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动力学和结构分析揭示了磷脂酰肌醇3激酶α中对催化和底物识别至关重要的残基。

Kinetic and structural analyses reveal residues in phosphoinositide 3-kinase α that are critical for catalysis and substrate recognition.

作者信息

Maheshwari Sweta, Miller Michelle S, O'Meally Robert, Cole Robert N, Amzel L Mario, Gabelli Sandra B

机构信息

From the Department of Biophysics and Biophysical Chemistry, Johns Hopkins University School of Medicine, Baltimore, Maryland 21205.

Department of Oncology, Johns Hopkins University School of Medicine, Baltimore, Maryland 21287.

出版信息

J Biol Chem. 2017 Aug 18;292(33):13541-13550. doi: 10.1074/jbc.M116.772426. Epub 2017 Jul 4.

Abstract

Phosphoinositide 3-kinases (PI3Ks) are ubiquitous lipid kinases that activate signaling cascades controlling cell survival, proliferation, protein synthesis, and vesicle trafficking. PI3Ks have dual kinase specificity: a lipid kinase activity that phosphorylates the 3'-hydroxyl of phosphoinositides and a protein-kinase activity that includes autophosphorylation. Despite the wealth of biochemical and structural information on PI3Kα, little is known about the identity and roles of individual active-site residues in catalysis. To close this gap, we explored the roles of residues of the catalytic domain and the regulatory subunit of human PI3Kα in lipid and protein phosphorylation. Using site-directed mutagenesis, kinetic assays, and quantitative mass spectrometry, we precisely mapped key residues involved in substrate recognition and catalysis by PI3Kα. Our results revealed that Lys-776, located in the P-loop of PI3Kα, is essential for the recognition of lipid and ATP substrates and also plays an important role in PI3Kα autophosphorylation. Replacement of the residues His-936 and His-917 in the activation and catalytic loops, respectively, with alanine dramatically changed PI3Kα kinetics. Although H936A inactivated the lipid kinase activity without affecting autophosphorylation, H917A abolished both the lipid and protein kinase activities of PI3Kα. On the basis of these kinetic and structural analyses, we propose possible mechanistic roles of these critical residues in PI3Kα catalysis.

摘要

磷脂酰肌醇3激酶(PI3Ks)是普遍存在的脂质激酶,可激活控制细胞存活、增殖、蛋白质合成和囊泡运输的信号级联反应。PI3Ks具有双重激酶特异性:一种脂质激酶活性,可磷酸化磷脂酰肌醇的3'-羟基;另一种蛋白激酶活性,包括自磷酸化。尽管关于PI3Kα有丰富的生化和结构信息,但对于催化过程中各个活性位点残基的身份和作用却知之甚少。为了填补这一空白,我们研究了人PI3Kα催化结构域和调节亚基的残基在脂质和蛋白质磷酸化中的作用。通过定点诱变、动力学测定和定量质谱分析,我们精确绘制了PI3Kα识别底物和催化过程中涉及的关键残基。我们的结果表明,位于PI3Kα P环中的赖氨酸-776对于脂质和ATP底物的识别至关重要,并且在PI3Kα自磷酸化中也起着重要作用。分别用丙氨酸替换激活环和催化环中的组氨酸-936和组氨酸-917残基,显著改变了PI3Kα的动力学。虽然H936A使脂质激酶活性失活但不影响自磷酸化,而H917A则消除了PI3Kα的脂质和蛋白激酶活性。基于这些动力学和结构分析,我们提出了这些关键残基在PI3Kα催化中的可能作用机制。

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