Santabarbara Stefano, Casazza Anna Paola
Centre for Fundamental Research in Photosynthesis, Vergiate, Italy.
Photosynthesis Research Unit, Centro Studi sulla Biologia Cellulare e Molecolare delle Piante, Milan, Italy.
Front Plant Sci. 2019 Jul 2;10:852. doi: 10.3389/fpls.2019.00852. eCollection 2019.
Two phylloquinone molecules ( ), one being predominantly coordinated by PsaA subunit residues ( ) the other by those of PsaB ( ), act as intermediates in the two parallel electron transfer chains of Photosystem I. The oxidation kinetics of the two phyllosemiquinones by the iron-sulfur cluster F differ by approximately one order of magnitude, with being oxidized in about 200 ns and in about 20 ns. These differences are generally explained in terms of asymmetries in the driving force for F reduction on the two electron transfer chains. Site directed mutations of conserved amino acids composing the binding site have been engineered on both reaction center subunits, and proved to affect selectively the oxidation lifetime of either , for PsaA mutants, or , for PsaB mutants. The mutation effects are here critically reviewed, also by novel modeling simulations employing the tunneling formalism to estimate the electron transfer rates. Three main classes of mutation effects are in particular addressed: (i) those leading to an acceleration, (ii) those leading to a moderated slowing (~5-folds), and (iii) those leading to a severe slowing (>20-folds) of the kinetics. The effect of specific amino acid perturbations contributing to the poising of the phylloquinones redox potential and, in turn, to PSI functionality, is discussed.
两个叶绿醌分子( ),一个主要由光系统I的PsaA亚基残基( )配位,另一个由PsaB亚基残基( )配位,它们在光系统I的两条平行电子转移链中充当中间体。铁硫簇F对两个叶半醌的氧化动力学相差约一个数量级, 在约200纳秒内被氧化, 在约20纳秒内被氧化。这些差异通常用两条电子转移链上F还原驱动力的不对称性来解释。在两个反应中心亚基上都设计了构成 结合位点的保守氨基酸的定点突变,并证明这些突变会选择性地影响PsaA突变体的 或PsaB突变体的 的氧化寿命。本文对突变效应进行了批判性综述,还通过采用隧穿形式主义来估计电子转移速率的新型建模模拟进行了综述。特别讨论了三类主要的突变效应:(i)导致加速的效应,(ii)导致适度减慢(约5倍)的效应,以及(iii)导致动力学严重减慢(>20倍)的效应。还讨论了特定氨基酸扰动对叶绿醌氧化还原电位的平衡以及进而对光系统I功能的影响。