首页> 外文期刊>The Journal of Chemical Physics >The importance of vibronic perturbations in ferrocytochrome c spectra:A reevaluation of spectral properties based on low-temperature optical absorption,resonance Raman,and molecular-dynamics simulations
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The importance of vibronic perturbations in ferrocytochrome c spectra:A reevaluation of spectral properties based on low-temperature optical absorption,resonance Raman,and molecular-dynamics simulations

机译:铁磁色素c光谱中振动的重要性:基于低温光吸收,共振拉曼光谱和分子动力学模拟的光谱性质的重新评估

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We have measured and analyzed the low-temperature(T=10 K)absorption spectrum of reduced horse heart and yeast cytochrome c.Both spectra show split and asymmetric Q_0 and Q_v bands.The spectra were first decomposed into the individual split vibronic sidebands assignable to B_(1g_(v_(15))and A_(2g)(v_(19),V_(21),and v_(22))Herzberg-Teller active modes due to their strong intensity in resonance Raman spectra acquired with Q_0 and Q_v excitations.The measured band splittings and asymmetries cannot be rationalized solely in terms of electronic perturbations of the heme macrocycle.On the contrary,they clearly point to the importance of considering not only electronic perturbations but vibronic perturbations as well.The former are most likely due to the heterogeneity of the electric field produced by charged side chains in the protein environment,whereas the latter reflect a perturbation potential due to multiple heme-protein interactions,which deform the heme structure in the ground and excited states.Additional information about vibronic perturbations and the associated ground-state deformations are inferred from the depolarization ratios of resonance Raman bands.The results of our analysis indicate that the heme group in yeast cytochrome c is more nonplanar and more distorted along a B_(2g)coordinate than in horse heart cytochrome c.This conclusion is supported by normal structural decomposition calculations performed on the heme extracted from molecular-dynamic simulations of the two investigated proteins.Interestingly,the latter are somewhat different from the respective deformations obtained from the x-ray structures.
机译:我们测量并分析了还原后的马心脏和酵母细胞色素c的低温(T = 10 K)吸收光谱,这两个光谱均显示了分裂且不对称的Q_0和Q_v谱带。 B_(1g_(v_(15))和A_(2g)(v_(19),V_(21)和v_(22))Herzberg-Teller主动模式,因为它们在Q_0和Q_v上获得的共振拉曼光谱强度很高不能仅仅根据血红素大环的电子扰动来合理化所测得的能带分裂和不对称性。相反,它们清楚地指出了不仅要考虑电子扰动而且还要考虑电子振动的重要性。前者很可能是由于蛋白质环境中带电侧链产生的电场的异质性,而后者反映了由于多种血红素-蛋白质相互作用而引起的扰动电位,从而使地面和激发态的血红素结构变形从共振拉曼谱带的去极化比可以推断出有关振动扰动和相关基态变形的其他信息。我们的分析结果表明,酵母细胞色素c中的血红素基团沿B_ { 2g)的坐标比马心脏细胞色素c的坐标要好。这一结论得到了对两种被研究蛋白质的分子动力学模拟中提取的血红素进行正常结构分解计算的支持。 -射线结构。

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