Pim1激酶通过在内皮型一氧化氮合酶的633位丝氨酸处进行磷酸化来促进血管生成。
Pim1 kinase promotes angiogenesis through phosphorylation of endothelial nitric oxide synthase at Ser-633.
作者信息
Chen Ming, Yi Bing, Zhu Ni, Wei Xin, Zhang Guan-Xin, Huang Shengdong, Sun Jianxin
机构信息
Center for Translational Medicine, Thomas Jefferson University, 1020 Locust Street, Room 286G, Philadelphia, PA 19107, USA.
Center for Translational Medicine, Thomas Jefferson University, 1020 Locust Street, Room 286G, Philadelphia, PA 19107, USA The Institute of Cardiothoracic Surgery, Changhai Hospital, Second Military Medical University, Shanghai 200433, China.
出版信息
Cardiovasc Res. 2016 Jan 1;109(1):141-50. doi: 10.1093/cvr/cvv250. Epub 2015 Nov 23.
AIMS
Posttranslational modification, such as phosphorylation, plays an essential role in regulating activation of endothelial NO synthase (eNOS). In the present study, we aim to determine whether eNOS could be phosphorylated and regulated by a novel serine/threonine-protein kinase Pim1 in vascular endothelial cells (ECs).
METHODS AND RESULTS
Using immunoprecipitation and protein kinase assays, we demonstrated that Pim1 specifically interacts with eNOS, which leads to a marked phosphorylation of eNOS at Ser-633 and increased production of nitric oxide (NO). Intriguingly, in response to VEGF stimulation, eNOS phosphorylation at Ser-633 exhibits two distinct phases: transient phosphorylation occurring between 0 and 60 min and sustained phosphorylation occurring between 2 and 24 h, which are mediated by the protein kinase A (PKA) and Pim1, respectively. Inhibiting Pim1 by either pharmacological inhibitor SMI-4a or the dominant-negative form of Pim1 markedly attenuates VEGF-induced tube formation, while Pim1 overexpression significantly increases EC tube formation and migration in an NO-dependent manner. Importantly, Pim1 expression and eNOS phosphorylation at Ser-633 were substantially decreased in high glucose-treated ECs and in the aorta of db/db diabetic mice. Increased Pim1 expression ameliorates impaired vascular angiogenesis in diabetic mice, as determined by an ex vivo aortic ring assay.
CONCLUSION
Our findings demonstrate Pim1 as a novel kinase that is responsible for the phosphorylation of eNOS at Ser-633 and enhances EC sprouting of aortic rings from diabetic mice, suggesting that Pim1 could potentially serve as a novel therapeutic target for revascularization strategies.
目的
翻译后修饰,如磷酸化,在内皮型一氧化氮合酶(eNOS)激活调节中起重要作用。在本研究中,我们旨在确定eNOS是否可被一种新型丝氨酸/苏氨酸蛋白激酶Pim1在血管内皮细胞(ECs)中磷酸化并调节。
方法与结果
通过免疫沉淀和蛋白激酶测定,我们证明Pim1特异性地与eNOS相互作用,这导致eNOS在Ser-633处显著磷酸化并增加一氧化氮(NO)的产生。有趣的是,响应于VEGF刺激,eNOS在Ser-633处的磷酸化表现出两个不同阶段:0至60分钟之间发生的瞬时磷酸化和2至24小时之间发生的持续磷酸化,分别由蛋白激酶A(PKA)和Pim1介导。用药物抑制剂SMI-4a或Pim1的显性负性形式抑制Pim1可显著减弱VEGF诱导的管形成,而Pim1过表达以NO依赖的方式显著增加EC管形成和迁移。重要的是,在高糖处理的ECs和db/db糖尿病小鼠的主动脉中,Pim1表达和eNOS在Ser-633处的磷酸化显著降低。通过离体主动脉环试验确定,增加Pim1表达可改善糖尿病小鼠受损的血管生成。
结论
我们的研究结果表明Pim1是一种新型激酶,负责eNOS在Ser-633处的磷酸化,并增强糖尿病小鼠主动脉环的EC发芽,表明Pim1可能潜在地作为血管重建策略的新型治疗靶点。
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