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Cathepsin K activity controls injury-related vascular repair in mice
Lina Hu1, Xian Wu Cheng, Haizhen Song
1Department of Community Healthcare and Geriatrics, Nagoya University Graduate School of Medicine, 65 Tsuruma-cho, Showa-ku, Nagoya 466-8550, Japan. xianwu@med.nagoya-u.ac.jp or Kuzuya@med.nagoya-u.ac.jp.
Abstract:
Cathepsin K (CatK) is one of the most potent mammalian collagenases. We showed previously the increased expression of CatK in human and animal atherosclerotic lesions. Here, we hypothesized that ablation of CatK mitigates injury-induced neointimal hyperplasia. Male wild-type (CatK(+/+)) and CatK-deficient (CatK(-/-)) mice underwent ligation or a combination of ligation and polyethylene cuff-replacement injuries to the right common carotid artery just proximal to its bifurcation, and they were then processed for morphological and biochemical studies at specific time points. On operative day 28, CatK(-/-) significantly reduced neointimal formation and neovessel formation in both single- and combination-injured arteries compared with the Cat K(+/+) mice. At early time points, CatK(-/-) reduced the lesion macrophage contents and medial smooth muscle cell proliferation, the mRNA levels of monocyte chemoattractant protein-1, toll-like receptor-2, toll-like receptor-4, chemokine ligand-12, and the gelatinolytic activity related to matrix metalloproteinase-2/-9. An aorta-explant assay revealed that smooth muscle cell movement was impaired in the CatK(-/-) mice compared with the CatK(+/+) mice. In addition, the smooth muscle cells and macrophages from CatK(-/-) mice had less invasive ability through a reconstituted basement membrane barrier. This vasculoprotective effect was mimicked by Cat inhibition with trans-epoxysuccinyl-L-leucylamido-{4-guanidino} butane (E64d). These results demonstrate an essential role of CatK in neointimal lesion formation in response to injury, possibly via the reduction of toll-like receptor-2/-4-mediated inflammation and smooth muscle cell proliferation, suggesting a novel therapeutic strategy for the control of endovascular treatment-related restenosis by regulating CatK activity.
Insights
Ablation of Cathepsin K (CatK) significantly reduced neointimal hyperplasia and inflammation in mouse arteries after injury. Inhibiting CatK offers a potential therapeutic strategy for restenosis following endovascular treatments.
Area of Science:
- Vascular Biology
- Biochemistry
- Pathology
Background:
- Cathepsin K (CatK) is a potent collagenase implicated in atherosclerotic lesions.
- Increased CatK expression is observed in human and animal atherosclerotic plaques.
Purpose of the Study:
- To investigate the role of CatK in injury-induced neointimal hyperplasia.
- To determine if ablating CatK mitigates neointimal lesion formation and associated cellular processes.
Main Methods:
- Utilized wild-type (CatK(+/+)) and CatK-deficient (CatK(-/-)) mice subjected to carotid artery ligation and cuff injuries.
- Performed morphological and biochemical analyses at various time points post-injury.
- Assessed smooth muscle cell migration and invasion using aorta-explant and basement membrane assays.
Main Results:
- CatK deficiency significantly reduced neointimal and neovessel formation in injured arteries.
- CatK(-/-) mice showed decreased macrophage content, smooth muscle cell proliferation, and specific inflammatory mRNA levels (TLR-2, TLR-4, CXCL12).
- Smooth muscle cell migration and invasion were impaired in CatK(-/-) mice, an effect mimicked by CatK inhibition with E64d.
Conclusions:
- Cathepsin K plays a critical role in neointimal lesion development following vascular injury.
- Reducing CatK activity may attenuate inflammation and smooth muscle cell proliferation, offering a therapeutic target for restenosis.
- CatK inhibition presents a potential strategy to manage complications of endovascular treatments.

