Miyao M, Ikeuchi M, Yamamoto N, Ono T
Laboratory of Photosynthesis, National Institute of Agrobiological Resources (NIAR), Tsukuba, Japan.
Biochemistry. 1995 Aug 8;34(31):10019-26. doi: 10.1021/bi00031a025.
The D1 protein of the photosystem II (PSII) reaction center has a rapid turnover and is specifically degraded under illumination in vivo. When isolated PSII membranes were treated in darkness with 10 mM hydrogen peroxide (H2O2), an active form of oxygen that is generated at the acceptor side of PSII under illumination, proteins of the PSII reaction center were specifically damaged in almost the same way as observed under illumination with strong light. The D1 protein and, to a lesser extent, the D2 protein were degraded to specific fragments, and cross-linked products (the covalently linked adduct of the D1 protein and the alpha subunit of cytochrome b559 and the heterodimer of the D1 and D2 proteins) were generated concomitantly. The site of cleavage of the D1 protein that gave rise to a major fragment of 22 kDa was located in the loop that connects membrane-spanning helixes IV and V. Treatment with H2O2 caused the same damage to proteins in isolated thylakoids and in core complexes that contained the non-heme iron at the acceptor side, but not in isolated reaction centers depleted of the iron. From these observations and the effects of reagents that are known to interact with the non-heme iron, it is suggested that the damage to proteins is caused by oxygen radicals generated by the non-heme iron in the Fe(II) state in a reaction with H2O2. It is proposed, moreover, that a similar mechanism is operative during the selective and specific degradation of the D1 protein under illumination.
光系统II(PSII)反应中心的D1蛋白周转迅速,在体内光照条件下会被特异性降解。当分离的PSII膜在黑暗中用10 mM过氧化氢(H2O2)处理时(H2O2是光照条件下在PSII受体侧产生的一种活性氧形式),PSII反应中心的蛋白质受到的特异性损伤方式几乎与强光照射下观察到的相同。D1蛋白以及程度稍轻的D2蛋白被降解为特定片段,同时还产生了交联产物(D1蛋白与细胞色素b559的α亚基的共价连接加合物以及D1和D2蛋白的异二聚体)。产生22 kDa主要片段的D1蛋白裂解位点位于连接跨膜螺旋IV和V的环中。H2O2处理对分离的类囊体以及受体侧含有非血红素铁的核心复合物中的蛋白质造成相同损伤,但对不含铁的分离反应中心中的蛋白质没有损伤。基于这些观察结果以及已知与非血红素铁相互作用的试剂的影响,表明蛋白质损伤是由处于Fe(II)状态的非血红素铁与H2O2反应产生的氧自由基引起的。此外,有人提出在光照条件下D1蛋白的选择性和特异性降解过程中也存在类似机制。