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首页> 外文期刊>Biochemistry >The crystal structure of bacillus cereus phosphonoacetaldehyde hydrolase: insight into catalysis of phosphorus bond cleavage and catalytic diversification within the HAD enzyme superfamily.
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The crystal structure of bacillus cereus phosphonoacetaldehyde hydrolase: insight into catalysis of phosphorus bond cleavage and catalytic diversification within the HAD enzyme superfamily.

机译:蜡状芽孢杆菌膦酰乙醛水解酶的晶体结构:洞察磷键裂解的催化作用和HAD酶超家族内的催化多样化。

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摘要

Phosphonoacetaldehyde hydrolase (phosphonatase) catalyzes the hydrolysis of phosphonoacetaldehyde to acetaldehyde and phosphate using Mg(II) as cofactor. The reaction proceeds via a novel bicovalent catalytic mechanism in which an active-site nucleophile abstracts the phosphoryl group from the Schiff-base intermediate formed from Lys53 and phosphonoacetaldehyde. In this study, the X-ray crystal structure of the Bacillus cereus phosphonatase homodimer complexed with the phosphate (product) analogue tungstate (K(i) = 50 &mgr;M) and the Mg(II) cofactor was determined to 3.0 A resolution with an R(cryst) = 0.248 and R(free) = 0.284. Each monomer is made up of an alpha/beta core domain consisting of a centrally located six-stranded parallel beta-sheet surrounded by six alpha-helices. Two flexible, solvated linkers connect to a small cap domain (residues 21-99) that consists of an antiparallel, five-helix bundle. The subunit-subunit interface, formed by the symmetrical packing of the two alpha8 helices from the respective core domains, is stabilized through the hydrophobic effect derived from the desolvation of paired Met171, Trp164, Tyr162, Tyr167, and Tyr176 side chains. The active site is located at the domain-domain interface of each subunit. The Schiff base forming Lys53 is positioned on the cap domain while tungstate and Mg(II) are bound to the core domain. Mg(II) ligands include two oxygens of the tungstate ligand, one oxygen of the carboxylates of Asp12 and Asp186, the backbone carbonyl oxygen of Ala14, and a water that forms a hydrogen bond with the carboxylate of Asp190 and Thr187. The guanidinium group of Arg160 binds tungstate and the proposed nucleophile Asp12, which is suitably positioned for in-line attack at the tungsten atom. The side chains of the core domain residue Tyr128 and the cap domain residues Cys22 and Lys53 are located nearby. The identity of Asp12 as the active-site nucleophile was further evidenced by the observed removal of catalytic activity resulting from Asp12Ala substitution. The similarity of backbone folds observed in phosphonatase and the 2-haloacid dehalogenase of the HAD enzyme superfamily indicated common ancestry. Superposition of the two structures revealed a conserved active-site scaffold having distinct catalytic stations. Analysis of the usage of polar amino acid residues at these stations by the dehalogenases, phosphonatases, phosphatases, and phosphomutases of the HAD superfamily suggests possible ways in which the active site of an ancient enzyme ancestor might have been diversified for catalysis of C-X, P-C, and P-O bond cleavage reactions.
机译:磷乙醛水解酶(膦酸酶)以Mg(II)为辅因子催化膦酰乙醛水解为乙醛和磷酸盐。该反应通过新颖的双价催化机理进行,其中活性位亲核试剂从由Lys53和膦酰基乙醛形成的席夫碱中间体中提取磷酸基。在这项研究中,蜡状芽孢杆菌磷酸化酶同二聚体与磷酸盐(产物)类似的钨酸盐(K(i)= 50μM)和Mg(II)辅因子的X射线晶体结构确定为3.0 A分辨率。 R(结晶)= 0.248,R(游离)= 0.284。每个单体由一个α/β核心域组成,该α/β核心域由位于中心的六链平行β-折叠构成,被六个α-螺旋包围。两个灵活的溶剂化连接子连接到一个小帽结构域(残基21-99),该结构域由反平行的五螺旋束组成。由来自各自核心结构域的两个alpha8螺旋对称堆积形成的亚基-亚基界面,通过源自成对的Met171,Trp164,Tyr162,Tyr167和Tyr176侧链去溶剂化的疏水作用得以稳定。活动站点位于每个子单元的域-域接口。形成Lys53的席夫碱位于帽域上,而钨酸盐和Mg(II)与核心域结合。 Mg(II)配体包括钨酸盐配体的两个氧,Asp12和Asp186的羧酸盐的一个氧,Ala14的骨架羰基氧和与Asp190和Thr187的羧酸盐形成氢键的水。 Arg160的胍基团与钨酸盐和拟议的亲核试剂Asp12结合,后者的位置适合于在线攻击钨原子。核心结构域残基Tyr128和帽结构域残基Cys22和Lys53的侧链位于附近。通过观察到的由Asp12Ala取代产生的催化活性的去除进一步证明了Asp12作为活性位亲核试剂的身份。在磷酸酶和HAD酶超家族的2-卤代酸脱卤酶中观察到的骨架折叠的相似性表明它们具有共同的血统。两种结构的重叠揭示了具有不同催化位点的保守的活性位点支架。通过对HAD超家族的脱卤素酶,磷酸酶,磷酸酶和磷酸变位酶在这些位点上极性氨基酸残基的使用情况进行分析,表明古老的酶祖先的活性位点可能已被多样化用于催化CX,PC,和PO键裂解反应。

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