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Published on: February 18, 2020
Patient-specific in silico 3D coronary model in cardiac catheterisation laboratories
Mojtaba Lashgari1, Robin P Choudhury2, Abhirup Banerjee1,2
1Institute of Biomedical Engineering, Department of Engineering Science, University of Oxford, Oxford, United Kingdom.
Insights
Patient-specific in silico models can improve coronary artery disease diagnosis and treatment planning. These computational simulations offer valuable insights beyond traditional 2D angiography, optimizing interventional cardiology procedures.
Area of Science:
- Cardiology
- Medical Imaging
- Computational Biology
Background:
- Coronary artery disease (CAD) is a leading cause of death, diagnosed via X-ray coronary angiography.
- Current angiography interpretation using 2D projections limits accurate lesion severity assessment and quantitative analysis.
- Interventional cardiology requires precise visualization of coronary anatomy and stenoses for effective treatment planning.
Purpose of the Study:
- To explore the challenges and future directions of applying patient-specific in silico models in catheterisation laboratories.
- To discuss the limitations imposed by the absence of patient-specific in silico models in predicting patient outcomes.
- To introduce the components of in silico models and propose strategies for their integration into clinical practice.
Main Methods:
- Review of current diagnostic procedures for coronary artery disease.
- Exploration of the concept and components of patient-specific in silico models.
- Discussion of the implications of current limitations and future research directions.
Main Results:
- Traditional 2D angiography has inherent limitations in assessing lesion severity and vessel morphology.
- Patient-specific in silico models offer a promising approach to overcome these limitations.
- The development and integration of these models are crucial for advancing interventional cardiology.
Conclusions:
- Patient-specific in silico models hold significant potential to revolutionize interventional cardiology.
- Addressing the challenges in their development and implementation is key to improving patient care.
- Future directions involve bridging the gap between computational modeling and clinical application in catheterisation labs.
Abstract:
Coronary artery disease is caused by the buildup of atherosclerotic plaque in the coronary arteries, affecting the blood supply to the heart, one of the leading causes of death around the world. X-ray coronary angiography is the most common procedure for diagnosing coronary artery disease, which uses contrast material and x-rays to observe vascular lesions. With this type of procedure, blood flow in coronary arteries is viewed in real-time, making it possible to detect stenoses precisely and control percutaneous coronary interventions and stent insertions. Angiograms of coronary arteries are used to plan the necessary revascularisation procedures based on the calculation of occlusions and the affected segments. However, their interpretation in cardiac catheterisation laboratories presently relies on sequentially evaluating multiple 2D image projections, which limits measuring lesion severity, identifying the true shape of vessels, and analysing quantitative data. In silico modelling, which involves computational simulations of patient-specific data, can revolutionise interventional cardiology by providing valuable insights and optimising treatment methods. This paper explores the challenges and future directions associated with applying patient-specific in silico models in catheterisation laboratories. We discuss the implications of the lack of patient-specific in silico models and how their absence hinders the ability to accurately predict and assess the behaviour of individual patients during interventional procedures. Then, we introduce the different components of a typical patient-specific in silico model and explore the potential future directions to bridge this gap and promote the development and utilisation of patient-specific in silico models in the catheterisation laboratories.
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