Using artificial intelligence to study atherosclerosis from computed tomography imaging: A state-of-the-art review of the current literature

计算机断层摄影术 电流(流体) 国家(计算机科学) 医学 放射科 计算机科学 工程类 算法 电气工程
作者
Laura Valentina Klüner,Kenneth Chan,Charalambos Antoniades
出处
期刊:Atherosclerosis [Elsevier BV]
卷期号:398: 117580-117580 被引量:2
标识
DOI:10.1016/j.atherosclerosis.2024.117580
摘要

With the enormous progress in the field of cardiovascular imaging in recent years, computed tomography (CT) has become readily available to phenotype atherosclerotic coronary artery disease. New analytical methods using artificial intelligence (AI) enable the analysis of complex phenotypic information of atherosclerotic plaques. In particular, deep learning-based approaches using convolutional neural networks (CNNs) facilitate tasks such as lesion detection, segmentation, and classification. New radiotranscriptomic techniques even capture underlying bio-histochemical processes through higher-order structural analysis of voxels on CT images. In the near future, the international large-scale Oxford Risk Factors And Non-invasive Imaging (ORFAN) study will provide a powerful platform for testing and validating prognostic AI-based models. The goal is the transition of these new approaches from research settings into a clinical workflow. In this review, we present an overview of existing AI-based techniques with focus on imaging biomarkers to determine the degree of coronary inflammation, coronary plaques, and the associated risk. Further, current limitations using AI-based approaches as well as the priorities to address these challenges will be discussed. This will pave the way for an AI-enabled risk assessment tool to detect vulnerable atherosclerotic plaques and to guide treatment strategies for patients.

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