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首页> 外文期刊>Biochemistry >Steady-state FTIR spectra of the photoreduction of QA and QB in Rhodobacter sphaeroides reaction centers provide evidence against the presence of a proposed transient electron acceptor X between the two quinones.
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Steady-state FTIR spectra of the photoreduction of QA and QB in Rhodobacter sphaeroides reaction centers provide evidence against the presence of a proposed transient electron acceptor X between the two quinones.

机译:乳杆菌的QA和QB的稳态FTIR光谱乳晕反应中心提供了在两个醌之间存在所提出的瞬态电子受体x的证据。

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In the reaction center (RC) of the photosynthetic bacterium Rhodobacter sphaeroides, two ubiquinone molecules, QA and QB, play a pivotal role in the conversion of light energy into chemical free energy by coupling electron transfer to proton uptake. In native RCs, the transfer of an electron from QA to QB takes place in the time range of 5-200 micros. On the basis of time-resolved FTIR step-scan measurements in native RCs, a new and unconventional mechanism has been proposed in which QB- formation precedes QA- oxidation [Remy, A., and Gerwert, K. (2003) Nat. Struct. Biol. 10, 637-644]. The IR signature of the proposed transient intermediary electron acceptor (denoted X) operating between QA and QB has been recently measured by the rapid-scan technique in the DN(L210) mutant RCs, in which the QA to QB electron transfer is slowed 8-fold compared to that in native RCs. This IR signature has been reported as a difference spectrum involving states X+, X, QA, and QA- [Hermes, S., et al. (2006) Biochemistry 45, 13741-13749]. Here, we report the steady-state FTIR difference spectra of the photoreduction of either QA or QB measured in both native and DN(L210) mutant RCs in the presence of potassium ferrocyanide. In these spectra, the CN stretching marker modes of ferrocyanide and ferricyanide allow the extent of the redox reactions to be quantitatively compared and are used for a precise normalization of the QA-/QA and QB-/QB difference spectra. The calculated QA- QB/QA QB- double-difference spectrum in DN(L210) mutant RCs is closely equivalent to the reported QA- X+/QA X spectrum in the rapid-scan measurement. We therefore conclude that species X+ and X are spectrally indistinguishable from QB and QB-, respectively. Further comparison of the QA- QB/QA QB- double-difference spectra in native and DN(L210) RCs also allows the possibility that QB- formation precedes QA- reoxidation to be ruled out for native RCs.
机译:在光合细菌乳菌斯氏菌的反应中心(RC)中,通过将电子转移耦合到质子摄取,两个泛醌分子,QA和QB在光能转化为无化学能量中起枢转作用。在天然RCS中,从QA到QB的电子传送在5-200微米的时间范围内。基于天然RC的时间分辨的FTIR步骤扫描测量,已经提出了一种新的和非规定的机制,其中QB-氧化术后[REMY,A.和Gerwert,K。(2003)NAT。结构。 BIOL。 10,637-644]。最近通过DN(L210)突变体RC中的快速扫描技术测量了QA和QB之间的所提出的瞬态中间电子受体(表示X)的IR签名,其中QA对QB电子传输减慢8-与本机RCS相比折叠。该IR签名已被报告为涉及状态X +,X,QA和QA- [Hermes,S.等人的差异频谱。 (2006)生物化学45,13741-13749]。这里,我们在亚铁氰化钾存在下报告在天然和DN(L210)突变体RC中测量的QA或QB的稳态FTIR差异谱。在这些光谱中,氟氰化物和铁氰化物的CN拉伸标记模式允许定量比较氧化还原反应的程度,用于精确标准化QA-/ QA和QB / QB差异光谱。 DN(L210)突变体RC中的计算的QA-QB / QA QB-双差异谱与Rapid-Scan测量中报告的QA-X + / QA X光谱非常相当。因此,我们得出结论,物种X +和X分别从QB和QB分别可以分别地区分。进一步比较天然和DN(L210)RC中的QA-QB / QA QB-双差异光谱还允许QB-形成之前的可能性QA-再氧化以用于天然RCS。

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