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嗜热菌蛋白酶活性位点锌取代的结构分析

Structural analysis of zinc substitutions in the active site of thermolysin.

作者信息

Holland D R, Hausrath A C, Juers D, Matthews B W

机构信息

Howard Hughes Medical Institute, University of Oregon, Eugene 97403, USA.

出版信息

Protein Sci. 1995 Oct;4(10):1955-65. doi: 10.1002/pro.5560041001.

Abstract

Native thermolysin binds a single catalytically essential zinc ion that is tetrahedrally coordinated by three protein ligands and a water molecule. During catalysis the zinc ligation is thought to change from fourfold to fivefold. Substitution of the active-site zinc with Cd2+, Mn2+, Fe2+, and Co2+ alters the catalytic activity (Holmquist B, Vallee BL, 1974, J Biol Chem 249:4601-4607). Excess zinc inhibits the enzyme. To investigate the structural basis of these changes in activity, we have determined the structures of a series of metal-substituted thermolysins at 1.7-1.9 A resolution. The structure of the Co(2+)-substituted enzyme is shown to be very similar to that of wild type except that two solvent molecules are liganded to the metal at positions that are thought to be occupied by the two oxygens of the hydrated scissile peptide in the transition state. Thus, the enhanced activity toward some substrates of the cobalt-relative to the zinc-substituted enzyme may be due to enhanced stabilization of the transition state. The ability of Zn2+ and Co2+ to accept tetrahedral coordination in the Michaelis complex, as well as fivefold coordination in the transition state, may also contribute to their effectiveness in catalysis. The Cd(2+)- and Mn(2+)-substituted thermolysins display conformational changes that disrupt the active site to varying degrees and could explain the associated reduction of activity. The conformational changes involve not only the essential catalytic residue, Glu 143, but also concerted side-chain rotations in the adjacent residues Met 120 and Leu 144. Some of these side-chain movements are similar to adjustments that have been observed previously in association with the "hinge-bending" motion that is presumed to occur during catalysis by the zinc endoproteases. In the presence of excess zinc, a second zinc ion is observed to bind at His 231 within 3.2 A of the zinc bound to native thermolysin, explaining the inhibitory effect.

摘要

天然嗜热菌蛋白酶结合一个对催化至关重要的锌离子,该锌离子由三个蛋白质配体和一个水分子以四面体方式配位。在催化过程中,锌的配位被认为从四重变为五重。用Cd2+、Mn2+、Fe2+和Co2+取代活性位点的锌会改变催化活性(霍尔姆奎斯特B,瓦利BL,1974年,《生物化学杂志》249:4601 - 4607)。过量的锌会抑制该酶。为了研究这些活性变化的结构基础,我们已经确定了一系列金属取代的嗜热菌蛋白酶在1.7 - 1.9埃分辨率下的结构。结果表明,Co(2+)取代的酶的结构与野生型非常相似,只是有两个溶剂分子在被认为在过渡态中被水解性肽的两个氧占据的位置与金属配位。因此,相对于锌取代的酶,钴取代的酶对某些底物活性增强可能是由于过渡态的稳定性增强。Zn2+和Co2+在米氏复合物中接受四面体配位以及在过渡态中接受五重配位的能力,也可能有助于它们在催化中的有效性。Cd(2+)和Mn(2+)取代的嗜热菌蛋白酶表现出构象变化,这些变化不同程度地破坏了活性位点,这可以解释相关的活性降低。构象变化不仅涉及关键催化残基Glu 143,还涉及相邻残基Met 120和Leu 144的协同侧链旋转。其中一些侧链运动类似于先前观察到的与推测在锌内切蛋白酶催化过程中发生的“铰链弯曲”运动相关的调整。在过量锌存在的情况下,观察到第二个锌离子在与天然嗜热菌蛋白酶结合的锌的3.2埃范围内的His 231处结合,这解释了抑制作用。

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Thermolysin: a zinc metalloenzyme.嗜热菌蛋白酶:一种锌金属酶。
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