首页> 外文期刊>Biophysical Chemistry: An International Journal Devoted to the Physical Chemistry of Biological Phenomena >Photophysics of ANS. I. Protein-ANS complexes: Intestinal fatty acid binding protein and single-trp mutants
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Photophysics of ANS. I. Protein-ANS complexes: Intestinal fatty acid binding protein and single-trp mutants

机译:ANS的光物理。一,蛋白质-ANS复合物:肠脂肪酸结合蛋白和单trp突变体

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We continue investigations into the physical chemistry of intestinal fatty acid binding protein, I-FABP, and its interaction with ANS and other ligands [cf references [Kirk, W., E. Kurian, and F. Prendergast. 1996. Characterization of the sources of protein-ligand affinity: l-suIfonato-8-anilinonaphthalene binding to intestinal fatty acid binding protein. Biophys. J. 70: 69-83., Kurian, E., W. Kirk, and F. Prendergast. 1996. Affinity of fatty acid forrRat intestinal fatty acid binding protein: Further examination. Biochemistry. 35:3865-74]. The photophysics of the wt protein is compared with that in two mutants which lack respectively one or the other of two trp moieties, one of which, trp 82, is located near the binding region for the polar head group of ligands. These studies afford a look into how the fluorescence of the wt protein is established, mat is, as an almost direct sum of the fluorescence of the two individual trp residues, and how this fluorescence is quenched upon binding to ANS. Though we have access to all the relevant spectroscopic and geometric information necessary to specify in detail the Foerster-Dexter energy transfer model, the quenching process is not explicable in terms of very-weak coupling, as is usually assumed in fluorescence studies in protein systems, but in terms of a stronger effect which goes beyond the simple very-weak dipole:dipole formalism. The quenching of trp emission by bound ANS is not as great as that anticipated by ordinary resonance energy transfer, neither is the quenching observed in the reduced lifetimes of the trp emission upon ANS binding as great as that observed in steady-state intensity. However the observed steady-state quenching is explicable in terms derived from the lifetime measurements, together with observed spectral band shifts, by the exciton coupling model we invoke here
机译:我们继续研究肠道脂肪酸结合蛋白I-FABP的物理化学及其与ANS和其他配体的相互作用[参见参考文献[Kirk,W.,E. Kurian,and F. Prendergast。 1996.蛋白质-配体亲和力来源的表征:1-suIfonato-8-苯胺基萘与肠脂肪酸结合蛋白的结合。生物物理学。 J. 70:69-83。,Kurian,E.,W. Kirk,和F. Prendergast。 1996.脂肪酸forrRat肠道脂肪酸结合蛋白的亲和力:进一步检查。生物化学。 35:3865-74]。将wt蛋白的光物理性质与在两个分别缺少两个trp部分中的一个或另一个的突变体中进行比较,其中一个trp 82位于配体的极性头基的结合区附近。这些研究提供了关于如何建立wt蛋白的荧光的方法,以及作为两个单独的trp残基的荧光的几乎直接总和,以及如何在与ANS结合后猝灭该荧光的方法。尽管我们已经获得了详细指定Foerster-Dexter能量转移模型所需的所有相关光谱学和几何学信息,但是猝灭过程在非常弱的耦合方面是无法解释的,这在蛋白质系统的荧光研究中通常会假定,但是从更简单的偶极形式:偶极形式主义这一更强的效果来讲。结合的ANS对trp发射的猝灭不像普通共振能量转移所预期的那样大,在ANS结合时trp发射的降低的寿命中观察到的猝灭也没有在稳态强度下观察到的猝灭。然而,观察到的稳态淬灭可以解释为根据我们在这里调用的激子耦合模型从寿命测量结果以及观察到的光谱带位移得出的术语。

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