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首页> 外文期刊>Biophysical Journal >Primary charge separation in the photosystem II core from Synechocystis: a comparison of femtosecond visible/midinfrared pump-probe spectra of wild-type and two P680 mutants.
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Primary charge separation in the photosystem II core from Synechocystis: a comparison of femtosecond visible/midinfrared pump-probe spectra of wild-type and two P680 mutants.

机译:分离集胞藻的光系统II核心中的主要电荷分离:野生型和两个P680突变体飞秒可见/中红外泵浦-探针谱的比较。

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It is now quite well accepted that charge separation in PS2 reaction centers starts predominantly from the accessory chlorophyll B(A) and not from the special pair P(680). To identify spectral signatures of B(A,) and to further clarify the process of primary charge separation, we compared the femtosecond-infrared pump-probe spectra of the wild-type (WT) PS2 core complex from the cyanobacterium Synechocystis sp. PCC 6803 with those of two mutants in which the histidine residue axially coordinated to P(B) (D2-His(197)) has been changed to Ala or Gln. By analogy with the structure of purple bacterial reaction centers, the mutated histidine is proposed to be indirectly H-bonded to the C(9)=O carbonyl of the putative primary donor B(A) through a water molecule. The constructed mutations are thus expected to perturb the vibrational properties of B(A) by modifying the hydrogen bond strength, possibly by displacing the H-bonded water molecule, and to modify the electronic properties and the charge localizationof the oxidized donor P(680)(+). Analysis of steady-state light-induced Fourier transform infrared difference spectra of the WT and the D2-His(197)Ala mutant indeed shows that a modification of the axially coordinating ligand to P(B) induces a charge redistribution of P(680)(+). In addition, a comparison of the time-resolved visible/midinfrared spectra of the WT and mutants has allowed us to investigate the changes in the kinetics of primary charge separation induced by the mutations and to propose a band assignment identifying the characteristic vibrations of B(A).
机译:现在已经被人们广泛接受,PS2反应中心的电荷分离主要从辅助叶绿素B(A)开始,而不是从特殊的P(680)对开始。为了鉴定B(A,)的光谱特征并进一步阐明一次电荷分离的过程,我们比较了来自蓝藻集胞藻属(Sychochocystis sp)的野生型(WT)PS2核心复合物的飞秒红外泵浦探针光谱。 PCC 6803具有两个突变体,其中轴向与P(B)(D2-His(197))配位的组氨酸残基已更改为Ala或Gln。通过类似于紫色细菌反应中心的结构,提出了突变的组氨酸通过水分子间接H键合到推定的主要供体B(A)的C(9)= O羰基的方法。因此,预期构建的突变会通过改变氢键强度(可能是通过取代氢键的水分子)来扰乱B(A)的振动特性,并改变氧化的供体P(680)的电子特性和电荷定位(+)。 WT和D2-His(197)Ala突变体的稳态光诱导傅立叶变换红外差异光谱的分析确实表明,轴向配位体对P(B)的修饰会诱导P(680)的电荷重新分布(+)。此外,通过比较WT和突变体在时间上的可见/中红外光谱,我们可以研究由突变引起的初次电荷分离动力学的变化,并提出能确定B(特征振动)的谱带分配。一种)。

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