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Updated: May 6, 2026

Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
Arterial and aortic valve calcification inversely correlates with osteoporotic bone remodelling: a role for
Jesper Hjortnaes1, Jonathan Butcher, Jose-Luiz Figueiredo
1Center for Molecular Imaging Research, Massachusetts General Hospital, Boston, MA, USA.
Insights
Cardiovascular calcification and osteoporosis are linked by inflammation. Macrophage burden drives arterial and valvular calcification, while inversely correlating with bone mineral density, suggesting inflammation targets for treatment.
Area of Science:
- Biomedical imaging
- Cardiovascular research
- Bone metabolism
Background:
- Cardiovascular calcification and osteoporosis are increasing health burdens.
- The relationship between these conditions is not fully understood.
- Inflammation is a suspected common pathway.
Purpose of the Study:
- To investigate the reciprocal relationship between cardiovascular calcification and bone tissue mineral density (TMD).
- To determine the role of inflammation, specifically macrophage burden, in this relationship.
- To test the hypothesis that cardiovascular calcification progresses with inflammation and inversely correlates with TMD.
Main Methods:
- Utilized near-infrared fluorescence (NIRF) molecular imaging in apoE(-/-) mice.
- Assessed arterial, valvular, and bone metabolism, targeting macrophages and osteogenesis.
- Employed 3D micro-computed tomography for bone structural analysis.
Main Results:
- Significant arterial and aortic valve calcification was observed, correlating with atherosclerosis severity.
- Osteogenic activity and TMD were reduced in apoE(-/-) mice, further decreased with chronic renal disease (CRD).
- Macrophage burden directly correlated with arterial/valvular calcification and inversely with TMD.
Conclusions:
- Direct in vivo evidence shows macrophage burden and calcification are linked in arteries and aortic valves.
- Inflammation inversely correlates with bone mineralization, highlighting a divergent effect.
- Targeting inflammatory signaling pathways may offer therapeutic strategies for these calcific conditions.
Aims:
Westernized countries face a growing burden of cardiovascular calcification and osteoporosis. Despite its vast clinical significance, the precise nature of this reciprocal relationship remains obscure. We hypothesize that cardiovascular calcification progresses with inflammation and inversely correlates with bone tissue mineral density (TMD).
Methods And Results:
Arterial, valvular, and bone metabolism were visualized using near-infrared fluorescence (NIRF) molecular imaging agents, targeting macrophages and osteogenesis. We detected significant arterial and aortic valve calcification in apoE(-/-) mice with or without chronic renal disease (CRD, 30 weeks old; n = 28), correlating with the severity of atherosclerosis. We demonstrated decreases in osteogenic activity in the femurs of apoE(-/-) mice when compared with WT mice, which was further reduced with CRD. Three-dimensional micro-computed tomography imaging of the cortical and cancellous regions of femurs quantified structural remodelling and reductions in TMD in apoE(-/-) and CRD apoE(-/-) mice. We established significant correlations between arterial and valvular calcification and loss of TMD (R(2) = 0.67 and 0.71, respectively). Finally, we performed macrophage-targeted molecular imaging to explore a link between inflammation and osteoporosis in vivo. Although macrophage burden, visualized as uptake of NIRF-conjugated iron nanoparticles, was directly related to the degree of arterial and valvular inflammation and calcification, the same method inversely correlated inflammation with TMD (R(2) = 0.73; 0.83; 0.75, respectively).
Conclusion:
This study provides direct in vivo evidence that in arteries and aortic valves, macrophage burden and calcification associate with each other, whereas inflammation inversely correlates with bone mineralization. Thus, understanding inflammatory signalling mechanisms may offer insight into selective abrogation of divergent calcific phenomena.
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