Hashida Shukichi, Yuzawa Satoru, Suzuki Nobuo N, Fujioka Yuko, Takikawa Takayuki, Sumimoto Hideki, Inagaki Fuyuhiko, Fujii Hirotada
Department of Structural Biology, Graduate School of Pharmaceutical Sciences, Hokkaido University, Sapporo 060-0812.
J Biol Chem. 2004 Jun 18;279(25):26378-86. doi: 10.1074/jbc.M309724200. Epub 2004 Apr 21.
The superoxide-producing phagocyte NADPH oxidase can be reconstituted in a cell-free system. The activity of NADPH oxidase is dependent on FAD, but the physiological status of FAD in the oxidase is not fully elucidated. To clarify the role of FAD in NADPH oxidase, FAD-free full-length recombinant p47(phox), p67(phox), p40(phox), and Rac were prepared, and the activity was reconstituted with these proteins and purified cytochrome b(558) (cyt b(558)) with different amounts of FAD. A remarkably high activity, over 100 micromol/s/micromol heme, was obtained in the oxidase with purified cyt b(558), ternary complex (p47-p67-p40(phox)), and Rac. From titration with FAD of the activity of NADPH oxidase reconstituted with purified FAD-devoid cyt b, the dissociation constant K(d) of FAD in cyt b(558) of reconstituted oxidase was estimated as nearly 1 nm. We also examined addition of FAD on the assembly process in reconstituted oxidase. The activity was remarkably enhanced when FAD was present during assembly process, and the efficacy of incorporating FAD into the vacant FAD site in purified cyt b(558) increased, compared when FAD was added after assembly processes. The absorption spectra of reconstituted oxidase under anaerobiosis showed that incorporation of FAD into cyt b(558) recovered electron flow from NADPH to heme. From both K(d) values of FAD and the amount of incorporated FAD in cyt b(558) of reconstituted oxidase, in combination with spectra, we propose the model in which the K(d) values of FAD in cyt b(558) is changeable after activation and FAD binding works as a switch to regulate electron transfer in NADPH oxidase.
产生超氧化物的吞噬细胞NADPH氧化酶可在无细胞系统中重组。NADPH氧化酶的活性依赖于黄素腺嘌呤二核苷酸(FAD),但氧化酶中FAD的生理状态尚未完全阐明。为了阐明FAD在NADPH氧化酶中的作用,制备了不含FAD的全长重组p47(吞噬细胞氧化还原蛋白)、p67(吞噬细胞氧化还原蛋白)、p40(吞噬细胞氧化还原蛋白)和Rac,并将这些蛋白质与不同量的FAD和纯化的细胞色素b(558)(cyt b(558))一起重组活性。在用纯化的cyt b(558)、三元复合物(p47-p67-p40(吞噬细胞氧化还原蛋白))和Rac重组的氧化酶中,获得了超过100微摩尔/秒/微摩尔血红素的极高活性。通过用FAD滴定用纯化的不含FAD的cyt b重组的NADPH氧化酶的活性,重组氧化酶的cyt b(558)中FAD的解离常数K(d)估计接近1纳米。我们还研究了在重组氧化酶的组装过程中添加FAD的情况。当在组装过程中存在FAD时,活性显著增强,与组装过程后添加FAD相比,将FAD掺入纯化的cyt b(558)中空的FAD位点的效率提高。厌氧条件下重组氧化酶的吸收光谱表明,FAD掺入cyt b(558)恢复了从NADPH到血红素的电子流。根据重组氧化酶的cyt b(558)中FAD的K(d)值和掺入的FAD量,结合光谱,我们提出了一个模型,其中cyt b(558)中FAD的K(d)值在激活后是可变的,FAD结合作为一个开关来调节NADPH氧化酶中的电子转移。