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Kinetic and mechanistic analyses of new classes of inhibitors of two-component signal transduction systems using a coupled assay containing HpkA–DrrA from Thermotoga maritima

机译:使用HPKA-DRRA从Thermotoga Maritima含有HPKA-DRRA的双组分信号转导系统新类别抑制剂的动力学和机械分析

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Two-component signal transduction systems (TCSs) play fundamental roles in bacterial survival and pathogenesis and have been proposed as targets for the development of novel classes of antibiotics. A new coupled assay was developed and applied to analyse the kinetic mechanisms of three new kinds of inhibitors of TCS function. The assay exploits the biochemical properties of the cognate HpkA–DrrA histidine kinase–response regulator pair from Thermotoga maritima and allows multiple turnovers of HpkA, linear formation of phosphorylated DrrA, and Michaelis–Menten analysis of inhibitors. The assay was validated in several ways, including confirmation of competitive inhibition by adenosine 5′-β,γ-imidotriphosphate (AMP-PNP). The coupled assay, autophosphorylation and chemical cross-linking were used to determine the mechanisms by which several compounds inhibit TCS function. A cyanoacetoacetamide showed non-competitive inhibition with respect to ATP concentration in the coupled assay. The cyanoacetoacetamide also inhibited autophosphorylation of histidine kinases from other bacteria, indicating that the coupled assay could detect general inhibitors of histidine kinase function. Inhibition of HpkA autophosphorylation by this compound was probably caused by aggregation of HpkA, consistent with a previous model for other hydrophobic compounds. In contrast, ethodin was a potent inhibitor of the combined assay, did not inhibit HpkA autophosphorylation, but still led to aggregation of HpkA. These data suggest that ethodin bound to the HpkA kinase and inhibited transfer of the phosphoryl group to DrrA. A peptide corresponding to the phosphorylation site of DrrA appeared to inhibit TCS function by a mechanism similar to that of ethodin, except that autophosphorylation was inhibited at high peptide concentrations. The latter mechanism of inhibition of TCS function is unusual and its analysis demonstrates the utility of these approaches to the kinetic analyses of additional new classes of inhibitors of TCS function.
机译:双组分信号转导系统(TCS)在细菌存活和发病机制中起着基本作用,并且已被提出为新型抗生素类的发展的目标。开发了一种新的耦合测定并应用于分析TCS功能的三种新抑制剂的动力学机制。该测定利用来自Thermotoga Maritima的同源HPKA-DRRA组氨酸激酶 - 反应调节剂对的生化特性,并允许HPKA的多次失误,磷酸化DRRA的线性形成,以及抑制剂的MICHAELIS-MENTEN分析。以几种方式验证测定,包括通过腺苷5'-β,γ-酰亚胺二磷酸(AMP-PNP)的竞争性抑制的确认。耦合测定,自磷酸化和化学交联用于确定几种化合物抑制TCS功能的机制。氰基乙酰胺在偶联测定中的ATP浓度显示出不竞争的抑制。氰基乙酰胺还抑制来自其他细菌的组氨酸激酶的自磷酸化,表明偶联的测定可以检测组氨酸激酶功能的一般抑制剂。通过该化合物的HPKA自磷酸化抑制可能是由HPKA的聚集引起的,与以前的其他疏水化合物的模型一致。相比之下,Ethodin是联合测定的有效抑制剂,没有抑制HPKA自磷酸化,但仍然导致HPKA的聚集。这些数据表明,与HPKA激酶结合的Ethodin并抑制磷素组转移到DRRA。对应于DRRA的磷酸化位点的肽似乎通过类似于Ethodin的机制抑制TCS功能,不同之处在于在高肽浓度下抑制自磷酸化。后一种抑制TCS功能的机制是不寻常的,其分析证明了这些方法对额外新的TCS功能抑制剂的动力学分析的效用。

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