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胞质分裂调控因子2调节细胞骨架肌动蛋白动力学,对血小板的生成和功能至关重要。

Dedicator of cytokinesis 2 regulates cytoskeletal actin dynamics and is essential for platelet biogenesis and functions.

作者信息

Ji Jiani, Xu Xulin, Zhang Lili, Liu Shuang, Chen Jiayi, Gao Huihui, Xiang Limin, Li Yaofeng, Xu Hui, Chen Yaobing, Xiang Huiqin, Chen Shuai, Han Yunyun, Tang Zhaoming, Wang Xuanbin, Shi Xiaofeng, Mao Jianhua, Xi Xiaodong, Wang Jinyu, Fang Chao

机构信息

Department of Pharmacology, School of Basic Medicine, Tongji Medical College and State Key Laboratory for Diagnosis and Treatment of Severe Zoonotic Infectious Diseases, Huazhong University of Science and Technology, Wuhan, Hubei 430030, China.

Key Laboratory of Chinese Medicinal Resource and Chinese Herbal Compound of the Ministry of Education, Wuhan, Hubei 430065, China.

出版信息

Cardiovasc Res. 2025 Apr 29;121(3):479-491. doi: 10.1093/cvr/cvaf009.

Abstract

AIMS

Dedicator of cytokinesis 2 (DOCK2), a member of the DOCK family of guanine nucleotide exchange factors that specifically act on the Rho GTPases including Rac and Cdc42, plays pivotal roles in the regulation of leukocyte homeostasis. However, its functions in platelets remain unknown.

METHODS AND RESULTS

Using mice with genetic deficiency of DOCK2 (Dock2-/-), we showed that Dock2-/- mice exhibited a macrothrombocytopenic phenotype characterized as decreased platelet count and enlarged platelet size by transmission electron microscopy. Dock2-/- megakaryocytes had reduced polyploidization determined by propidium iodide staining and defective proplatelet formation by confocal microscopy. DOCK2 deficiency led to enriched F-actin level in resting platelets but defective F-actin assembly in activated platelets by phalloidin staining, and mechanistically, attenuated activity of Rac1, unchanged Cdc42 but enhanced RhoA measured by immunoprecipitation of GTP-bound proteins. Immunoblotting analysis showed that Dock2-/- platelets had reduced immunoreceptor tyrosine-based activation motif signaling downstream of impaired clustering of GPVI receptors determined by stochastic optical reconstruction microscopy. Further, DOCK2 deficiency resulted in reduced density and branches of fibrin fibres in the clots in vitro and diminished platelet aggregation in a microfluidic chamber ex vivo. Dock2-/- platelets exhibited impaired incorporation into a growing thrombus in cremaster arterioles following allogeneic transfusion into a WT recipient and defective heterotypic interactions with neutrophils in cremaster venules as reflected by decreased platelet-neutrophil aggregate formation in vitro under stirring condition. In addition, myeloid deficiency of DOCK2 caused prolonged tail bleeding times. Finally, pharmacological inhibition of DOCK2 using a small-molecular inhibitor CPYPP suppressed actin dynamics leading to impaired responses to GPVI activation and defects in platelet spreading, clot retraction, and thrombus formation.

CONCLUSION

DOCK2 plays critical roles in the regulation of platelet biogenesis and functions by controlling Rac1 activity and cytoskeletal actin dynamics and may be a novel target for the treatment of thrombotic and thrombo-inflammatory diseases.

摘要

目的

胞质分裂 dedicator 2(DOCK2)是鸟嘌呤核苷酸交换因子 DOCK 家族的成员,它特异性作用于包括 Rac 和 Cdc42 在内的 Rho GTP 酶,在白细胞稳态调节中起关键作用。然而,其在血小板中的功能尚不清楚。

方法与结果

利用 DOCK2 基因缺陷小鼠(Dock2-/-),我们发现 Dock2-/-小鼠表现出大血小板减少的表型,其特征为血小板计数减少,透射电子显微镜显示血小板尺寸增大。通过碘化丙啶染色确定,Dock2-/-巨核细胞的多倍体化减少,共聚焦显微镜显示前血小板形成存在缺陷。DOCK2 缺陷导致静息血小板中 F-肌动蛋白水平升高,但鬼笔环肽染色显示活化血小板中 F-肌动蛋白组装存在缺陷,从机制上讲,通过免疫沉淀结合 GTP 的蛋白测量,Rac1 活性减弱,Cdc42 不变但 RhoA 增强。免疫印迹分析表明,通过随机光学重建显微镜确定 Dock2-/-血小板中 GPVI 受体聚集受损下游基于免疫受体酪氨酸的激活基序信号传导减少。此外,DOCK2 缺陷导致体外凝块中纤维蛋白纤维密度和分支减少,离体微流控腔室中血小板聚集减少。Dock2-/-血小板在同种异体输血给野生型受体后在提睾小动脉中整合到生长血栓中的能力受损,并且在提睾小静脉中与中性粒细胞的异型相互作用存在缺陷,这在搅拌条件下体外血小板-中性粒细胞聚集体形成减少中得到体现。此外,DOCK2 的髓系缺陷导致尾部出血时间延长。最后,使用小分子抑制剂 CPYPP 对 DOCK2 进行药理抑制会抑制肌动蛋白动力学,导致对 GPVI 激活的反应受损以及血小板铺展、凝块收缩和血栓形成缺陷。

结论

DOCK2 通过控制 Rac1 活性和细胞骨架肌动蛋白动力学在血小板生成和功能调节中起关键作用,可能是治疗血栓形成和血栓炎症性疾病的新靶点。

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