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Multi-Scale Imaging of Vascular Pathologies in Cardiovascular Disease
Ashish Tiwari1, Betsalel Elgrably1, Galit Saar2
1Faculty of Biomedical Engineering, Technion-Israel Institute of Technology, Haifa, Israel.
Insights
Cardiovascular diseases involve vascular changes driven by endothelial cells. Advanced imaging techniques help understand these changes for early diagnosis and better cardiovascular disease management.
Area of Science:
- Cardiovascular biology
- Vascular imaging
- Endothelial cell function
Background:
- Endothelial cells are central to cardiovascular disease (CVD) pathogenesis.
- Inflammation triggers endothelial cell dysfunction, altering vascular function.
- Understanding endothelial changes is key to managing CVD.
Purpose of the Study:
- To review biological processes in cardiac vasculature during CVD.
- To summarize state-of-the-art vascular imaging techniques for CVD.
- To highlight imaging techniques' principles, applications, and future directions.
Main Methods:
- Review of preclinical multi-scale imaging techniques (optical, acoustic, nuclear, MRI, multimodal).
- Analysis of biological processes related to endothelial cell changes in CVD.
- Evaluation of imaging techniques' advantages, disadvantages, and applications.
Main Results:
- Endothelial dysfunction manifests as altered blood flow, permeability, inflammation, and thrombosis.
- Advances in imaging enable multi-scale study of endothelial changes.
- Various imaging modalities offer different insights into vascular biology and disease.
Conclusions:
- Multi-scale vascular imaging enhances understanding of vascular biology in CVD.
- Imaging techniques are crucial for early diagnosis and sensitive management of cardiovascular diseases.
- Future directions involve refining imaging for improved CVD patient outcomes.
Abstract:
Cardiovascular disease entails systemic changes in the vasculature. The endothelial cells lining the blood vessels are crucial in the pathogenesis of cardiovascular disease. Healthy endothelial cells direct the blood flow to tissues as vasodilators and act as the systemic interface between the blood and tissues, supplying nutrients for vital organs, and regulating the smooth traffic of leukocytes into tissues. In cardiovascular diseases, when inflammation is sensed, endothelial cells adjust to the local or systemic inflammatory state. As the inflamed vasculature adjusts, changes in the endothelial cells lead to endothelial dysfunction, altered blood flow and permeability, expression of adhesion molecules, vessel wall inflammation, thrombosis, angiogenic processes, and extracellular matrix production at the endothelial cell level. Preclinical multi-scale imaging of these endothelial changes using optical, acoustic, nuclear, MRI, and multimodal techniques has progressed, due to technical advances and enhanced biological understanding on the interaction between immune and endothelial cells. While this review highlights biological processes that are related to changes in the cardiac vasculature during cardiovascular diseases, it also summarizes state-of-the-art vascular imaging techniques. The advantages and disadvantages of the different imaging techniques are highlighted, as well as their principles, methodologies, and preclinical and clinical applications with potential future directions. These multi-scale approaches of vascular imaging carry great potential to further expand our understanding of basic vascular biology, to enable early diagnosis of vascular changes and to provide sensitive diagnostic imaging techniques in the management of cardiovascular disease.
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