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Mechanism for Aciviicin Inactivation of Triad Glutamine Amidotransferases

机译:三联谷氨酰胺转移酶阿西维星失活的机制

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Acivicin [(as,5S)-0.-amino-3-chloro-4,5-dihydro-5-isoxazoleacetic acid] was investigated as an inhibitor of the triad glutamine amidotransferases, IGP synthase and GMP synthetase. Nucleophilic substitution of the chlorine atom in acivicin results in the formation of an imine-thioether adduct at the active site cysteine. Cys 77 was identified as the site of modification in the heterodimeric IGPS from Escherichia coli (HisHF)by tryptic digest and FARMS. Distinctions in the glutaminase domains oflGPS from E. coli, the bifunctional protein from Saccharomyces cerevisiae (HIS7), and E. coli GMPS were revealed by the differential rates of inactivation. While the ammonia-dependent turnover was unaffected by acivicin, the glutamine-dependent reaction was inhibited with unit stoichiometry .In analogy to the conditional glutaminase activity seen in IGPS and GMPS,the rates of inactivation were accelerated ~25- fold when a nucleotide substrate (or analogue) was present. The specificity (kinactlK;aPP) for acivicin is on the same order of magnitude as the natural substrate glutamine in all three enzymes. The (as,5R) diastereomer of acivicin was tested under identical conditions as acivicin and showed little inhibitory effect on the enzymes indicating that acivicin binds in the glutamine reactive site in a specific conformation. The data indicate that acivicin undergoes a glutamine amidotransferase mechanism-based covalent bond formation in the presence of nucleotide substrates or products. Acivicin and its (as,5R) diastereomer were modeled in the glutaminase active site of GMPS and CPS to confirm that the binding orientation of the dihydroisoxazole ring is identical in all three triad glutamine amidotransferases. Stabilization of the imine-thioether intermediate by the oxyanion hole in triad glutamine amidotransferases appears to confer the high degree of specificity for acivicin inhibition and relates to a common mechanism for inactivation.
机译:研究了阿西维奇[(as,5S)-0.-氨基-3-氯-4,5-二氢-5-异恶唑乙酸]作为三联谷氨酰胺转移酶,IGP合酶和GMP合成酶的抑制剂。阿西维汀中氯原子的亲核取代导致在活性位点半胱氨酸上形成亚胺-硫醚加合物。通过胰蛋白酶消化和FARMS,Cys 77被鉴定为大肠杆菌(HisHF)异二聚体IGPS的修饰位点。通过灭活的不同速率揭示了来自大肠杆菌的lGPS的谷氨酰胺酶结构域,来自酿酒酵母(HIS7)的双功能蛋白和大肠杆菌GMPS的区别。虽然阿西维汀不影响氨依赖的周转率,但单位化学计量学可抑制谷氨酰胺依赖的反应。类似于IGPS和GMPS中的条件谷氨酰胺酶活性,当核苷酸底物(或类似物)。阿西维奇的特异性(kinactlK; aPP)与所有三种酶中天然底物谷氨酰胺的数量级相同。在与阿西维林相同的条件下测试了阿西维林的(as,5R)非对映异构体,对酶的抑制作用很小,表明阿维西林以特定构象结合在谷氨酰胺反应位点上。数据表明,在核苷酸底物或产物存在下,阿西维奇经历了基于谷氨酰胺酰胺转移酶机制的共价键形成。在GMPS和CPS的谷氨酰胺酶活性位点中模拟了阿西维奇及其(as,5R)非对映异构体,以确认在所有三个三联体谷氨酰胺酰胺转移酶中二氢异恶唑环的结合方向相同。三联体谷氨酰胺酰胺转移酶中的氧阴离子孔对亚胺-硫醚中间体的稳定作用似乎赋予了阿西维奇抑制的高度特异性,并且涉及灭活的常见机制。

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