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Quantum mechanics/molecular mechanics modeling of fatty acid amide hydrolase reactivation distinguishes substrate from irreversible covalent inhibitors

机译:量子力学/分子力学的脂肪酸建模酰胺水解酶再激活区别于不可逆共价抑制剂基板

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摘要

Carbamate and urea derivatives are important classes of fatty acid amide hydrolase (FAAH) inhibitors that carbamoylate the active-site nucleophile Ser241. In the present work, the reactivation mechanism of carbamoylated FAAH is investigated by means of a quantum mechanics/molecular mechanics (QM/MM) approach. The potential energy surfaces for decarbamoylation of FAAH covalent adducts, deriving from the O-aryl carbamate URB597 and from the N-piperazinylurea JNJ1661610, were calculated and compared to that for deacylation of FAAH acylated by the substrate oleamide. Calculations show that a carbamic group bound to Ser241 prevents efficient stabilization of transition states of hydrolysis, leading to large increments in the activation barrier. Moreover, the energy barrier for the piperazine carboxylate was significantly lower than that for the ciclohexyl carbamate derived from URB597. This is consistent with experimental data showing slowly reversible FAAH inhibition for the N-piperazinylurea inhibitor and irreversible inhibition for URB597.
机译:氨基甲酸酯和脲衍生物是重要的一类脂肪酸酰胺水解酶(FAAH)抑制剂,可将活性位点亲核试剂Ser241氨基甲酸酯化。在目前的工作中,通过量子力学/分子力学(QM / MM)方法研究了氨基甲酰化FAAH的再活化机理。计算了衍生自O-芳基氨基甲酸酯URB597和N-哌嗪基脲JNJ1661610的FAAH共价加合物去氨甲酰化的势能面,并将其与被底物油酰胺酰化的FAAH进行脱酰作用的势能面进行了比较。计算表明,与Ser241结合的氨基甲酸酯基团阻止了水解过渡态的有效稳定,从而导致活化势垒大幅增加。此外,哌嗪羧酸盐的能垒显着低于衍生自URB597的氨基甲酸环己基酯的能垒。这与显示N-哌嗪基脲抑制剂缓慢可逆的FAAH抑制和URB597不可逆抑制的实验数据一致。

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