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首页> 外文期刊>Journal of Molecular Biology >Structural studies of binding site tryptophan mutants in the high-affinity streptavidin-biotin complex
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Structural studies of binding site tryptophan mutants in the high-affinity streptavidin-biotin complex

机译:高亲和力链霉亲和素-生物素复合物中结合位点色氨酸突变体的结构研究

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Previous thermodynamic and computational studies have pointed to the important energetic role of aromatic contacts in generating the exceptional binding free energy of streptavidin-biotin association. We report here the crystallographic characterization of single site tryptophan mutants in investigating structural consequences of alterations in these aromatic contacts. Four tryptophan residues, Trp79, Trp92, Trp108 and Trp120, play an important role in the hydrophobic binding contributions, which along with a hydrogen bonding network curd a flexible binding loop give rise to tight ligand binding (K-a similar to 10(13) M-1). The crystal structures of ligand-free and biotin-bound mutants, W79F, W108F, W120F and W120A, in the resolution range from 1.9 to 2.3 Angstrom were determined. Nine data sets for these four different mutants were collected, and structural models were refined to X-values ranging from 0.15 to 0.20. The major question addressed here is how these mutations influence the streptavidin binding site and in particular how they affect the binding mode of biotin in the complex. The overall folding of streptavidin was not significantly altered in any of the tryptophan mutants. With one exception, only minor deviations in the unbound structures were observed. In one crystal form of unbound W79F, there is a coupled shift in the side-chains of Phe29 and Tyr43 toward the mutation site, although in a different crystal form these shifts are not observed. In the bound structures, the orientation of biotin in the binding pocket was not significantly altered in the mutant complex. Compared with the wild-type streptavidin-biotin complex, there were no additional crystallographic water molecules observed for any of the mutants in the binding pocket. These structural studies thus suggest that the thermodynamic alterations can be attributed to the local alterations in binding residue composition, rather than a rearrangement of binding site architectures. (C) 1998 Academic Press Limited. [References: 28]
机译:先前的热力学和计算研究已指出,芳香族接触在产生链霉亲和素-生物素缔合的异常结合自由能方面具有重要的能量作用。我们在这里报告单点色氨酸突变体的晶体学特征,以研究这些芳香族接触改变的结构后果。四个色氨酸残基Trp79,Trp92,Trp108和Trp120在疏水结合作用中起着重要作用,它们与氢键网络凝结在一起的柔性结合环导致紧密的配体结合(Ka类似于10(13)M- 1)。确定了无配体和生物素结合的突变体W79F,W108F,W120F和W120A的晶体结构,其分辨率范围为1.9至2.3埃。收集了这四个不同突变体的9个数据集,并将结构模型精炼为X值,范围从0.15到0.20。此处解决的主要问题是这些突变如何影响链霉亲和素结合位点,特别是它们如何影响复合物中生物素的结合方式。在任何色氨酸突变体中,链霉亲和素的整体折叠没有明显改变。除一个例外,仅观察到未结合结构的微小偏差。在未结合的W79F的一种晶体形式中,Phe29和Tyr43的侧链朝着突变位点存在耦合移位,尽管在不同的晶体形式中未观察到这些移位。在结合的结构中,突变体复合物中结合口袋中生物素的取向没有明显改变。与野生型链霉亲和素-生物素复合物相比,在结合袋中没有观察到任何其他突变体的结晶水分子。因此,这些结构研究表明,热力学改变可归因于结合残基组成的局部改变,而不是结合位点结构的重排。 (C)1998 Academic Press Limited。 [参考:28]

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