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Published on: December 3, 2020
Sonodynamic Therapy Promotes Efferocytosis via CD47 Down-Regulation in Advanced Atherosclerotic Plaque
Yang Cao1, Jianting Yao2, Weiwei Gao1
1Department of Cardiology, The First Affiliated Hospital, Harbin Medical University.
Insights
Sinoporphyrin sodium-mediated sonodynamic therapy (DVDMS-SDT) enhances efferocytosis in atherosclerosis by reducing CD47 expression. This therapy reduces inflammation and inhibits the progression of atherosclerotic plaques.
Area of Science:
- Cardiovascular Research
- Immunology
- Biomedical Engineering
Background:
- Atherosclerosis, a major cause of cardiovascular disease, is worsened by impaired efferocytosis of pathological cells.
- Effective clearance of apoptotic cells is crucial for reducing inflammation and necrotic core formation in atherosclerotic lesions.
Purpose of the Study:
- To investigate the mechanism by which sinoporphyrin sodium-mediated sonodynamic therapy (DVDMS-SDT) enhances efferocytosis in atherosclerosis.
- To determine the role of CD47 in DVDMS-SDT-mediated efferocytosis promotion.
Main Methods:
- DVDMS-SDT was applied to balloon-denuded rabbits in vivo and to cultured macrophage foam cells in vitro.
- Changes in atherosclerotic lesion composition, macrophage efferocytosis, inflammation, and CD47 expression were analyzed.
Main Results:
- DVDMS-SDT significantly enhanced macrophage efferocytosis and attenuated inflammation in rabbit atherosclerotic lesions.
- The therapy inhibited atherosclerosis progression, reduced macrophage content, and increased smooth muscle cell content.
- Mechanistically, DVDMS-SDT induced apoptosis in foam cells, leading to caspase-3 activation and reduced CD47 expression, which was essential for enhanced efferocytosis.
Conclusions:
- DVDMS-SDT effectively promotes efferocytosis in advanced atherosclerotic plaques by downregulating CD47 expression.
- This mechanism reduces inflammation and inhibits atherosclerosis progression, offering a potential therapeutic strategy.
Abstract:
Atherosclerotic cerebrocardiovascular disease is the major cause of acute ischemic diseases in humans. Impaired efferocytosis contributes to the progression of atherosclerosis. Pathological and apoptotic cells fail to undergo effective phagocytic clearance, leading to increased inflammation and necrotic core formation. Previously, we reported that 5-aminolevulinic acid-mediated sonodynamic therapy (SDT) promotes apoptotic cell efferocytosis via ATP release in atherosclerotic plaques. However, the exact signaling molecule involved in this process is still unknown. In the present study, sinoporphyrin sodium-mediated SDT (DVDMS-SDT) was applied to balloon-denuded rabbits in vivo to observe changes in the composition of atherosclerotic lesions. Cultured human THP-1-derived and mouse peritoneal macrophage-derived foam cells were used for in vitro mechanistic studies. Three days after DVDMS-SDT treatment, macrophage efferocytosis was significantly enhanced whereas local inflammation was attenuated in rabbit atherosclerotic lesions. At days 7 and 28, the histopathological analysis showed that DVDMS-SDT inhibited the progression of atherosclerosis, reduced the macrophage content, and increased the smooth muscle cell content in a time-dependent manner. Mechanistically, DVDMS-SDT activated mitochondria-caspase apoptosis in foam cells. Interestingly, activated by DVDMS-SDT, caspase-3 a key factor of apoptosis, reduced the expression of the anti-phagocytic molecule CD47 in foam cells. Of great importance, the promotion of macrophage efferocytosis by DVDMS-SDT can be eliminated by the overexpression of CD47. Overall, these results demonstrated that DVDMS-SDT effectively boosted efferocytosis via deactivation of CD47 expression, thereby reducing inflammation in advanced atherosclerotic plaques.
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