Boo Yong Chool
Department of Molecular Medicine, Kyungpook National University School of Medicine, Daegu 700-422, Korea.
Exp Mol Med. 2006 Feb 28;38(1):63-71. doi: 10.1038/emm.2006.8.
Fluid shear stress plays a critical role in vascular health and disease. While protein kinase A (PKA) has been implicated in shear-stimulated signaling events in endothelial cells, it remains unclear whether and how PKA is stimulated in response to shear stress. This issue was addressed in the present study by monitoring the phosphorylation of endogenous substrates of PKA. Shear stress stimulated the phosphorylation of cAMP responsive element binding protein (CREB) in a PKA-dependent manner. Western blot analysis using the antibody reactive against the consensus motif of PKA substrates detected two proteins, P135 and P50, whose phosphorylation was increased by shear stress. The phosphorylation of P135 was blocked by a PKA inhibitor, H89, but not by a phosphoinositide 3-kinase inhibitor, wortmannin. Expression of a constitutively active PKA subunit stimulated P135 phosphorylation, supporting the potential of P135 as a PKA substrate. P135 was identified as endothelial nitric oxide synthase (eNOS) by immunoprecipitation study. PKA appeared to mediate shear stress-stimulated eNOS activation. Shear stress stimulated intracellular translocation of PKA activity from 'soluble' to 'particulate' fractions without involving cellular cAMP increase. Taken together, this study suggests that shear stress stimulates PKA-dependent phosphorylation of target proteins including eNOS, probably by enhancing intracellular site-specific interactions between protein kinase and substrates.
流体剪切应力在血管健康与疾病中起着关键作用。虽然蛋白激酶A(PKA)已被证明参与内皮细胞中的剪切刺激信号事件,但尚不清楚PKA是否以及如何因剪切应力而被激活。本研究通过监测PKA内源性底物的磷酸化来解决这一问题。剪切应力以PKA依赖的方式刺激环磷酸腺苷反应元件结合蛋白(CREB)的磷酸化。使用针对PKA底物共有基序的抗体进行的蛋白质印迹分析检测到两种蛋白质,P135和P50,其磷酸化因剪切应力而增加。P135的磷酸化被PKA抑制剂H89阻断,但未被磷酸肌醇3激酶抑制剂渥曼青霉素阻断。组成型活性PKA亚基的表达刺激了P135的磷酸化,支持P135作为PKA底物的可能性。通过免疫沉淀研究确定P135为内皮型一氧化氮合酶(eNOS)。PKA似乎介导剪切应力刺激的eNOS激活。剪切应力刺激PKA活性从“可溶性”部分向“颗粒性”部分的细胞内转位,而不涉及细胞内环磷酸腺苷的增加。综上所述,本研究表明,剪切应力可能通过增强蛋白激酶与底物之间的细胞内位点特异性相互作用,刺激包括eNOS在内的靶蛋白的PKA依赖性磷酸化。