Vanhaesebroeck B, Higashi K, Raven C, Welham M, Anderson S, Brennan P, Ward S G, Waterfield M D
Ludwig Institute for Cancer Research, 91 Riding House Street, London W1P 8BT, UK.
EMBO J. 1999 Mar 1;18(5):1292-302. doi: 10.1093/emboj/18.5.1292.
Phosphoinositide 3-kinases (PI3Ks) are lipid kinases which also possess an in vitro protein kinase activity towards themselves or their adaptor proteins. The physiological relevance of these phosphorylations is unclear at present. Here, the protein kinase activity of the tyrosine kinase-linked PI3K, p110delta, is characterized and its functional impact assessed. In vitro autophosphorylation of p110delta completely down-regulates its lipid kinase activity. The single site of autophosphorylation was mapped to Ser1039 at the C-terminus of p110delta. Antisera specific for phospho-Ser1039 revealed a very low level of phosphorylation of this residue in cell lines. However, p110delta that is recruited to activated receptors (such as CD28 in T cells) shows a time-dependent increase in Ser1039 phosphorylation and a concomitant decrease in associated lipid kinase activity. Treatment of cells with okadaic acid, an inhibitor of Ser/Thr phosphatases, also dramatically increases the level of Ser1039-phosphorylated p110delta. LY294002 and wortmannin blocked these in vivo increases in Ser1039 phosphorylation, consistent with the notion that PI3Ks, and possibly p110delta itself, are involved in the in vivo phosphorylation of p110delta. In summary, we show that PI3Ks are subject to regulatory phosphorylations in vivo similar to those identified under in vitro conditions, identifying a new level of control of these signalling molecules.
磷酸肌醇3激酶(PI3Ks)是脂质激酶,它们在体外还对自身或其衔接蛋白具有蛋白激酶活性。目前尚不清楚这些磷酸化作用的生理相关性。在此,对酪氨酸激酶连接的PI3K p110δ的蛋白激酶活性进行了表征,并评估了其功能影响。p110δ的体外自磷酸化完全下调了其脂质激酶活性。自磷酸化的单个位点定位于p110δ C末端的Ser1039。针对磷酸化Ser1039的抗血清显示该残基在细胞系中的磷酸化水平非常低。然而,被募集到活化受体(如T细胞中的CD28)的p110δ显示Ser1039磷酸化呈时间依赖性增加,同时相关脂质激酶活性降低。用丝氨酸/苏氨酸磷酸酶抑制剂冈田酸处理细胞,也显著增加了Ser1039磷酸化的p110δ水平。LY294002和渥曼青霉素阻断了Ser1039磷酸化的体内增加,这与PI3Ks以及可能p110δ本身参与p110δ体内磷酸化的观点一致。总之,我们表明PI3Ks在体内受到类似于体外条件下鉴定的调节性磷酸化作用,确定了这些信号分子的一个新的控制水平。