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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.
Abstract:
Thoracic aortic dissection (TAD), once ruptured, is devastating to patients, and no effective pharmaceutical therapy is available. Anaphylatoxins released by complement activation are involved in a variety of diseases. However, the role of the complement system in TAD is unknown. We found that plasma levels of C3a, C4a, and C5a were significantly increased in patients with TAD. Elevated circulating C3a levels were also detected in the developmental process of mouse TAD, which was induced by β-aminopropionitrile monofumarate (BAPN) treatment, with enhanced expression of C1q and properdin in mouse dissected aortas. These findings indicated activation of classical and alternative complement pathways. Further, expression of C3aR was obviously increased in smooth muscle cells of human and mouse dissected aortas, and knockout of C3aR notably inhibited BAPN-induced formation and rupture of TAD in mice. C3aR antagonist administered pre- and post-BAPN treatment attenuated the development of TAD. We found that C3aR knockout decreased matrix metalloproteinase 2 (MMP2) expression in BAPN-treated mice. Additionally, recombinant C3a stimulation enhanced MMP2 expression and activation in smooth muscle cells that were subjected to mechanical stretch. Finally, we generated MMP2-knockdown mice by in vivo MMP2 short hairpin RNA delivery using recombinant adeno-associated virus and found that MMP2 deficiency significantly reduced the formation of TAD. Therefore, our study suggests that the C3a-C3aR axis contributes to the development of TAD via regulation of MMP2 expression. Targeting the C3a-C3aR axis may represent a strategy for inhibiting the formation of TAD.
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