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酵母 NADPH-细胞色素 P450 还原酶表面暴露的 FMN 结合位点具有高度特异性。

FMN binding site of yeast NADPH-cytochrome P450 reductase exposed at the surface is highly specific.

机构信息

Institute of Biomedical Chemistry, Russian Academy of Medical Sciences, Moscow, Russia.

出版信息

ACS Chem Biol. 2010 Aug 20;5(8):767-76. doi: 10.1021/cb100055v.

Abstract

NADPH-cytochrome P450 reductase (CPR) transfers two reducing equivalents derived from NADPH via FAD and FMN to microsomal P450 monooxygenases in one-electron transfer steps. The crystal structure of yeast CPR (yCPR) contains a surface-exposed FMN binding site (FMN2 site) at the interface of the FMN binding and connecting domains, in addition to the single buried site that has been observed in rat CPR. This finding provides a testable hypothesis of how intramolecular (between FAD and FMN) and intermolecular (between FMN and P450) electron transfer may occur in CPR. To verify that occupancy of the FMN2 site is not an artifact of crystallization, a surface plasmon resonance (SPR) biosensor technique has been applied to probe the selectivity of this site under functional conditions. A series of kinetic and equilibrium binding experiments involving yCPR immobilized on different sensor chip surfaces was performed using FMN and FAD, as well as FMN-derived compounds, including riboflavin, dimethylalloxazine, and alloxazine, and other molecules that resemble the planar isoalloxazine ring structure. Only FMN and FAD showed stoichiometric binding responses. Binding affinity for FMN was in the submicromolar range, 30 times higher than that for FAD. Association kinetic rates for the yCPR/FMN complex were up to 60-fold higher than for the yCPR/FAD complex. Taken together, these data indicate that (i) the surface-exposed site in yCPR is highly selective toward binding flavins, (ii) binding of FMN in this site is notably favored, and finally, (iii) both the phosphate group and the isoalloxazine ring of FMN are essential for binding.

摘要

NADPH-细胞色素 P450 还原酶 (CPR) 通过 FAD 和 FMN 将来自 NADPH 的两个还原当量在单电子转移步骤中转运至微粒体 P450 单加氧酶。酵母 CPR (yCPR) 的晶体结构在 FMN 结合和连接结构域的界面处包含一个暴露于表面的 FMN 结合位点 (FMN2 位点),除了在大鼠 CPR 中观察到的单个埋藏位点。这一发现提供了一个可测试的假说,即 CPR 中的分子内 (FAD 和 FMN 之间) 和分子间 (FMN 和 P450 之间) 电子转移可能如何发生。为了验证 FMN2 位点的占据不是结晶的假象,已经应用表面等离子体共振 (SPR) 生物传感器技术在功能条件下探测该位点的选择性。使用 FMN 和 FAD 以及 FMN 衍生化合物,包括核黄素、二甲基别嘌呤和别嘌呤,以及其他类似于平面异咯嗪环结构的分子,进行了一系列涉及固定在不同传感器芯片表面上的 yCPR 的动力学和平衡结合实验。只有 FMN 和 FAD 显示出化学计量的结合反应。FMN 的结合亲和力处于亚微摩尔范围内,比 FAD 高 30 倍。yCPR/FMN 复合物的缔合动力学速率比 yCPR/FAD 复合物高 60 倍。综上所述,这些数据表明:(i) yCPR 中的暴露于表面的位点对结合黄素具有高度选择性,(ii) 该位点中 FMN 的结合明显受到青睐,最后,(iii) FMN 的磷酸基团和异咯嗪环对于结合都是必不可少的。

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