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Association Between Lipoprotein(a) and Obstructive Coronary Artery Disease and High-Risk Plaque: Insights From the
Thomas O'Toole1, Nishant P Shah1, Stephanie Nicole Giamberardino2
1Duke Clinical Research Institute; Department of Medicine.
Insights
Elevated lipoprotein (a) (Lp[a]) is linked to obstructive coronary artery disease (CAD) in primary prevention patients, independent of low-density lipoprotein cholesterol (LDL-C) levels. Lp[a] was not significantly associated with high-risk plaque when obstructive CAD was considered.
Area of Science:
- Cardiovascular Medicine
- Clinical Research
- Biomarkers
Background:
- Lipoprotein (a) (Lp[a]) is an independent risk factor for atherosclerotic cardiovascular disease.
- The role of Lp(a) in obstructive coronary artery disease (CAD) and high-risk plaque (HRP) in primary prevention patients with stable chest pain remains unclear.
- Understanding Lp(a)'s contribution to residual cardiovascular risk is crucial for patient management.
Purpose of the Study:
- To evaluate the association of Lp(a) with obstructive CAD and HRP in primary prevention patients.
- To determine if Lp(a) is an independent predictor of CAD, irrespective of low-density lipoprotein cholesterol (LDL-C) levels.
- To clarify the role of Lp(a) in residual cardiovascular risk.
Main Methods:
- Secondary analysis of the PROMISE Trial data, including coronary computed tomographic angiography (CTA) and Lp(a) measurements.
- Elevated Lp(a) defined as ≥50 mg/100 ml; obstructive CAD defined by ≥50% or ≥70% stenosis.
- High-risk plaque (HRP) defined by CTA imaging characteristics (positive remodeling, low attenuation, napkin-ring sign).
- Multivariate logistic regression models were used to assess associations, stratified by LDL-C levels (≥100 vs. <100 mg/100 ml).
Main Results:
- Elevated Lp(a) was independently associated with stenosis ≥50% (OR 1.57) and stenosis ≥70% (OR 2.05) in multivariate models.
- The association between elevated Lp(a) and obstructive CAD was consistent across different LDL-C levels (interaction p >0.4).
- Elevated Lp(a) was not independently associated with HRP when adjusted for the presence of obstructive CAD.
Conclusions:
- Elevated Lp(a) is independently associated with obstructive CAD in primary prevention patients with stable chest pain, regardless of LDL-C control.
- Lp(a) may contribute to residual cardiovascular risk through mechanisms beyond plaque morphology (HRP) when obstructive CAD is present.
- Further research is needed to fully elucidate Lp(a)'s role in atherosclerotic cardiovascular disease risk.
Abstract:
The role of lipoprotein (a) (Lp[a]) in the development of obstructive coronary artery disease (CAD) and high-risk plaque (HRP) in primary prevention patients with stable chest pain is unknown. We sought to evaluate the relation of Lp(a), independent of low-density lipoprotein cholesterol (LDL-C), with the presence of obstructive CAD and HRP to improve understanding of the residual risk imparted by Lp(a) on CAD. We performed a secondary analysis in Prospective Multicenter Imaging Study for Evaluation of Chest Pain (PROMISE) Trial participants who had coronary computed tomographic angiography (CTA) performed and Lp(a) data available. Lp(a) concentration was analyzed as a binary variable, with elevated Lp(a) defined as ≥50 mg/100 ml. "Stenosis ≥50%" was defined as ≥50% coronary artery stenosis in any epicardial vessel, and "stenosis ≥70%" was defined as ≥70% coronary artery stenosis in any epicardial vessel and/or ≥50% left main coronary artery stenosis. HRP was defined as presence of plaque on CTA imaging with evidence of positive remodeling, low computed tomography attenuation, or napkin-ring sign. Multivariate logistic regression models were constructed to evaluate the association between Lp(a) and the outcomes of obstructive CAD and HRP stratified by LDL-C ≥100 versus <100 mg/100 ml. Of the 1,815 patients who underwent CTA and had Lp(a) data available, those with elevated Lp(a) were more commonly women and Black than those with lower Lp(a). Elevated Lp(a) was associated with stenosis ≥50% (odds ratio 1.57, 95% confidence interval 1.14 to 2.15, p = 0.005) and stenosis ≥70% (odds ratio 2.05, 95% confidence interval 1.34 to 3.11, p = 0.0008) in the multivariate models, and this relation was not modified by LDL-C ≥100 versus <100 mg/100 ml (interaction p >0.4). Elevated Lp(a) was not associated with HRP when adjusted for obstructive CAD. This study of patients without known CAD found that elevated Lp(a) ≥50 mg/100 ml was independently associated with the presence of obstructive CAD regardless of controlled versus uncontrolled LDL-C but was not independently associated with HRP when stenosis ≥50% or ≥70% was accounted for. Further research is warranted to delineate the role of Lp(a) in the residual risk for atherosclerotic cardiovascular disease that patients may have despite optimal LDL-C lowering.
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