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Updated: May 29, 2026

Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
Pathogenesis of aortic dilatation in mucopolysaccharidosis VII mice may involve complement activation
Guilherme Baldo1, Susan Wu, Ruth A Howe
1Department of Internal Medicine, Washington University School of Medicine, St. Louis, MO 63110, USA.
Abstract:
Mucopolysaccharidosis VII (MPS VII) is due to mutations within the gene encoding the lysosomal enzyme β-glucuronidase, and results in the accumulation of glycosaminoglycans. MPS VII causes aortic dilatation and elastin fragmentation, which is associated with upregulation of the elastases cathepsin S (CtsS) and matrix metalloproteinase 12 (MMP12). To test the role of these enzymes, MPS VII mice were crossed with mice deficient in CtsS or MMP12, and the effect upon aortic dilatation was determined. CtsS deficiency did not protect against aortic dilatation in MPS VII mice, but also failed to prevent an upregulation of cathepsin enzyme activity. Further analysis with substrates and inhibitors specific for particular cathepsins suggests that this enzyme activity was due to CtsB, which could contribute to elastin fragmentation. Similarly, MMP12 deficiency and deficiency of both MMP12 and CtsS could not prevent aortic dilatation in MPS VII mice. Microarray and reverse-transcriptase real-time PCR were performed to look for upregulation of other elastases. This demonstrated that mRNA for complement component D was elevated in MPS VII mice, while immunostaining demonstrated high levels of complement component C3 on surfaces within the aortic media. Finally, we demonstrate that neonatal intravenous injection of a retroviral vector encoding β-glucuronidase reduced aortic dilatation. We conclude that neither CtsS nor MMP12 are necessary for elastin fragmentation in MPS VII mouse aorta, and propose that CtsB and/or complement component D may be involved. Complement may be activated by the GAGs that accumulate, and may play a role in signal transduction pathways that upregulate elastases.
Insights
Mucopolysaccharidosis VII (MPS VII) causes aortic damage due to glycosaminoglycan buildup. Cathepsin S and MMP12 do not drive this damage, but cathepsin B and complement component D may be involved.
Area of Science:
- Biochemistry
- Genetics
- Pathology
Background:
- Mucopolysaccharidosis VII (MPS VII) results from β-glucuronidase deficiency, leading to glycosaminoglycan accumulation.
- MPS VII is linked to aortic dilatation and elastin fragmentation, potentially involving cathepsin S (CtsS) and matrix metalloproteinase 12 (MMP12).
Purpose of the Study:
- To investigate the roles of CtsS and MMP12 in MPS VII-associated aortic pathology.
- To identify other potential elastases contributing to elastin fragmentation in MPS VII.
Main Methods:
- Crossbreeding MPS VII mice with CtsS-deficient or MMP12-deficient mice.
- Assessing aortic dilatation and elastin fragmentation.
- Utilizing microarray and RT-qPCR for gene expression analysis.
- Employing immunostaining for complement component C3.
- Evaluating gene therapy via retroviral vector delivery of β-glucuronidase.
Main Results:
- CtsS deficiency did not prevent aortic dilatation or cathepsin upregulation in MPS VII mice; CtsB activity was implicated.
- MMP12 deficiency, alone or combined with CtsS deficiency, did not prevent aortic dilatation.
- Elevated complement component D mRNA and C3 protein were observed in MPS VII aortas.
- Gene therapy with β-glucuronidase reduced aortic dilatation.
Conclusions:
- CtsS and MMP12 are not essential for elastin fragmentation in MPS VII mouse aortas.
- CtsB and/or complement component D may contribute to aortic pathology in MPS VII.
- Complement activation by accumulated GAGs might upregulate elastases, playing a role in disease progression.

