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水介导的蛋白质-荧光团相互作用调节ABC-ATP酶/TNP-ADP复合物的亲和力。

Water-mediated protein-fluorophore interactions modulate the affinity of an ABC-ATPase/TNP-ADP complex.

作者信息

Oswald Christine, Jenewein Stefan, Smits Sander H J, Holland I Barry, Schmitt Lutz

机构信息

Institute of Biochemistry, Heinrich Heine University Duesseldorf, Universitaetsstr. 1, 40225 Duesseldorf, Germany.

出版信息

J Struct Biol. 2008 Apr;162(1):85-93. doi: 10.1016/j.jsb.2007.11.006. Epub 2007 Nov 21.

Abstract

TNP-modified nucleotides have been used extensively to study protein-nucleotide interactions. In the case of ABC-ATPases, application of these powerful tools has been greatly restricted due to the significantly higher affinity of the TNP-nucleotide for the corresponding ABC-ATPase in comparison to the non-modified nucleotides. To understand the molecular changes occurring upon binding of the TNP-nucleotide to an ABC-ATPase, we have determined the crystal structure of the TNP-ADP/HlyB-NBD complex at 1.6A resolution. Despite the higher affinity of TNP-ADP, no direct fluorophore-protein interactions were observed. Unexpectedly, only water-mediated interactions were detected between the TNP moiety and Tyr(477), that is engaged in pi-pi stacking with the adenine ring, as well as with two serine residues (Ser(504) and Ser(509)) of the Walker A motif. Interestingly, the side chains of these two serine residues adopt novel conformations that are not observed in the corresponding ADP structure. However, in the crystal structure of the S504A mutant, which binds TNP-ADP with similar affinity to the wild type enzyme, a novel TNP-water interaction compensates for the missing serine side chain. Since this water molecule is not present in the wild type enzyme, these results suggest that only water-mediated interactions provide a structural explanation for the increased affinity of TNP-nucleotides towards ABC-ATPases. However, our results also imply that in silico approaches such as docking or modeling cannot directly be applied to generate 'affinity-adopted' ADP- or ATP-analogs for ABC-ATPases.

摘要

TNP修饰的核苷酸已被广泛用于研究蛋白质-核苷酸相互作用。在ABC-ATP酶的情况下,由于与未修饰的核苷酸相比,TNP-核苷酸对相应ABC-ATP酶的亲和力显著更高,这些强大工具的应用受到了极大限制。为了了解TNP-核苷酸与ABC-ATP酶结合时发生的分子变化,我们已确定了TNP-ADP/HlyB-NBD复合物在1.6埃分辨率下的晶体结构。尽管TNP-ADP具有更高的亲和力,但未观察到直接的荧光团-蛋白质相互作用。出乎意料的是,在TNP部分与Tyr(477)之间仅检测到水介导的相互作用,Tyr(477)与腺嘌呤环以及沃克A基序的两个丝氨酸残基(Ser(504)和Ser(509))形成π-π堆积。有趣的是,这两个丝氨酸残基的侧链呈现出在相应ADP结构中未观察到的新构象。然而,在S504A突变体的晶体结构中,其与TNP-ADP的结合亲和力与野生型酶相似,一种新的TNP-水相互作用补偿了缺失的丝氨酸侧链。由于野生型酶中不存在这种水分子,这些结果表明只有水介导的相互作用为TNP-核苷酸对ABC-ATP酶亲和力增加提供了结构解释。然而,我们的结果也意味着诸如对接或建模等计算机方法不能直接用于生成针对ABC-ATP酶的“亲和力适配”的ADP或ATP类似物。

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