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Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
Raman spectroscopy imaging reveals interplay between atherosclerosis and medial calcification in the human aorta
Amanda Y F You1,2,3, Mads S Bergholt1,2,3, Jean-Philippe St-Pierre1,2,3
1Department of Materials, Imperial College London, London SW7 2AZ, UK.
Insights
Cardiovascular calcification, particularly medial aortic calcification, is poorly understood. This study reveals increased apatite, cholesterol, and triglycerides in atherosclerosis, with apatite playing a key role in plaque-related calcification.
Area of Science:
- Biomedical Science
- Cardiovascular Research
- Biomaterials Science
Background:
- Medial calcification in the human aorta worsens with age and disease.
- Atherosclerosis is a significant contributor to cardiovascular calcification.
- The precise mechanisms driving cardiovascular calcification are not fully understood.
Purpose of the Study:
- To investigate the relationship between medial aortic calcification and atherosclerosis.
- To characterize mineral distributions (apatite, whitlockite) and extracellular matrix in aortic tissues.
- To compare cellular changes in atherosclerotic versus nonatherosclerotic aortas.
Main Methods:
- Development of Raman spectroscopy imaging methods.
- Algorithms to distinguish biomolecules within aortic tissues.
- Cross-sectional analysis of mineral and biomolecular composition.
Main Results:
- A positive correlation was found between apatite, cholesterol, and triglyceride levels in atherosclerotic plaques.
- Apatite increased disproportionately more than whitlockite in the media beneath plaques, highlighting its pathological significance.
- Reduced beta-carotene was observed in atherosclerotic aortic intima.
Conclusions:
- Apatite is a key mineral in atherosclerosis-aggravated medial aortic calcification.
- Biomolecular characterization provides new insights into human cardiovascular calcification.
- Understanding these molecular changes can inform future therapeutic strategies.
Abstract:
Medial calcification in the human aorta accumulates during aging and is known to be aggravated in several diseases. Atherosclerosis, another major cause of cardiovascular calcification, shares some common aggravators. However, the mechanisms of cardiovascular calcification remain poorly understood. To elucidate the relationship between medial aortic calcification and atherosclerosis, we characterized the cross-sectional distributions of the predominant minerals in aortic tissue, apatite and whitlockite, and the associated extracellular matrix. We also compared the cellular changes between atherosclerotic and nonatherosclerotic human aortic tissues. This was achieved through the development of Raman spectroscopy imaging methods that adapted algorithms to distinguish between the major biomolecules present within these tissues. We present a relationship between apatite, cholesterol, and triglyceride in atherosclerosis, with the relative amount of all molecules concurrently increased in the atherosclerotic plaque. Further, the increase in apatite was disproportionately large in relation to whitlockite in the aortic media directly underlying a plaque, indicating that apatite is more pathologically significant in atherosclerosis-aggravated medial calcification. We also discovered a reduction of β-carotene in the whole aortic intima, including a plaque in atherosclerotic aortic tissues compared to nonatherosclerotic tissues. This unprecedented biomolecular characterization of the aortic tissue furthers our understanding of pathological and physiological cardiovascular calcification events in humans.
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