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嵌合光致变色黄色蛋白构建体的光动力、生化和结构特征。

Photokinetic, biochemical and structural features of chimeric photoactive yellow protein constructs.

机构信息

Department of Chemistry and Biochemistry, University of Arizona, Tucson, AZ, USA.

出版信息

Photochem Photobiol. 2013 Mar-Apr;89(2):349-60. doi: 10.1111/j.1751-1097.2012.01235.x. Epub 2012 Oct 9.

Abstract

Of the 10 photoactive yellow protein (PYPs) that have been characterized, the two from Rhodobacter species are the only ones that have an additional intermediate spectral form in the resting state (λmax  = 375 nm), compared to the prototypical Halorhodospira halophila PYP. We have constructed three chimeric PYP proteins by replacing the first 21 residues from the N-terminus (Hyb1PYP), 10 from the β4-β5 loop (Hyb2PYP) and both (Hyb3PYP) in Hhal PYP with those from Rb. capsulatus PYP. The N-terminal chimera behaves both spectrally and kinetically like Hhal PYP, indicating that the Rcaps N-terminus folds against the core of Hhal PYP. A small fraction shows dimerization and slower recovery, possibly due to interaction at the N-termini. The loop chimera has a small amount of the intermediate spectral form and a photocycle that is 20 000 times slower than Hhal PYP. The third chimera, with both regions exchanged, resembles Rcaps PYP with a significant amount of intermediate spectral form (λmax  = 380 nm), but has even slower kinetics. The effects are not strictly additive in the double chimera, suggesting that what perturbs one site, affects the other as well. These chimeras suggest that the intermediate spectral form has its origins in overall protein stability and solvent exposure.

摘要

在已经鉴定的 10 种光致变色黄色蛋白(PYP)中,与原型嗜盐红假单胞菌 PYP 相比,只有来自红杆菌属的两种 PYP 在静息状态下具有额外的中间光谱形式(λmax = 375nm)。我们通过用来自 Rb. capsulatus PYP 的前 21 个残基(Hyb1PYP)、10 个残基(Hyb2PYP)替换 Hhal PYP 的β4-β5 环和两者(Hyb3PYP)构建了三种嵌合 PYP 蛋白。N 端嵌合体在光谱和动力学上都表现得像 Hhal PYP,这表明 Rcaps 的 N 端与 Hhal PYP 的核心折叠在一起。一小部分显示二聚化和较慢的恢复,可能是由于 N 端的相互作用。环嵌合体具有少量的中间光谱形式和光循环,其速度比 Hhal PYP 慢 20000 倍。第三个嵌合体,两个区域都交换了,与 Rcaps PYP 相似,具有大量的中间光谱形式(λmax = 380nm),但动力学更慢。在双嵌合体中,这些影响不是严格加性的,这表明干扰一个位点会影响另一个位点。这些嵌合体表明,中间光谱形式起源于整体蛋白质稳定性和溶剂暴露。

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