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非受体型富含脯氨酸的蛋白酪氨酸激酶 2(Pyk2)可能是川崎病的治疗靶点。

Non-receptor type, proline-rich protein tyrosine kinase 2 (Pyk2) is a possible therapeutic target for Kawasaki disease.

机构信息

Department of Pediatric Cardiology and Nephrology, Graduate School of Medical Science, Kyoto Prefectural University of Medicine, Japan.

Department of Pediatric Cardiology and Nephrology, Graduate School of Medical Science, Kyoto Prefectural University of Medicine, Japan.

出版信息

Clin Immunol. 2017 Jun;179:17-24. doi: 10.1016/j.clim.2017.01.013. Epub 2017 Feb 3.

Abstract

Kawasaki disease (KD) is a paediatric vasculitis whose pathogenesis remains unclear. Based on experimental studies using a mouse model for KD, we report here that proline-rich protein tyrosine kinase 2 (Pyk2) plays a critical role in the onset of KD-like murine vasculitis. The mouse model for KD was prepared by administrating a Candida albicans water-soluble fraction (CAWS). Unlike CAWS-treated WT mice, CAWS-treated Pyk2-Knockout (Pyk2-KO) mice did not develop apparent vasculitis. A sustained increase in MIG/CXCL9 and IP-10/CXCL10, both of which have potent angiostatic activity, was observed in CAWS-treated Pyk2-KO mice. CAWS-induced activation of STAT3, which negatively regulates the expression of these chemokines, was also attenuated in macrophages derived from Pyk2-KO mice. The present study suggests that defects in Pyk2 suppress KD-like experimental vasculitis, presumably through CXCL9- and CXCL10-dependent interference with neo-angiogenesis. Since Pyk2-KO mice show no life-threatening phenotype, Pyk2 may be a promising therapeutic molecular target for KD.

摘要

川崎病(KD)是一种儿科血管炎,其发病机制尚不清楚。基于使用 KD 小鼠模型的实验研究,我们在此报告,富含脯氨酸的蛋白酪氨酸激酶 2(Pyk2)在 KD 样小鼠血管炎的发病中起关键作用。KD 的小鼠模型通过给予白色念珠菌水溶性部分(CAWS)来制备。与 CAWS 处理的 WT 小鼠不同,CAWS 处理的 Pyk2 敲除(Pyk2-KO)小鼠没有明显的血管炎。在 CAWS 处理的 Pyk2-KO 小鼠中观察到 MIG/CXCL9 和 IP-10/CXCL10 的持续增加,这两种趋化因子都具有很强的血管生成抑制活性。CAWS 诱导的 STAT3 激活,其负调节这些趋化因子的表达,在源自 Pyk2-KO 小鼠的巨噬细胞中也减弱。本研究表明,Pyk2 的缺陷抑制了 KD 样实验性血管炎,可能是通过 CXCL9 和 CXCL10 依赖性干扰新血管生成。由于 Pyk2-KO 小鼠没有危及生命的表型,因此 Pyk2 可能是 KD 的有前途的治疗性分子靶标。

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