The Complement C3a-C3aR Axis Promotes Development of Thoracic Aortic Dissection via Regulation of MMP2 Expression

Weihong Ren1,2, Yan Liu1, Xuerui Wang3

  • 1Beijing Anzhen Hospital, Capital Medical University, Beijing Institute of Heart Lung and Blood Vessel Diseases, The Key Laboratory of Remodeling-Related Cardiovascular Diseases, Ministry of Education, Beijing Collaborative Innovative Research Center for Cardiovascular Diseases, Beijing 100029, China.

Insights

The complement system

Area of Science:

  • Cardiovascular Research
  • Immunology
  • Complement System Biology

Background:

  • Thoracic aortic dissection (TAD) is a life-threatening condition with no effective pharmaceutical treatments.
  • The role of the complement system, particularly anaphylatoxins, in TAD pathogenesis remains largely unknown.
  • Complement activation is implicated in various inflammatory and cardiovascular diseases.

Purpose of the Study:

  • To investigate the involvement of the complement system in the development of thoracic aortic dissection.
  • To explore the potential of targeting complement components as a therapeutic strategy for TAD.

Main Methods:

  • Measured plasma levels of complement factors (C3a, C4a, C5a) in TAD patients.
  • Utilized a mouse model of TAD induced by β-aminopropionitrile monofumarate (BAPN).
  • Investigated the expression of complement components and receptors (C1q, properdin, C3aR) in aortic tissues.
  • Employed C3aR knockout and antagonist models, as well as MMP2 knockdown mice.

Main Results:

  • Elevated levels of C3a, C4a, and C5a were observed in TAD patients and mouse models.
  • C3a receptor (C3aR) expression increased in smooth muscle cells of dissected aortas.
  • C3aR knockout and C3aR antagonist treatment significantly reduced TAD formation and rupture.
  • The C3a-C3aR axis regulates matrix metalloproteinase 2 (MMP2) expression, a key factor in TAD development.

Conclusions:

  • The C3a-C3aR axis plays a critical role in the pathogenesis of thoracic aortic dissection.
  • Targeting the C3a-C3aR pathway, potentially through MMP2 regulation, offers a promising therapeutic strategy for TAD.

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