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腈水合酶的共振拉曼光谱,一种新型的铁硫酶。

Resonance Raman spectroscopy of nitrile hydratase, a novel iron-sulfur enzyme.

作者信息

Brennan B A, Cummings J G, Chase D B, Turner I M, Nelson M J

机构信息

E.I. du Pont de Nemours & Company, Wilmington, Delaware 19880-0328, USA.

出版信息

Biochemistry. 1996 Aug 6;35(31):10068-77. doi: 10.1021/bi960163t.

DOI:10.1021/bi960163t
PMID:8756469
Abstract

Resonance Raman spectra of Rhodococcus sp. R312 (formerly Brevibacterium sp. R312) nitrile hydratase, a novel non-heme iron enzyme, have a large number of peaks in the 300-500 cm-1 region; observation of shifts in these peaks after labeling with 34S shows that they arise from cysteine coordinated to the ferric ion in the protein. The rich Raman spectra result from coupling of the Fe-S stretch with cysteine side chain deformation modes; the observation of 15N isotope shifts in most of these peaks suggests participation of N-donor metal ligands and peptide backbone amide nitrogens in these modes as well. The aggregate 34S isotope shift is too large to result from a single cysteine ligand, consistent with the analysis of EXAFS data that shows two or three S-donor ligands [Scarrow et al. (1996) Biochemistry 35, 10078-10088]. Widespread 2H isotope shifts seen after exchange of the protein into 2H2O suggest the presence of hydrogen bonds to the coordinated cysteine sulfurs. Comparison of the resonance Raman spectra of nitrile hydratase prepared at pH 7.3 and 9.0 shows a shift of intensity into the higher-energy peaks in the spectra of the latter sample. This is interpreted as resulting from an increase in Fe-S bond strength at the higher pH and is supported by observation of a small decrease in Fe-S bond length in the EXAFS analysis [Scarrow et al. (1996) Biochemistry 35, 10078-10088]. Such a decrease in Fe-S bond length is also consistent with pH dependent changes in EPR spectra and could reflect the loss of one or more hydrogen bonds to sulfur ligands.

摘要

红球菌属R312(原短杆菌属R312)腈水合酶是一种新型非血红素铁酶,其共振拉曼光谱在300 - 500 cm-1区域有大量峰;用34S标记后观察到这些峰的位移,表明它们来自与蛋白质中铁离子配位的半胱氨酸。丰富的拉曼光谱是由于Fe - S伸缩振动与半胱氨酸侧链变形模式的耦合;在这些峰中的大多数观察到15N同位素位移,表明N供体金属配体和肽主链酰胺氮也参与了这些模式。总的34S同位素位移太大,不可能由单个半胱氨酸配体引起,这与扩展X射线吸收精细结构(EXAFS)数据分析一致,该分析表明有两个或三个S供体配体[斯卡罗等人(1996年)《生物化学》35卷,10078 - 10088页]。将蛋白质交换到2H2O中后观察到广泛的2H同位素位移,表明存在与配位半胱氨酸硫的氢键。比较在pH 7.3和9.0条件下制备的腈水合酶的共振拉曼光谱,发现后一样品光谱中的强度向高能峰转移。这被解释为是由于在较高pH下Fe - S键强度增加,并且扩展X射线吸收精细结构分析中观察到Fe - S键长度略有减小也支持了这一点[斯卡罗等人(1996年)《生物化学》35卷,10078 - 10088页]。Fe - S键长度的这种减小也与电子顺磁共振(EPR)光谱随pH的变化一致,并且可能反映了与硫配体的一个或多个氢键的丧失。

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