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.

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.