Tokutsu Ryutaro, Iwai Masakazu, Minagawa Jun
Institute of Low Temperature Science, Hokkaido University, Sapporo 060-0819, Japan.
J Biol Chem. 2009 Mar 20;284(12):7777-82. doi: 10.1074/jbc.M809360200. Epub 2009 Jan 13.
In oxygen-evolving photosynthesis, the two photosystems, photosystem I (PSI) and photosystem II (PSII), function in parallel, and their excitation levels must be balanced to maintain an optimal photosynthetic rate under various light conditions. State transitions balance excitation energy between the two photosystems by redistributing light-harvesting complex II (LHCII) proteins. Here we describe two RNA interference (RNAi) mutants of the green alga Chlamydomonas reinhardtii with one of the minor monomeric LHCII proteins, CP29 or CP26, knocked down. These two proteins have been identified in PSI-LHCI supercomplexes that harbor mobile LHCII proteins from PSII under a state where PSII is preferentially excited (State 2). We show that both the CP29 and CP26 RNAi mutants undergo reductions in the PSII antenna size during a transition from State 1 (a state where PSI is preferentially excited) to State 2, as reflected by nonphotochemical quenching of fluorescence, low temperature fluorescence spectra, and functional absorption cross-section. However, the undocked LHCIIs from PSII do not re-associate with PSI in the CP29-RNAi (b4i) mutant because the antenna size of PSI was not complementary increased. The mobile LHCIIs in the CP26-RNAi (b5i) mutant, however, re-associate with PSI, whose PSI-LHCI/II supercomplex is visualized on a sucrose density gradient. This study clarifies that CP29, not CP26, is an essential component in state transitions and demonstrates that CP29 is crucial when mobile LHCIIs re-associate with PSI under State 2 conditions.
在放氧光合作用中,两个光系统,即光系统I(PSI)和光系统II(PSII)并行发挥作用,并且它们的激发水平必须保持平衡,以便在各种光照条件下维持最佳光合速率。状态转换通过重新分配捕光复合体II(LHCII)蛋白来平衡两个光系统之间的激发能。在这里,我们描述了莱茵衣藻的两个RNA干扰(RNAi)突变体,其中一个小的单体LHCII蛋白CP29或CP26被敲低。这两种蛋白已在PSI-LHCI超复合体中被鉴定出来,在PSII优先被激发的状态(状态2)下,该超复合体含有来自PSII的可移动LHCII蛋白。我们表明,从状态1(PSI优先被激发的状态)转变到状态2时,CP29和CP26 RNAi突变体的PSII天线大小都会减小,这通过荧光的非光化学猝灭、低温荧光光谱和功能吸收截面得以体现。然而,在CP29-RNAi(b4i)突变体中,来自PSII的未对接LHCII不会与PSI重新结合,因为PSI的天线大小没有相应增加。然而,CP26-RNAi(b5i)突变体中的可移动LHCII会与PSI重新结合,其PSI-LHCI/II超复合体在蔗糖密度梯度上可见。这项研究阐明了CP29而非CP26是状态转换中的必需成分,并证明了在状态2条件下可移动LHCII与PSI重新结合时CP29至关重要。