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大肠杆菌腺苷酸环化酶复合物:磷酸转移酶系统(PTS)蛋白对核苷酸刺激的需求。

The Escherichia coli adenylyl cyclase complex: requirement of PTS proteins for stimulation by nucleotides.

作者信息

Peterkofsky A, Seok Y J, Amin N, Thapar R, Lee S Y, Klevit R E, Waygood E B, Anderson J W, Gruschus J, Huq H

机构信息

Laboratory of Biochemical Genetics, National Heart, Lung and Blood Institute, Bethesda, Maryland 20892, USA.

出版信息

Biochemistry. 1995 Jul 18;34(28):8950-9. doi: 10.1021/bi00028a003.

Abstract

GTP, as well as other nucleoside triphosphates, stimulates the activity of Escherichia coli adenylyl cyclase in permeable cells; the stimulatory effect is lost when the cells are disrupted by passage through a French pressure cell. These data suggested that the allosteric regulation by GTP of adenylyl cyclase activity requires an interaction of the enzyme with other protein factors. Strains deleted for genes encoding proteins of the phosphoenolpyruvate:sugar phosphotransferase system (PTS) failed to show an activity stimulation by GTP. With a view to localizing the site of interaction of GTP with the adenylyl cyclase complex, a variety of studies using purified PTS proteins were performed using the photoaffinity labeling reagent, 8-azidoGTP. These studies showed that 8-azidoGTP bound specifically to HPr. A species specificity study showed that the photoaffinity reagent labeled E. coli HPr but not HPr proteins from Mycoplasma capricolum or Bacillus subtilis. A variety of site-directed mutations of E. coli HPr were evaluated for interaction with GTP by photoaffinity labeling as well as by nuclear magnetic resonance; the results of these studies indicate that the lysine residues at positions 24 and 27, serine-46, the threonine at position 36, and the aspartate at position 69 are important for the binding of GTP to HPr. Molecular modeling has been used to formulate a model for the binding of GTP to HPr involving electrostatic interaction of the phosphate groups of the nucleotide with the side chains of lysine residues 27 and 45 and serine-43, interaction of the sugar with serine-46, and interaction of the base with lysine-24. From these data, it is hypothesized that the binding of GTP to HPr is required for the GTP-dependent stimulation of the activity of the adenylyl cyclase complex.

摘要

GTP以及其他核苷三磷酸可刺激通透细胞中大肠杆菌腺苷酸环化酶的活性;当细胞通过法国压榨器破碎后,这种刺激作用就会消失。这些数据表明,GTP对腺苷酸环化酶活性的变构调节需要该酶与其他蛋白质因子相互作用。缺失编码磷酸烯醇式丙酮酸:糖磷酸转移酶系统(PTS)蛋白质基因的菌株未能表现出GTP对其活性的刺激作用。为了确定GTP与腺苷酸环化酶复合物的相互作用位点,使用光亲和标记试剂8-叠氮基GTP对多种纯化的PTS蛋白进行了研究。这些研究表明,8-叠氮基GTP特异性结合到HPr上。一项物种特异性研究表明,该光亲和试剂标记大肠杆菌的HPr,但不标记山羊支原体或枯草芽孢杆菌的HPr蛋白。通过光亲和标记以及核磁共振对大肠杆菌HPr的多种定点突变体与GTP的相互作用进行了评估;这些研究结果表明,第24和27位的赖氨酸残基、丝氨酸-46、第36位的苏氨酸以及第69位的天冬氨酸对于GTP与HPr的结合很重要。分子建模已被用于构建GTP与HPr结合的模型,该模型涉及核苷酸的磷酸基团与赖氨酸残基27和45以及丝氨酸-43的侧链之间的静电相互作用、糖与丝氨酸-46之间的相互作用以及碱基与赖氨酸-24之间的相互作用。根据这些数据,推测GTP与HPr的结合是GTP依赖性刺激腺苷酸环化酶复合物活性所必需的。

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