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首页> 外文期刊>Biochemistry >Photosystem activity and state transitions of the photosynthetic apparatus in cyanobacterium Synechocystis PCC 6803 mutants with different redox state of the plastoquinone pool
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Photosystem activity and state transitions of the photosynthetic apparatus in cyanobacterium Synechocystis PCC 6803 mutants with different redox state of the plastoquinone pool

机译:质体醌池氧化还原状态不同的蓝藻蓝藻PCC 6803突变体的光系统活性和光合作用的状态转变

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摘要

To better understand how photosystem (PS) activity is regulated during state transitions in cyanobacteria, we studied photosynthetic parameters of photosystem II (PSII) and photosystem I (PSI) in Synechocystis PCC 6803 wild type (WT) and its mutants deficient in oxidases (Ox(-)) or succinate dehydrogenase (SDH-). Dark-adapted Ox(-) mutant, lacking the oxidation agents, is expected to have a reduced PQ pool, while in SDH- mutant the PQ pool after dark adaptation will be more oxidized due to partial inhibition of the respiratory chain electron carriers. In this work, we tested the hypothesis that control of balance between linear and cyclic electron transport by the redox state of the PQ pool will affect PSII photosynthetic activity during state transition. We found that the PQ pool was reduced in Ox(-) mutant, but oxidized in SDH- mutant after prolonged dark adaptation, indicating different states of the photosynthetic apparatus in these mutants. Analysis of variable fluorescence and 77K fluorescence spectra revealed that the WT and SDH- mutant were in State 1 after dark adaptation, while the Ox(-) mutant was in State 2. State 2 was characterized by similar to 1.5 time lower photochemical activity of PSII, as well as high rate of P700 reduction and the low level of P700 oxidation, indicating high activity of cyclic electron transfer around PSI. Illumination with continuous light 1 (440 nm) along with flashes of light 2 (620 nm) allowed oxidation of the PQ pool in the Ox(-) mutant, thus promoting it to State 1, but it did not affect PSII activity in dark adapted WT and SDH- mutant. State 1 in the Ox(-) mutant was characterized by high variable fluorescence and P700(+) levels typical for WT and the SDH- mutant, indicating acceleration of linear electron transport. Thus, we show that PSII of cyanobacteria has a higher photosynthetic activity in State 1, while it is partially inactivated in State 2. This process is controlled by the redox state of PQ in cyanobacteria through enhancement/inhibition of electron transport on the acceptor side of PSII.
机译:为了更好地了解蓝藻状态转换过程中光系统(PS)的活性如何受到调控,我们研究了蓝藻PCC 6803野生型(WT)及其氧化酶缺陷型突变体(Ox)中光系统II(PSII)和光系统I(PSI)的光合参数。 (-))或琥珀酸脱氢酶(SDH-)。缺乏氧化剂的暗适应型Ox(-)突变体预期具有降低的PQ库,而在SDH-突变体中,暗适应后的PQ库将由于呼吸链电子载体的部分抑制而被更多地氧化。在这项工作中,我们测试了以下假设:通过PQ池的氧化还原状态控制线性和循环电子传输之间的平衡将影响状态转换过程中PSII的光合作用。我们发现PQ库在Ox(-)突变体中减少,但在SDH-突变体中延长了黑暗适应后被氧化,表明这些突变体中光合装置的状态不同。可变荧光和77K荧光光谱分析表明,黑暗适应后WT和SDH-突变体处于状态1,而Ox(-)突变体处于状态2。状态2的特征是PSII的光化学活性低1.5倍以及P700还原速率高和P700氧化程度低,表明PSI周围循环电子转移的活性高。用连续光1(440 nm)以及闪烁的光2(620 nm)进行照明可以使Ox(-)突变体中的PQ池氧化,从而将其提升为状态1,但在黑暗适应环境中它不会影响PSII活性WT和SDH-突变体。 Ox(-)突变体中的状态1以高可变荧光和WT和SDH-突变体典型的P700(+)水平为特征,表明加速了线性电子传输。因此,我们表明蓝细菌的PSII在状态1中具有较高的光合作用活性,而在状态2中则被部分灭活。该过程受蓝细菌中PQ的氧化还原状态的控制,是通过增强/抑制电子在受体侧的传递来实现的。 PSII。

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