and lower HDL-C were significantly associated with obstructive CAD, independent of BMI.
- FBG, age, and male gender independently predicted obstructive CAD.
Conclusions:
- Elevated FBG and reduced HDL-C are key metabolic signatures of obstructive CAD in Sudanese individuals.
- Findings emphasize the need for tailored, population-specific risk assessment for CAD in African cohorts.
- This research supports improved early detection and prevention strategies for underrepresented populations.
Abstract:
Background: CAD continues to be a major global cause of morbidity and mortality, but its metabolic underpinnings in African populations remain poorly characterized. Conventional predictors such as body mass index (BMI) and insulin resistance markers may not fully capture risk in these settings. Methods: We conducted a hospital-based cross-sectional, hypothesis-generating study of 138 Sudanese patients with symptomatic angina who underwent elective coronary angiography at El-Shaab Teaching Hospital, Khartoum, Sudan. Clinical and demographic data were collected, and venous blood samples were analyzed for fasting blood glucose (FBG), fasting insulin (FI), and lipid profiles. Insulin sensitivity was estimated using the Quantitative Insulin Sensitivity Check Index (QUICKI). Patients were categorized into obstructive CAD (≥50% stenosis, n = 72) and non-obstructive CAD (<50% stenosis, n = 66) groups. Statistical analyses included group comparisons, BMI-stratified analyses, and logistic regression modeling. Results: Patients with obstructive CAD were significantly older (p = 0.044), predominantly male (80.6% vs. 50.0%, p < 0.001), and more frequently diabetic (p = 0.011). BMI was unexpectedly lower in the obstructive group (p = 0.044). FBG was significantly higher and HDL-C lower in the obstructive group, both before and after adjusting for BMI, while FI and QUICKI did not differ significantly between groups. Logistic regression identified age, male gender, and FBG as independent predictors of obstructive CAD. Conclusions: Elevated fasting glucose and reduced HDL-C, rather than BMI or classical insulin resistance indices, appear to be key metabolic signatures of obstructive CAD in Sudanese patients. These findings underscore the importance of population-specific risk markers to improve early detection and tailored prevention strategies in underrepresented African cohorts.
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