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Acetylcholinesterase active centre and gorge conformations analysed by combinatorial mutations and enantiomeric phosphonates

机译:通过组合突变和对映体膦酸酯分析的乙酰胆碱酯酶活性中心和峡谷构象

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A series of eight double and triple mutants of mouse acetylcholinesterase (AChE; EC 3.1.1.7), with substitutions corresponding to residues found largely within the butyrylcholinesterase (BChE; EC 3.1.1.8) active-centre gorge, was analysed to compare steady-state kinetic constants for substrate turnover and inhibition parameters for enantiomeric methylphosphonate esters. The mutations combined substitutions in the acyl pocket (Phe(295) -->Leu and Phe(297)-->Ile) with the choline-binding site (Tyr(317) --> Ala and Phe(338) --> Ala) and with a side chain (Glu(202) --> Gln) N-terminal to the active-site serine, Ser(203). The mutations affected catalysis by increasing K-m and decreasing k(cat), but these constants were typically affected by an order of magnitude or less, a relatively small change compared with the catalytic potential of AChE. To analyse the constraints on stereoselective phosphonylation, the mutant enzymes were reacted with a congeneric series of S-P- and R-P-methylphosphonates of known absolute stereochemistry. Where possible, the overall reaction rates were deconstructed into the primary constants for formation of the reversible complex and intrinsic phosphonylation. The multiple mutations greatly reduced the reaction rates of the more reactive S-P-methylphosphonates, whereas the rates of reaction with the R-P-methylphosphonates were markedly enhanced. With the phosphonates of larger steric bulk, the enhancement of rates for the R-P enantiomers, coupled with the reduction of the S-P enantiomers, was sufficient to invert markedly the enantiomeric preference. The sequence of mutations to enlarge the size of the AChE active-centre gorge, resembling in part the more spacious gorge of BChE, did not show an ordered conversion into BChE reactivity as anticipated for a rigid template. Rather, the individual aromatic residues may mutually interact to confer a distinctive stereospecificity pattern towards organophosphates. [References: 35]
机译:分析了一系列八个小鼠乙酰胆碱酯酶(AChE; EC 3.1.1.7)的双重和三重突变体,其取代基对应于大部分在丁酰胆碱酯酶(BChE; EC 3.1.1.8)活性中心峡谷中发现的残基,以比较稳态底物更新的动力学常数和对映体甲基膦酸酯的抑制参数。突变结合了酰基囊(Phe(295)-> Leu和Phe(297)-> Ile)中的胆碱结合位点(Tyr(317)-> Ala和Phe(338)->丙氨酸(Ala)和带有活性末端丝氨酸Ser(203)N端的侧链(Glu(202)-> Gln)。突变通过增加K-m和减小k(cat)影响催化,但是这些常数通常受一个数量级或更小数量级的影响,与AChE的催化潜力相比,变化相对较小。为了分析对立体选择性膦酰化的限制,使突变酶与已知绝对立体化学的同类S-P-和R-P-甲基膦酸酯反应。在可能的情况下,将总反应速率解构为形成可逆复合物和固有的膦酰化作用的主要常数。多个突变大大降低了反应性更高的S-P-甲基膦酸酯的反应速率,而与R-P-甲基膦酸酯的反应速率则显着提高。对于具有较大空间体积的膦酸酯,R-P对映异构体速率的增加,加上S-P对映异构体的减少,足以显着地转化对映异构体偏好。突变序列扩大了AChE活性中心峡谷的大小,部分类似于BChE的更宽敞的峡谷,但没有显示出对刚性模板预期的有序转化为BChE反应性。而是,各个芳族残基可以相互相互作用,以赋予有机磷酸酯独特的立体特异性模式。 [参考:35]

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