首页> 美国卫生研究院文献>Biophysical Journal >Optical Band Splitting and Electronic Perturbations of the Heme Chromophore in Cytochrome c at Room Temperature Probed by Visible Electronic Circular Dichroism Spectroscopy
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Optical Band Splitting and Electronic Perturbations of the Heme Chromophore in Cytochrome c at Room Temperature Probed by Visible Electronic Circular Dichroism Spectroscopy

机译:可见电子圆二色性光谱探测室温下细胞色素c中血红素生色团的光带分裂和电子扰动

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摘要

We have measured the electronic circular dichroism (ECD) of the ferri- and ferro-states of several natural cytochrome c derivatives (horse heart, chicken, bovine, and yeast) and the Y67F mutant of yeast in the region between 300 and 750 nm. Thus, we recorded the ECD of the B- and Q-band region as well as the charge-transfer band at ∼695 nm. The B-band region of the ferri-state displays a nearly symmetric couplet at the B0-position that overlaps with a couplet 790 cm−1 higher in energy, which we assigned to a vibronic side-band transition. For the ferro-state, the couplet is greatly reduced, but still detectable. The B-band region is dominated by a positive Cotton effect at energies lower than B0 that is attributed to a magnetically allowed iron→heme charge-transfer transition as earlier observed for nitrosyl myoglobin and hemoglobin. The Q-band region of the ferri-state is poorly resolved, but displays a pronounced positive signal at higher wavenumbers. This must result from a magnetically allowed transition, possibly from the methionine ligand to the dxy-hole of Fe3+. For the ferro-state, the spectra resolve the vibronic structure of the Qv-band. A more detailed spectral analysis reveals that the positively biased spectrum can be understood as a superposition of asymmetric couplets of split Q0 and Qv-states. Substantial qualitative and quantitative differences between the respective B-state and Q-state ECD spectra of yeast and horse heart cytochrome c can clearly be attributed to the reduced band splitting in the former, which results from a less heterogeneous internal electric field. Finally, we investigated the charge-transfer band at 695 nm in the ferri-state spectrum and found that it is composed of at least three bands, which are assignable to different taxonomic substates. The respective subbands differ somewhat with respect to their Kuhn anisotropy ratio and their intensity ratios are different for horse and yeast cytochrome c. Our data therefore suggests different substate populations for these proteins, which is most likely assignable to a structural heterogeneity of the distal Fe-M80 coordination of the heme chromophore.
机译:我们已经测量了几种天然细胞色素c衍生物(马心,鸡,牛和酵母)的亚铁和亚铁状态的电子圆二色性(ECD),以及在300至750 nm之间区域的酵母Y67F突变体。因此,我们记录了B波段和Q波段区域的ECD以及695 nm处的电荷转移带。亚铁态的B带区域在B0位置显示出几乎对称的对联,与能量较高的对联790 cm -1 重叠,我们将其分配给振动电子边带过渡。对于铁态,对联大大减少,但仍可检测到。 B波段区域以低于B0的正棉花效应占据主导地位,这归因于先前对亚硝酰基肌红蛋白和血红蛋白观察到的磁性允许的铁→血红素电荷转移跃迁。亚铁态的Q波段区域分辨不佳,但在较高波数下显示出明显的正信号。这必须归因于磁性允许的过渡,可能是从蛋氨酸配体到Fe 3 + 的dxy孔。对于铁态,光谱解析了Qv波段的振动结构。更详细的光谱分析表明,可以将正偏置光谱理解为Q0和Qv分裂态的不对称耦合的叠加。酵母和马心脏细胞色素c的各个B状态和Q状态ECD光谱之间的质和量上的显着差异可以清楚地归因于前者中条带分裂的减少,这是由内部电场的异质性降低所致。最后,我们研究了亚铁态光谱中695 nm处的电荷转移带,发现它由至少三个带组成,可分配给不同的分类学子状态。各个子带的Kuhn各向异性比有所不同,并且对于马和酵母细胞色素c,它们的强度比也有所不同。因此,我们的数据表明这些蛋白质具有不同的亚状态群,这很可能归因于血红素生色团末端Fe-M80配位的结构异质性。

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