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Investigation of an unnatural amino acid for use as a resonance Raman probe: Detection limits solvent and temperature dependence of the νC≡N band of 4-cyanophenylalanine

机译:研究用作共振拉曼探针的非天然氨基酸:4-氰基苯丙氨酸的νC≡N谱带的检出限溶剂和温度依赖性

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摘要

The incorporation of unnatural amino acids into proteins that act as spectroscopic probes can be used to study protein structure and function. One such probe is 4-cyanophenylalanine (PheCN), the nitrile group of which has a stretching mode that occurs in a region of the vibrational spectrum that does not contain any modes from the usual components of proteins and the wavenumber is sensitive to the polarity of its environment. In this work we evaluate the potential of UV resonance Raman spectroscopy for monitoring the sensitivity of the νC≡N band of PheCN incorporated into proteins to the protein environment. Measurement of the Raman excitation profile of PheCN showed that considerable resonance enhancement of the Raman signal was obtained using UV excitation and the best signal-to-noise ratios were obtained with excitation wavelengths of 229 and 244 nm. The detection limit for PheCN in proteins was ~10 μM, approximately a hundred-fold lower than the concentrations used in IR studies, which increases the potential applications of PheCN as a vibrational probe. The wavenumber of the PheCN νC≡N band was strongly dependent on the polarity of its environment, when the solvent was changed from H2O to THF it decreased by 8 cm−1. The presence of liposomes caused a similar though smaller decrease in νC≡N for a peptide, mastoparan X, modified to contain PheCN. The selectivity and sensitivity of resonance Raman spectroscopy of PheCN mean that it can be a useful probe of intra- and intermolecular interactions in proteins and opens the door to its application in the study of protein dynamics using time-resolved resonance Raman spectroscopy.
机译:将非天然氨基酸掺入充当光谱探针的蛋白质中可用于研究蛋白质的结构和功能。一种这样的探针是4-氰基苯丙氨酸(PheCN),其腈基具有拉伸模式,该模式出现在振动光谱区域中,该区域不包含蛋白质常规成分的任何模式,并且波数对蛋白质的极性敏感。它的环境。在这项工作中,我们评估了UV共振拉曼光谱法监测掺入蛋白质的PheCN的νCtheN谱带对蛋白质环境的敏感性的潜力。对PheCN的拉曼激发曲线的测量表明,使用UV激发可以获得拉曼信号的明显共振增强,并且在229和244 nm的激发波长下可以获得最佳的信噪比。蛋白质中PheCN的检出限为〜10μM,比IR研究中使用的浓度低约100倍,这增加了PheCN作为振动探针的潜在应用。 PheCNνC≡N谱带的波数在很大程度上取决于其环境的极性,当溶剂从H2O变为THF时,它减少了8 cm -1 。脂质体的存在导致类似肽段(Mastroparan X,经修饰含有PheCN)的νC≡N降低程度相似但较小。 PheCN共振拉曼光谱的选择性和灵敏度意味着它可以作为蛋白质中分子间和分子间相互作用的有用探针,并为在使用时间分辨共振拉曼光谱研究蛋白质动力学中的应用打开了大门。

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