首页> 美国卫生研究院文献>Plant Physiology >Single and Double Knockouts of the Genes for Photosystem I Subunits G K and H of Arabidopsis. Effects on Photosystem I Composition Photosynthetic Electron Flow and State Transitions
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Single and Double Knockouts of the Genes for Photosystem I Subunits G K and H of Arabidopsis. Effects on Photosystem I Composition Photosynthetic Electron Flow and State Transitions

机译:拟南芥光系统I亚基GK和H的基因的单和双敲除。对光系统I组成光合电子流和状态转变的影响

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摘要

Photosystem I (PSI) of higher plants contains 18 subunits. Using Arabidopsis En insertion lines, we have isolated knockout alleles of the genes psaG, psaH2, and psaK, which code for PSI-G, -H, and -K. In the mutants psak-1 and psag-1.4, complete loss of PSI-K and -G, respectively, was confirmed, whereas the residual H level in psah2-1.4 is due to a second gene encoding PSI-H, psaH1. Double mutants, lacking PSI-G, and also -K, or a fraction of -H, together with the three single mutants were characterized for their growth phenotypes and PSI polypeptide composition. In general, the loss of each subunit has secondary, in some cases additive, effects on the abundance of other PSI polypeptides, such as D, E, H, L, N, and the light-harvesting complex I proteins Lhca2 and 3. In the G-less mutant psag-1.4, the variation in PSI composition suggests that PSI-G stabilizes the PSI-core. Levels of light-harvesting complex I proteins in plants, which lack simultaneously PSI-G and -K, indicate that PSI subunits other than G and K can also bind Lhca2 and 3. In the same single and double mutants, psag-1.4, psak-1, psah2-1.4, psag-1.4/psah2-1.4, and psag-1.4/psak-1 photosynthetic electron flow and excitation energy quenching were analyzed to address the roles of the various subunits in P700 reduction (mediated by PSI-F and -N) and oxidation (PSI-E), and state transitions (PSI-H). Based on the results, we also suggest for PSI-K a role in state transitions.
机译:高等植物的光系统I(PSI)包含18个亚基。使用拟南芥En插入系,我们分离了基因psaG,psaH2和psaK的敲除等位基因,它们编码PSI-G,-H和-K。在突变体psak-1和psag-1.4中,分别确认了PSI-K和-G完全丧失,而psah2-1.4中的残留H水平是由于编码PSI-H的第二个基因psaH1引起的。缺乏PSI-G的双重突变体,以及-K或-H的一部分,以及三个单一突变体的特征在于其生长表型和PSI多肽组成。通常,每个亚基的丧失对其他PSI多肽(例如D,E,H,L,N和光捕获复合体I蛋白Lhca2和3)的丰度具有次要的(在某些情况下为累加)影响。在无G突变体psag-1.4的情况下,PSI组成的变化表明PSI-G可稳定PSI核心。植物中同时缺乏PSI-G和-K的光采复合I蛋白的水平表明,除G和K之外的PSI亚基也可以结合Lhca2和3。在相同的单突变体和双突变体psag-1.4,psak中分析了-1,psah2-1.4,psag-1.4 / psah2-1.4和psag-1.4 / psak-1光合电子流和激发能猝灭,以解决P700还原中各种亚基的作用(由PSI-F和-N)和氧化(PSI-E),以及状态转换(PSI-H)。根据结果​​,我们还建议PSI-K在状态转换中起作用。

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