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Conformational Dynamics and Temperature Dependence of Photoinduced Electron Transfer within Self-Assembled Coproporphyrin:Cytochrome c Complexes

机译:自组装共卟啉:细胞色素c配合物内光诱导电子转移的构象动力学和温度依赖性

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摘要

The focus of the present study is to better understand the complex factors influencing intermolecular electron transfer (ET) in biological molecules using a model system involving free-base coproporphyrin (COP) complexed with horse heart cytochrome c (Cc). Coproporphyrin exhibits bathochromic shifts in both the Soret and visible absorption bands in the presence of Cc and an absorption difference titration reveals a 1:1 complex with an association constant of 2.63 ± 0.05 × 105 M−1. At 20°C, analysis of time-resolved fluorescence data reveals two lifetime components consisting of a discrete lifetime at 15.0 ns (free COP) and a Gaussian distribution of lifetimes centered at 2.8 ns (representing 1COP → Cc ET). Temperature-dependent, time-resolved fluorescence data demonstrate a shift in singlet lifetime as well as changes in the distribution width (associated with the complex). By fitting these data to semiclassical Marcus theory, the reorganizational energy (λ) of the singlet state electron transfer was calculated to be 0.89 eV, consistent with values for other porphyrin/Cc intermolecular ET reactions. Using nanosecond transient absorption spectroscopy the temperature dependences of the forward and thermal back ET originating from triplet state were examined (3COP → Cc ET). Fits of the temperature dependence of the rate constants to semiclassical Marcus theory gave λ of 0.39 eV and 0.11 eV for the forward and back triplet ET, respectively (kf = (7.6 ± 0.3) × 106 s−1, kb = (2.4 ± 0.3) × 105 s−1). The differing values of λ for the forward and back triplet ET demonstrate that these ET reactions do not occur within a static complex. Comparing these results with previous studies of the uroporphyrin:Cc and tetrakis (4-carboxyphenyl)porphyrin:Cc complexes suggests that side-chain flexibility gives rise to the conformational distributions in the 1COP → Cc ET whereas differences in overall porphyrin charge regulates gating of the back ET reaction (reduced Cc → COP+).
机译:本研究的重点是使用涉及与马心细胞色素c(Cc)结合的游离碱共卟啉(COP)的模型系统,更好地了解影响生物分子中分子间电子转移(ET)的复杂因素。在存在Cc的情况下,卟啉在Soret和可见吸收带中均出现红移,并且吸收差异滴定显示1:1络合物的缔合常数为2.63±0.05×10 5 M -1 。在20°C下,对时间分辨荧光数据的分析显示出两个寿命分量,包括15.0 ns的离散寿命(自由COP)和以2.8 ns为中心的寿命的高斯分布(代表 1 COP→抄送)。温度相关的,时间分辨的荧光数据证明了单线态寿命的变化以及分布宽度的变化(与络合物相关)。通过将这些数据拟合到半经典的Marcus理论,单重态电子转移的重组能(λ)计算为0.89 eV,与其他卟啉/ Cc分子间ET反应的值一致。使用纳秒瞬态吸收光谱法研究了源自三重态的正向和反向热ET的温度依赖性( 3 COP→Cc ET)。速率常数对温度的依赖关系对半经典Marcus理论的拟合得出,向前和向后三重态ET的λ分别为0.39 eV和0.11 eV(kf =(7.6±0.3)×10 6 s < sup> -1 ,kb =(2.4±0.3)×10 5 s -1 )。向前和向后三重态ET的不同λ值表明,这些ET反应不会在静态复合物中发生。将这些结果与以前的尿卟啉:Cc和四(4-羧基苯基)卟啉:Cc络合物的研究相比较表明,侧链柔性导致 1 COP→Cc ET的构象分布,而差异卟啉中的总电荷可调节逆向ET反应的门控(降低的Cc→COP + )。

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