首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >The Presence of the IsiA-PSI Supercomplex Leads to Enhanced Photosystem I Electron Throughput in Iron-Starved Cells of Synechococcus sp PCC 7002
【24h】

The Presence of the IsiA-PSI Supercomplex Leads to Enhanced Photosystem I Electron Throughput in Iron-Starved Cells of Synechococcus sp PCC 7002

机译:IsiA-PSI超复合物的存在导致Synechococcus sp PCC 7002的铁饥饿细胞中光系统I电子通量的提高。

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Photosystem I (PS I) is highly demanding of iron, requiring 12 atoms in the bound F-x, F-B, and F-A iron-sulfur clusters and two atoms in the mobile acceptor protein ferredoxin. When grown under iron-limiting conditions, certain cyanobacteria express IsiA, a peripheral chlorophyll a antenna protein, and IsiB, a flavodoxin that substitutes for ferredoxin. The IsiA protein forms single and double rings around PS I, presumably to increase the optical cross-section so as to compensate for fewer PS I complexes. Previous studies have shown that IsiA serves as an efficient light-harvesting structure (Andrizhievskaya, G. G.; et al. Biochim. Biophys. Acta 2002, 1556, 262-272); however, few, if any, studies have been carried out to show that the increased optical cross-section leads to an enhanced rate of electron transfer through PS I. Here, we report a more rapid transient accumulation of the A(1)(-) phyllosemiquinone anion radical by EPR spectroscopy in dark-adapted iron-depleted cells than in iron-replete cells after a block of intense light. A derivative-shaped optical signal in the light-minusdark difference spectrum of PS I from an electrochromic bandshift of a carotenoid located near the A, phylloquinones is enhanced in iron-depleted wild-type cells and in an iron-depleted isiB deletion strain, which lacks flavodoxin, but is greatly diminished in an iron-depleted isiA deletion strain, which lacks IsiA and flavodoxin. These findings indicate that the transient accumulation of electrons on A, occurs more rapidly in the IsiA/PS I supercomplex than in the PS I complex alone. Thus, the increased absorption cross-section from the IsiA proteins translates directly to an enhanced rate of electron transfer through PS I.
机译:光系统I(PS I)对铁的需求很高,在结合的F-x,F-B和F-A铁硫簇中需要12个原子,在移动受体蛋白铁氧还蛋白中需要2个原子。当在限铁条件下生长时,某些蓝细菌会表达IsiA(一种外围叶绿素是一种触角蛋白)和IsiB(一种替代铁氧还蛋白的黄素毒素)。 IsiA蛋白在PS I周围形成单环和双环,大概是为了增加光学截面,以补偿较少的PS I复合物。先前的研究表明,IsiA可作为一种有效的光收集结构(Andrizhievskaya,G.G .;等人,Biochim.Biophys.Acta 2002,1556,262-272)。但是,几乎没有研究(如果有的话)表明增加的光学截面会导致通过PS I的电子传输速率提高。在这里,我们报道了A(1)(- )在暗适应的铁贫化细胞中,EPR光谱法显示的叶半醌醌自由基比经过强光阻断后的铁贫化细胞中的阴离子。在贫铁的野生型细胞和缺铁的isiB缺失菌株中,来自位于A附近的类胡萝卜素的电致变色带的PS I的光-暗-暗差异谱中的派生形光信号在增强后增强了叶绿醌。缺乏黄酮毒素,但在缺少IsiA和黄酮毒素的缺铁isiA缺失菌株中大大减少。这些发现表明,在IsiA / PS I超复合物中,电子在A上的瞬态积累比仅在PS I复合物中发生的更快。因此,来自IsiA蛋白的吸收截面的增加直接转化为通过PS I的电子转移速率的提高。

著录项

相似文献

  • 外文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号