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Crystal structure of papaya glutaminyl cyclase, an archetype for plant and bacterial glutaminyl cyclases

机译:木瓜谷氨酰胺酰环化酶的晶体结构,植物和细菌谷氨酰胺酰环化酶的原型

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Glutaminyl cyclases (QCs) (EC 2.3.2.5) catalyze the intramolecular cyclization of protein N-terminal glutamine residues into pyroglutamic acid with the concomitant liberation of ammonia. QCs may be classified in two groups containing, respectively, the mammalian enzymes, and the enzymes from plants, bacteria, and parasites. The crystal structure of the QC from the latex of Carica papaya (PQC) has been determined at 1.7 A resolution. The structure was solved by the single wavelength anomalous diffraction technique using sulfur and zinc as anomalous scatterers. The enzyme folds into a five-bladed beta-propeller, with two additional alpha-helices and one beta hairpin. The propeller closure is achieved via an original molecular velcro, which links the last two blades into a large eight stranded beta-sheet. The zinc ion present in the PQC is bound via an octahedral coordination into an elongated cavity located along the pseudo 5-fold axis of the P-propeller fold. This zinc ion presumably plays a structural role and may contribute to the exceptional stability of PQC, along with an extended hydrophobic packing, the absence of long loops, the three-joint molecular velcro and the overall folding itself. Multiple sequence alignments combined with structural analyses have allowed us to tentatively locate the active site, which is filled in the crystal structure either by a Tris molecule or an acetate ion. These analyses are further supported by the experimental evidence that Tris is a competitive inhibitor of PQC. The active site is located at the C-terminal entrance of the PQC central tunnel. W83, WHO, W169, Q24, E69, N155, K225, F22 and F67 are highly conserved residues in the C-terminal entrance, and their putative role in catalysis is discussed. The PQC structure is representative of the plants, bacterial and parasite enzymes and contrasts with that of mammalian enzymes, that may possibly share a conserved scaffold of the bacterial aminopeptidase. (c) 2005 Elsevier Ltd. All rights reserved.
机译:谷氨酰胺基环化酶(QCs)(EC 2.3.2.5)催化蛋白质N端谷氨酰胺残基的分子内环化为焦谷氨酸,同时释放氨。 QC可以分为两类,分别包含哺乳动物酶以及来自植物,细菌和寄生虫的酶。来自番木瓜(PQC)乳胶的QC晶体结构已确定为1.7 A分辨率。通过使用硫和锌作为异常散射体的单波长异常衍射技术解决了该结构。该酶折叠成一个五叶的β型螺旋桨,带有两个附加的α螺旋和一个β发夹。螺旋桨的闭合是通过原始的分子维可牢尼龙搭扣实现的,该维可牢尼龙搭扣将最后两个叶片连接成一个大的八链β-折叠片。 PQC中存在的锌离子通过八面体配位结合到沿P螺旋桨折叠的伪5折叠轴定位的细长腔中。该锌离子可能起结构​​性作用,并可能有助于PQC的出色稳定性,并具有延长的疏水性堆积,不存在长环,三接头分子维可牢尼龙搭扣和整体折叠本身。多个序列比对与结构分析相结合,使我们能够暂时定位活性位点,该位点由Tris分子或乙酸根离子填充在晶体结构中。实验证明Tris是PQC的竞争性抑制剂,进一步支持了这些分析。活动站点位于PQC中央隧道的C终端入口。 W83,WHO,W169,Q24,E69,N155,K225,F22和F67是C末端入口的高度保守残基,并讨论了它们在催化中的假定作用。 PQC结构代表植物,细菌和寄生虫酶,与哺乳动物酶形成对比,哺乳动物酶可能共享细菌氨基肽酶的保守支架。 (c)2005 Elsevier Ltd.保留所有权利。

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