Stoyanova S, Bulgarelli-Leva G, Kirsch C, Hanck T, Klinger R, Wetzker R, Wymann M P
Institute of Biochemistry II, Medical Faculty of the Friedrich Schiller University, Löbderstrasse 3, D-07743 Jena, Federal Republic of Germany.
Biochem J. 1997 Jun 1;324 ( Pt 2)(Pt 2):489-95. doi: 10.1042/bj3240489.
Signalling via seven transmembrane helix receptors can lead to a massive increase in cellular PtdIns(3,4,5)P3, which is critical for the induction of various cell responses and is likely to be produced by a trimeric G-protein-sensitive phosphoinositide 3-kinase (PI3Kgamma). We show here that PI3Kgamma is a bifunctional lipid kinase and protein kinase, and that both activities are inhibited by wortmannin at concentrations equal to those affecting the p85/p110alpha heterodimeric PI3K (IC50 approx. 2 nM). The binding of wortmannin to PI3Kgamma, as detected by anti-wortmannin antisera, closely followed the inhibition of the kinase activities. Truncation of more than the 98 N-terminal amino acid residues from PI3Kgamma produced proteins that were inactive in wortmannin binding and kinase assays. This suggests that regions apart from the core catalytic domain are important in catalysis and inhibitor interaction. The covalent reaction of wortmannin with PI3Kgamma was prevented by preincubation with phosphoinositides, ATP and its analogues adenine and 5'-(4-fluorosulphonylbenzoyl)adenine. Proteolytic analysis of wortmannin-prelabelled PI3Kgamma revealed candidate wortmannin-binding peptides around Lys-799. Replacement of Lys-799 by Arg through site-directed mutagenesis aborted the covalent reaction with wortmannin and the lipid kinase and protein kinase activities completely. The above illustrates that Lys-799 is crucial to the phosphate transfer reaction and wortmannin reactivity. Parallel inhibition of the PI3Kgamma-associated protein kinase and lipid kinase by wortmannin and by the Lys-799-->Arg mutation reveals that both activities are inherent in the PI3Kgamma polypeptide.
通过七次跨膜螺旋受体发出的信号可导致细胞中磷脂酰肌醇-3,4,5-三磷酸(PtdIns(3,4,5)P3)大量增加,这对于诱导各种细胞反应至关重要,并且可能由三聚体G蛋白敏感的磷脂酰肌醇3激酶(PI3Kγ)产生。我们在此表明,PI3Kγ是一种双功能脂质激酶和蛋白激酶,并且这两种活性在与影响p85/p110α异二聚体PI3K(IC50约为2 nM)相同的浓度下都被渥曼青霉素抑制。通过抗渥曼青霉素抗血清检测到的渥曼青霉素与PI3Kγ的结合,与激酶活性的抑制密切相关。从PI3Kγ中截去超过98个N端氨基酸残基产生的蛋白质在渥曼青霉素结合和激酶测定中无活性。这表明核心催化结构域之外的区域在催化和抑制剂相互作用中很重要。通过与磷脂酰肌醇、ATP及其类似物腺嘌呤和5'-(4-氟磺酰基苯甲酰基)腺嘌呤预孵育,可防止渥曼青霉素与PI3Kγ的共价反应。对渥曼青霉素预标记的PI3Kγ进行蛋白酶解分析,揭示了围绕赖氨酸-799的候选渥曼青霉素结合肽。通过定点诱变将赖氨酸-799替换为精氨酸,使与渥曼青霉素的共价反应以及脂质激酶和蛋白激酶活性完全丧失。上述情况表明赖氨酸-799对磷酸转移反应和渥曼青霉素反应性至关重要。渥曼青霉素和赖氨酸-799→精氨酸突变对PI3Kγ相关蛋白激酶和脂质激酶的平行抑制表明,这两种活性都存在于PI3Kγ多肽中。