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Binding of a designed substrate analogue to diisopropyl fluorophosphatase: Implications for the phosphotriesterase mechanism

机译:设计的底物类似物与二异丙基氟磷酸酶的结合:对磷酸三酯酶机制的启示

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摘要

A wide range of organophosphorus nerve agents, including Soman, Sarin, and Tabun is efficiently hydrolyzed by the phosphotriesterase enzyme diisopropyl fluorophosphatase (DFPase) from Loligo vulgaris. To date, the lack of available inhibitors of DFPase has limited studies on its mechanism. The de novo design, synthesis, and characterization of substrate analogues acting as competitive inhibitors of DFPase are reported. The 1.73 angstrom crystal structure of O, O-dicyclopentylphosphoroamidate (DcPPA) bound to DFPase shows a direct coordination of the phosphoryl oxygen by the catalytic calcium ion. The binding mode of this substrate analogue suggests a crucial role for electrostatics in the orientation of the ligand in the active site. This interpretation is further supported by the crystal structures of double mutants D229N/N120D and D229N/N175D, designed to reorient the electrostatic environment around the catalytic calcium. The structures show no differences in their calcium coordinating environment, although they are enzymatically inactive. Additional double mutants E21Q/N120D and E21Q/N175D are also inactive. On the basis of these crystal structures and kinetic and mutagenesis data as well as isotope labeling we propose a new mechanism for DFPase activity. Calcium coordinating residue D229, in concert with direct substrate activation by the metal ion, renders the phosphorus atom of the substrate susceptible for attack of water, through generation of a phosphoenzyme intermediate. Our proposed mechanism may be applicable to the structurally related enzyme paraoxonase (PON), a component of high-density lipoprotein (HDL).
机译:普通的Loligo的磷酸三酯酶二异丙基氟磷酸酶(DFPase)可以有效地水解包括Soman,Sarin和Tabun在内的多种有机磷神经药。迄今为止,缺乏可用的DFPase抑制剂对其机制的研究有限。报道了从头设计,合成和表征充当DFPase竞争性抑制剂的底物类似物。与DFPase结合的O,O-二环戊基磷酸氨基甲酸酯(DcPPA)的1.73埃晶体结构显示了磷酸钙氧通过催化钙离子的直接配位。该底物类似物的结合模式表明静电在活性位点中配体的取向中起着至关重要的作用。双重突变体D229N / N120D和D229N / N175D的晶体结构进一步支持了这种解释,该突变体旨在重新定向催化钙周围的静电环境。尽管它们在酶学上是无活性的,但这些结构在它们的钙配位环境中没有差异。另外的双突变体E21Q / N120D和E21Q / N175D也没有活性。基于这些晶体结构,动力学和诱变数据以及同位素标记,我们提出了DFPase活性的新机制。钙配位残基D229,与金属离子对底物的直接活化作用相结合,通过产生磷酸酶中间体,使底物的磷原子易受水的侵蚀。我们提出的机制可能适用于结构相关的酶对氧磷酶(PON),这是高密度脂蛋白(HDL)的组成部分。

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