George Simon J, Igarashi Robert Y, Xiao Yuming, Hernandez Jose A, Demuez Marie, Zhao Dehua, Yoda Yoshitaka, Ludden Paul W, Rubio Luis M, Cramer Stephen P
Advanced Biological and Environmental X-ray Facility, Physical Biosciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA.
J Am Chem Soc. 2008 Apr 30;130(17):5673-80. doi: 10.1021/ja0755358. Epub 2008 Apr 2.
NifB-co, an Fe-S cluster produced by the enzyme NifB, is an intermediate on the biosynthetic pathway to the iron molybdenum cofactor (FeMo-co) of nitrogenase. We have used Fe K-edge extended X-ray absorption fine structure (EXAFS) spectroscopy together with (57)Fe nuclear resonance vibrational spectroscopy (NRVS) to probe the structure of NifB-co while bound to the NifX protein from Azotobacter vinelandii. The spectra have been interpreted in part by comparison with data for the completed FeMo-co attached to the NafY carrier protein: the NafY:FeMo-co complex. EXAFS analysis of the NifX:NifB-co complex yields an average Fe-S distance of 2.26 A and average Fe-Fe distances of 2.66 and 3.74 A. Search profile analyses reveal the presence of a single Fe-X (X = C, N, or O) interaction at 2.04 A, compared to a 2.00 A Fe-X interaction found in the NafY:FeMo-co EXAFS. This suggests that the interstitial light atom (X) proposed to be present in FeMo-co has already inserted at the NifB-co stage of biosynthesis. The NRVS exhibits strong bands from Fe-S stretching modes peaking around 270, 315, 385, and 408 cm(-1). Additional intensity at approximately 185-200 cm(-1) is interpreted as a set of cluster "breathing" modes similar to those seen for the FeMo-cofactor. The strength and location of these modes also suggest that the FeMo-co interstitial light atom seen in the crystal structure is already in place in NifB-co. Both the EXAFS and NRVS data for NifX:NifB-co are best simulated using a Fe 6S 9X trigonal prism structure analogous to the 6Fe core of FeMo-co, although a 7Fe structure made by capping one trigonal 3S terminus with Fe cannot be ruled out. The results are consistent with the conclusion that the interstitial light atom is already present at an early stage in FeMo-co biosynthesis prior to the incorporation of Mo and R-homocitrate.
NifB - co是由NifB酶产生的一种铁硫簇,是固氮酶铁钼辅因子(FeMo - co)生物合成途径上的一个中间体。我们利用铁K边扩展X射线吸收精细结构(EXAFS)光谱以及(57)Fe核共振振动光谱(NRVS)来探测与来自棕色固氮菌的NifX蛋白结合时NifB - co的结构。通过与附着在NafY载体蛋白上的完整FeMo - co的数据(即NafY:FeMo - co复合物)进行比较,对光谱进行了部分解读。对NifX:NifB - co复合物的EXAFS分析得出平均Fe - S距离为2.26 Å,平均Fe - Fe距离为2.66 Å和3.74 Å。搜索轮廓分析显示在2.04 Å处存在单个Fe - X(X = C、N或O)相互作用,而在NafY:FeMo - co的EXAFS中发现的Fe - X相互作用为2.00 Å。这表明推测存在于FeMo - co中的间隙轻原子(X)在生物合成的NifB - co阶段就已经插入。NRVS在约270、315、385和408 cm⁻¹处显示出来自Fe - S伸缩模式的强峰。在约185 - 200 cm⁻¹处的额外强度被解释为一组类似于在FeMo - 辅因子中看到的簇“呼吸”模式。这些模式的强度和位置还表明在晶体结构中看到的FeMo - co间隙轻原子在NifB - co中已经就位。NifX:NifB - co的EXAFS和NRVS数据最好用类似于FeMo - co的6Fe核心的Fe 6S 9X三角棱柱结构来模拟,尽管由用Fe封端一个三角3S末端形成的7Fe结构也不能排除。结果与间隙轻原子在Mo和R - 高柠檬酸掺入之前的FeMo - co生物合成早期阶段就已存在的结论一致。