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首页> 外文期刊>Journal of Molecular Biology >Mechanism of coenzyme recognition and binding revealed by crystal structure analysis of ferredoxin-NADP+ reductase complexed with NADP+.
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Mechanism of coenzyme recognition and binding revealed by crystal structure analysis of ferredoxin-NADP+ reductase complexed with NADP+.

机译:铁氧还蛋白-NADP +还原酶与NADP +复合的晶体结构分析揭示了辅酶识别和结合的机理。

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The flavoenzyme ferredoxin-NADP+ reductase (FNR) catalyses the production of NADPH in photosynthesis. The three-dimensional structure of FNR presents two distinct domains, one for binding of the FAD prosthetic group and the other for NADP+ binding. In spite of extensive experiments and different crystallographic approaches, many aspects about how the NADP+ substrate binds to FNR and how the hydride ion is transferred from FAD to NADP+ remain unclear. The structure of an FNR:NADP+ complex from Anabaena has been determined by X-ray diffraction analysis of the cocrystallised units to 2.1 A resolution. Structural perturbation of FNR induced by complex formation produces a narrower cavity in which the 2'-phospho-AMP and pyrophosphate portions of the NADP+ are perfectly bound. In addition, the nicotinamide mononucleotide moiety is placed in a new pocket created near the FAD cofactor with the ribose being in a tight conformation. The crystal structure of this FNR:NADP+ complex obtained by cocrystallisation displays NADP+ in an unusual conformation and can be considered as an intermediate state in the process of coenzyme recognition and binding. Structural analysis and comparison with previously reported complexes allow us to postulate a mechanism which would permit efficient hydride transfer to occur. Besides, this structure gives new insights into the postulated formation of the ferredoxin:FNR:NADP+ ternary complex by prediction of new intermolecular interactions, which could only exist after FNR:NADP+ complex formation. Finally, structural comparison with the members of the broad FNR structural family also provides an explanation for the high specificity exhibited by FNR for NADP+/H versus NAD+/H.
机译:黄酮酶铁氧还蛋白-NADP +还原酶(FNR)催化光合作用中NADPH的产生。 FNR的三维结构呈现两个不同的域,一个域用于FAD修复基团的结合,另一个域用于NADP +结合。尽管进行了广泛的实验和不同的晶体学方法,但关于NADP +底物如何与FNR结合以及氢离子如何从FAD转移至NADP +的许多方面仍不清楚。来自Anabaena的FNR:NADP +络合物的结构已通过共结晶单元的X射线衍射分析确定为2.1 A分辨率。由复合物形成引起的FNR的结构扰动会产生一个狭窄的空腔,其中NADP +的2'-磷酸-AMP和焦磷酸部分完美结合。另外,将烟酰胺单核苷酸部分置于FAD辅因子附近产生的新口袋中,其中核糖呈紧密构象。通过共结晶获得的该FNR:NADP +复合物的晶体结构以不寻常的构象显示NADP +,并且可以认为是辅酶识别和结合过程中的中间状态。结构分析和与先前报道的配合物的比较使我们能够提出一种机制,该机制将允许发生有效的氢化物转移。此外,该结构通过预测新的分子间相互作用而提供了对铁氧还蛋白:FNR:NADP +三元复合物的假定形成的新见解,所述分子间相互作用只能在FNR:NADP +复合物形成之后存在。最后,与广泛的FNR结构家族成员进行结构比较也可以解释FNR对NADP + / H与NAD + / H的高特异性。

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