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光系统II中电子受体Q和质体醌库的氧化还原滴定

Redox titration of electron acceptor Q and the plastoquinone pool in photosystem II.

作者信息

Golbeck J H, Kok B

出版信息

Biochim Biophys Acta. 1979 Aug 14;547(2):347-60. doi: 10.1016/0005-2728(79)90016-1.

Abstract

The primary photochemical quencher Q and the secondary electron acceptor pool in Photosystem II have been titrated. We used particles of Scenedesmus mutant No. 8 that lack System I and allowed the system to equilibrate with external redox mediators in darkness prior to measurement of the fluorescence rise curve. The titration of Q, as indicated by the dark level of Fi, occurs in two discrete steps. The high-potential component (Qh) has a midpoint potential of +68 mV (pH 7.2) and accounts for approximately 67% of Q. The pH sensitivity of the midpoint potential is -60 mV, indicating the involvement of 1 H+/e. The low-potential component (Q1) accounts for the remaining 33% of Q and shows a midpoint potential near--300 mV (pH 7.2). The plastoquinone pool, assayed as the half-time of the fluorescence rise curve, titrates as a single component with a midpoint potential 30--40 mV more oxidizing than that of Qh, i.e., at 106 mV (pH 7.2). The Em shows a pH sensitivity of -60 mV/pH unit, indicating the involvement of 1 H+/e. The observation that all 12--14 electron equivalents in the pool titrate as a single component indicates that the heterogeneity otherwise observed in the secondary acceptor system is a kinetic rather than a thermodynamic property. Illumination causes peculiar, and as yet unclarified, changes of both Q and the secondary pool under anaerobic conditions that are reversed by oxygen.

摘要

已经对光系统II中的初级光化学猝灭剂Q和次级电子受体库进行了滴定。我们使用了缺乏系统I的栅藻突变体8号的颗粒,并在测量荧光上升曲线之前,让系统在黑暗中与外部氧化还原介质达到平衡。如Fi的暗水平所示,Q的滴定分两个离散步骤进行。高电位组分(Qh)的中点电位为+68 mV(pH 7.2),约占Q的67%。中点电位中点电位的pH敏感性为-60 mV,表明涉及1个H⁺/e。低电位组分(Q1)占Q的其余33%,其中点电位接近-300 mV(pH 7.2)。作为荧光上升曲线半衰期测定的质体醌库,作为单一成分进行滴定,其中点电位比Qh的中点电位氧化程度高30 - 40 mV,即在106 mV(pH 7.2)。Em显示出-60 mV/pH单位的pH敏感性,表明涉及1个H⁺/e。库中所有12 - 14个电子当量作为单一成分进行滴定的观察结果表明,在次级受体系统中观察到的异质性是一种动力学性质而非热力学性质。光照在厌氧条件下会导致Q和次级库发生特殊的、尚未阐明的变化,这些变化会被氧气逆转。

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