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Coronary heart disease evaluation using PCAT radiomics model based on coronary CT angiography and pericoronary
1Department of Radiology, Taikang Xinlin Drum Tower Hospital, Affiliated Hospital of Medical School, Nanjing University, Nanjing, China.
Insights
A new radiomics model using pericoronary adipose tissue (PCAT) effectively predicts coronary heart disease (CHD). This imaging analysis offers significant value for clinical diagnosis and evaluation of coronary artery disease.
Area of Science:
- Cardiology
- Radiology
- Medical Imaging Analysis
Background:
- Coronary heart disease (CHD) poses a significant global health challenge.
- Accurate prediction and early diagnosis are crucial for effective management.
- Pericoronary adipose tissue (PCAT) is increasingly recognized for its role in cardiovascular health.
Purpose of the Study:
- To evaluate the clinical utility of a radiomics model derived from PCAT for predicting CHD.
- To assess the diagnostic performance of this novel radiomics approach.
Main Methods:
- Retrospective analysis of coronary computed tomography angiography (CCTA) data from 2023.
- Inclusion of 164 CHD cases and 190 control cases.
- Extraction and analysis of radiomics features from PCAT using specialized software and logistic regression.
Main Results:
- The PCAT radiomics model demonstrated strong predictive performance with AUC values of 0.863 (training) and 0.851 (test).
- High consistency was observed between predicted and actual CHD events.
- Combining PCAT radiomics with clinical data improved diagnostic accuracy to 0.896.
Conclusions:
- The PCAT-based radiomics model shows significant potential for predicting and evaluating CHD.
- This approach offers valuable clinical application for diagnosing coronary artery disease.
Abstract:
To explore the clinical application value of radiomics model based on pericoronary adipose tissue (PCAT) in predicting coronary heart disease. A retrospective analysis was performed for inpatients who had undergone coronary computed tomography angiography from January to December 2023, and 164 cases of coronary artery lesions were screened as the lesion group and 190 cases of normal coronary artery samples were selected as the control group. The clinical data and imaging data of all patients were collected, the radiomics features were extracted by relevant software, and the "region of interest" of pericoronary fat was delineated, and the selection operator and multivariate logistic regression were used to screen the radiomic features of pericoronary fat. A coronary heart disease evaluation model was constructed by the best radiomics features. Area under the curve values of the PCAT radiomics scoring model for predicting the receiver operating characteristic curve of coronary heart disease were 0.863 and 0.851 in training and test sets, respectively. After calibration curve analysis, PCAT radiomics scoring model has a high consistency between the predictive evaluation results and the actual results of coronary heart disease events. In addition, in the training set, the PCAT radiomics scoring model has a net benefit on all threshold probabilities. In the test set, the model has a negative net return with only a small number of threshold probabilities. After combining the clinical characteristics model, the evaluation accuracy of the model for coronary heart disease can reach 0.896. PCAT radiomics model based on coronary computed tomography angiography can effectively predict and evaluate coronary heart disease, which is of great value for the clinical diagnosis of coronary artery disease.
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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...