首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Proton-Coupled Electron Transfer in Tyrosine and a beta-Hairpin Maquette: Reaction Dynamics on the Picosecond Time Scale
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Proton-Coupled Electron Transfer in Tyrosine and a beta-Hairpin Maquette: Reaction Dynamics on the Picosecond Time Scale

机译:酪氨酸和β-发夹模样中的质子耦合电子转移:皮秒时间尺度上的反应动力学

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In proteins, proton-coupled electron transfer (PCET) can involve the transient oxidation and reduction of the aromatic amino acid tyrosine. Due to the short life time of tyrosyl radical intermediates, transient absorption spectroscopy provides an important tool in deciphering electron-transfer mechanisms. In this report, the photoionization of solution tyrosine and tyrosinate was investigated using transient, picosecond absorption spectroscopy. The results were compared to data acquired from a tyrosine-containing beta-hairpin peptide. This maquette, peptide A, is an 18-mer that exhibits pi-pi interaction between tyrosine (Y5) and histidine (H14). Y5 and H14 carry out an orthogonal PCET reaction when Y5 is oxidized in the mid-pH range. Photolysis of all samples (280 nm, instrument response: 360 fs) generated a solvated electron signal within 3 ps. A signal from the S-1 state and a 410 nm signal from the neutral tyrosyl radical were also formed in 3 ps. Fits to S-1 and tyrosyl radical decay profiles revealed biphasic kinetics with time constants of 10-50 and 400-1300 ps. The PCET reaction at pH 9 was associated with a significant decrease in the rate of tyrosyl radical and S-1 decay compared to electron transfer (ET) alone (pH 11). This pH dependence was observed both in solution and peptide samples. The pH 9 reaction may occur with a sequential electron-transfer, proton-transfer (ETPT) mechanism. Alternatively, the pH 9 reaction may occur by coupled proton and electron transfer (CPET). CPET would be associated with a reorganization energy larger than that of the pH 11 reaction. Significantly, the decay kinetics of S-1 and the tyrosyl radical were accelerated in peptide A compared to solution samples at both pH values. These data suggest either an increase in electronic coupling or a specific, sequence-dependent interaction, which facilitates ET and PCET in the beta hairpin.
机译:在蛋白质中,质子偶联电子转移(PCET)可能涉及芳香族氨基酸酪氨酸的瞬时氧化和还原。由于酪氨酰基自由基中间体的寿命短,瞬态吸收光谱法在解密电子转移机理方面提供了重要的工具。在此报告中,使用瞬态皮秒吸收光谱研究了酪氨酸和酪氨酸盐溶液的光电离。将结果与从含酪氨酸的β-发夹肽获得的数据进行比较。该模型肽A是一种18-聚体,在酪氨酸(Y5)和组氨酸(H14)之间表现出pi-pi相互作用。当Y5在中等pH范围内被氧化时,Y5和H14进行正交PCET反应。所有样品的光解(280 nm,仪器响应:360 fs)在3 ps内产生溶剂化的电子信号。在3 ps内也形成了来自S-1状态的信号和来自中性酪氨酸基团的410 nm信号。拟合S-1和酪氨酰自由基衰变曲线揭示了双相动力学,其时间常数为10-50 ps和400-1300 ps。与单独的电子转移(ET)(pH 11)相比,在pH 9时PCET反应与酪氨酰自由基速率和S-1衰减显着降低有关。在溶液和肽样品中均观察到这种pH依赖性。 pH 9反应可以通过顺序电子转移,质子转移(ETPT)机理发生。备选地,pH 9反应可以通过质子和电子转移(CPET)耦合发生。 CPET的重组能量大于pH 11反应的重组能量。明显地,与溶液样品相比,在两个pH值下,肽A中的S-1和酪氨酰基自由基的衰减动力学都得到了加速。这些数据表明,电子偶联的增加或特定的,序列依赖性的相互作用,这促进了β发夹中的ET和PCET。

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