Yanykin D V, Khorobrykh A A, Mamedov M D, Klimov V V
Institute of Basic Biological Problems, Russian Academy of Sciences, Pushchino 142290, Moscow Region, Russia.
Institute of Basic Biological Problems, Russian Academy of Sciences, Pushchino 142290, Moscow Region, Russia.
J Photochem Photobiol B. 2015 Nov;152(Pt B):279-85. doi: 10.1016/j.jphotobiol.2015.08.033. Epub 2015 Sep 8.
It is known that the removal of manganese from the water-oxidizing complex (WOC) of photosystem 2 (PS2) leads to activation of oxygen photoconsumption (OPC) [Khorobrykh et al., 2002; Yanykin et al., 2010] that is accompanied by the formation of organic hydroperoxides on the electron-donor side of PS2 [Khorobrykh et al., 2011]. In the present work the effect of trehalose on the OPC in Mn-depleted PS2 preparations (apo-WOC-PS2) was investigated. A more than two-fold increase of the OPC is revealed upon the addition of 1M trehalose. Drastic (30%-70%) inhibition of the OPC upon the addition of either electron acceptor or electron donor indicates that the trehalose-induced activation of the OPC occurs on both donor and acceptor sides of PS2. A two-fold increase in the rate of superoxide-anion radical photoproduction on the electron-acceptor side of PS2 was also shown. Applying the "variable" chlorophyll fluorescence (ΔF) it was shown that the addition of trehalose induces: (i) a significant increase in the ability of exogenous Mn(2+) to donate electrons to the reaction center of PS2, (ii) slowing down the photoaccumulation of the primary quinone electron acceptor of PS2 (QA(-)) under aerobic conditions, (iii) acceleration of the reoxidation of QA(-) by QB (and by QB(-)) as well as the replacement of QB(2-) by a fully oxidized plastoquinone, and (iv) restoration of the electron transfer between the quinone electron carriers in the so-called "closed reaction centers of PS2" (their content in the apo-WOC-PS2 is 41%). It is suggested that the trehalose-induced increase in efficiency of the O2 interaction with the electron-donor and electron-acceptor sides of apo-WOC-PS2 is due to structural changes leading to both a decrease in the proportion of the "closed PS2 reaction centers" and an increase in the electron transfer rate in PS2.
已知从光系统2(PS2)的水氧化复合物(WOC)中去除锰会导致氧光消耗(OPC)的激活[霍罗布里赫等人,2002年;扬金等人,2010年],这伴随着PS2供体侧有机氢过氧化物的形成[霍罗布里赫等人,2011年]。在本工作中,研究了海藻糖对锰耗尽的PS2制剂(脱辅基WOC-PS2)中OPC的影响。添加1M海藻糖后,OPC增加了两倍多。添加电子受体或电子供体后,OPC受到剧烈(30%-70%)抑制,这表明海藻糖诱导的OPC激活发生在PS2的供体侧和受体侧。PS2受体侧超氧阴离子自由基光产生速率也增加了两倍。应用“可变”叶绿素荧光(ΔF)表明,添加海藻糖会诱导:(i)外源Mn(2+)向PS2反应中心供电子能力显著增加,(ii)在有氧条件下PS2初级醌电子受体(QA(-))的光积累减缓,(iii)QA(-)被QB(和QB(-))再氧化以及完全氧化的质体醌取代QB(2-)的加速,以及(iv)在所谓的“PS2封闭反应中心”(脱辅基WOC-PS2中其含量为41%)中醌电子载体之间电子转移的恢复。有人认为,海藻糖诱导的apo-WOC-PS2供体侧和受体侧与O2相互作用效率的增加是由于结构变化导致“封闭PS2反应中心”比例降低以及PS2中电子转移速率增加。