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Published on: January 28, 2020
Implications of plasma concentrations of adiponectin in patients with coronary artery disease
Y Nakamura1, K Shimada, D Fukuda
1Department of Internal Medicine and Cardiology, Osaka City University Medical School, Osaka, Japan. ynakamura@msic.med.osaka-cu.ac.jp
Insights
Low plasma adiponectin levels are linked to acute coronary syndrome (ACS) development. Measuring adiponectin may help assess coronary artery disease (CAD) risk.
Area of Science:
- Cardiology
- Endocrinology
- Metabolic Syndrome
Background:
- Adiponectin, an adipokine, plays a role in metabolic regulation and inflammation.
- Its association with cardiovascular disease risk is an area of ongoing research.
Purpose of the Study:
- To determine if plasma adiponectin concentrations are a significant risk factor for coronary artery disease (CAD).
- To specifically examine the relationship between adiponectin levels and the development of acute coronary syndrome (ACS).
Main Methods:
- Plasma adiponectin levels were measured in 123 patients with CAD and 17 controls.
- Patients were categorized into acute myocardial infarction (AMI), unstable angina pectoris (UAP), and stable angina pectoris (SAP) groups.
Main Results:
- Adiponectin levels negatively correlated with body mass index, triglycerides, and fasting glucose.
- Adiponectin levels were significantly lower in patients with ACS (AMI and UAP) compared to SAP and control groups.
- Low adiponectin concentration, smoking, and fasting glucose independently predicted ACS development.
Conclusions:
- Plasma adiponectin measurement may aid in assessing CAD risk.
- Adiponectin levels are associated with the development of ACS.
Objective:
To investigate whether concentrations of plasma adiponectin constitute a significant coronary risk factor, with particular focus on the relation between plasma concentrations of adiponectin and the development of acute coronary syndrome (ACS).
Subjects And Methods:
Plasma concentrations of adiponectin were measured in 123 patients with coronary artery disease (CAD) and in 17 control participants. Patients were divided into three groups according to condition type: acute myocardial infarction (AMI) group (n = 59), unstable angina pectoris (UAP) group (n = 28), and stable angina pectoris (SAP) group (n = 36).
Results:
Plasma concentrations of adiponectin correlated negatively with body mass index (r = -0.18, p < 0.05), serum triglyceride (r = -0.25, p < 0.01), and fasting glucose concentrations (r = -0.21, p < 0.05), but correlated positively with age (r = 0.26, p < 0.01), high density lipoprotein cholesterol concentrations (r = 0.35, p < 0.01), and low density lipoprotein particle size (r = 0.37, p < 0.01). Plasma concentrations of adiponectin in patients with ACS, in both the AMI and UAP groups, were significantly lower than those in patients with SAP and in the control group (ACS, 6.5 (3.0) microg/ml; SAP, 11.3 (5.9) micro g/ml; control 12.8 (4.3) microg/ml; p < 0.01). Additionally, plasma concentrations of adiponectin in patients with CAD (7.9 (4.6) microg/ml, p < 0.01) were significantly lower than in the control group. There were, however, no significant differences between patients with SAP and the control group (p = 0.36). Multiple logistic regression analysis showed that smoking, fasting glucose concentration, and low log adiponectin concentration correlated independently with the development of an ACS.
Conclusions:
The findings suggest that measurement of plasma concentrations of adiponectin may be of use for assessing the risk of CAD and may be related to the development of ACS.
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