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Published on: January 28, 2020
Multiparametric Coronary CT Angiography-Derived Imaging Biomarkers for Risk Stratification in Nonobstructive Coronary
Lei Chen1, Hong Huang1, Hao Tian1
1Department of Medical Imaging, Affiliated Hospital of Jiangnan University, No. 1000 Hefeng Road, Binhu District, Wuxi 214122, China.
Insights
Quantitative coronary CT angiography (CCTA) offers advanced risk assessment for nonobstructive coronary artery disease (NOCAD). Multiparametric CCTA imaging improves cardiovascular event prediction beyond traditional methods.
Area of Science:
- Cardiovascular Imaging
- Radiology
- Preventive Cardiology
Background:
- Patients with diabetes mellitus and nonobstructive coronary artery disease (NOCAD) face persistent cardiovascular risk.
- Quantitative coronary CT angiography (CCTA) offers comprehensive assessment beyond luminal stenosis.
- Novel imaging biomarkers from CCTA can evaluate anatomical, functional, and inflammatory aspects.
Purpose of the Study:
- To assess the prognostic value of an automated multiparametric CCTA imaging framework.
- To stratify cardiovascular risk in patients with NOCAD.
- To explore the role of CCTA in diabetic patients with NOCAD.
Main Methods:
- Retrospective analysis of 485 patients with NOCAD undergoing CCTA.
- Automated CCTA analysis quantifying plaque burden, high-risk plaque features, CT-derived fractional flow reserve (CT-FFR), and perivascular fat attenuation index.
- Kaplan-Meier, Cox regression, and hierarchical models to assess major adverse cardiovascular events (MACE).
Main Results:
- MACE occurred in 56 patients over a median 3-year follow-up; diabetic patients had higher event rates.
- Increased plaque burden, high-risk plaque features, elevated perivascular fat attenuation index, and reduced CT-FFR correlated with adverse outcomes.
- An integrated CCTA biomarker model enhanced risk stratification compared to plaque assessment alone.
Conclusions:
- Automated multiparametric CCTA phenotyping provides valuable prognostic information for NOCAD risk stratification.
- The integrated CCTA approach offers complementary data beyond traditional stenosis assessment.
- Exploratory findings in diabetic patients require validation in larger prospective studies.
Abstract:
Background: Patients with diabetes mellitus and nonobstructive coronary artery disease (NOCAD) may remain at increased cardiovascular risk despite the absence of flow-limiting stenosis. Quantitative coronary CT angiography (CCTA) enables comprehensive assessment of anatomical, functional, and inflammatory imaging biomarkers beyond luminal stenosis. This study aimed to evaluate the prognostic value of an automated multiparametric CCTA-derived imaging framework for risk stratification in patients with NOCAD, with exploratory assessment in those with diabetes mellitus. Methods: This retrospective single-center study included 485 patients with NOCAD who underwent CCTA between January 2020 and December 2021. Automated CCTA analysis was performed to quantify plaque burden, high-risk plaque features, CT-derived fractional flow reserve (CT-FFR), and perivascular fat attenuation index. The primary endpoint was major adverse cardiovascular events (MACE) during follow-up. Prognostic associations were assessed using Kaplan-Meier analysis, Cox regression, and hierarchical models. Results: During a median follow-up of approximately three years, MACE occurred in 56 patients. Patients with diabetes had a higher event rate than those without diabetes. Increased plaque burden, high-risk plaque features, elevated perivascular fat attenuation index, and reduced CT-FFR were associated with adverse outcomes. The fully integrated model combining anatomical, functional, and inflammatory CCTA-derived biomarkers improved risk stratification compared with plaque-based assessment alone. Conclusions: Automated multiparametric CCTA phenotyping may provide complementary prognostic information for risk stratification in patients with NOCAD. The diabetes-specific findings should be considered exploratory and require validation in larger prospective cohorts.
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An X-ray, or radiograph, is a non-invasive method that uses ionizing radiation to take images of internal structures. It is mainly used in cardiac imaging to examine the heart, lungs, and major blood vessels, aiming to identify abnormalities in the heart's size, shape, and position, such as heart failure, congenital defects, and vascular...