Huang Wei, Yang Ying-Jie, Zhang Shi-Bao, Liu Tao
Key Laboratory of Economic Plants and Biotechnology, Kunming Institute of Botany, Chinese Academy of Sciences, Kunming, China.
University of Chinese Academy of Sciences, Beijing, China.
Front Plant Sci. 2018 Feb 26;9:239. doi: 10.3389/fpls.2018.00239. eCollection 2018.
In higher plants, moderate photoinhibition of photosystem II (PSII) leads to a stimulation of cyclic electron flow (CEF) at low light, which is accompanied by an increase in the P700 oxidation ratio. However, the specific role of CEF stimulation at low light is not well known. Furthermore, the mechanism underlying this increase in P700 oxidation ratio at low light is unclear. To address these questions, intact leaves of the shade-adapted plant were treated at 2258 μmol photons m s for 30 min to induce PSII photoinhibition. Before and after this high-light treatment, PSI and PSII activity, the energy quenching in PSII, the redox state of PSI and proton motive force () at a low light of 54 μmol photons m s were determined at the steady state. After high-light treatment, electron flow through PSII (ETRII) significantly decreased but CEF was remarkably stimulated. The P700 oxidation ratio significantly increased but non-photochemical quenching changed negligibly. Concomitantly, the total decreased significantly and the proton gradient (ΔpH) across the thylakoid membrane remained stable. Furthermore, the P700 oxidation ratio was negatively correlated with the value of ETRII. These results suggest that upon PSII photoinhibition, CEF is stimulated to increase the ATP synthesis, facilitating the rapid repair of photodamaged PSII. The increase in P700 oxidation ratio at low light cannot be explained by the change in , but is primarily controlled by electron transfer from PSII.
在高等植物中,光系统II(PSII)的适度光抑制会导致在低光照下循环电子流(CEF)增强,同时伴随着P700氧化率的增加。然而,低光照下CEF增强的具体作用尚不清楚。此外,低光照下P700氧化率增加的潜在机制也不明确。为了解决这些问题,对适应阴生环境的植物的完整叶片在2258 μmol光子·m⁻²·s⁻¹的光照下处理30分钟以诱导PSII光抑制。在这种高光处理前后,在54 μmol光子·m⁻²·s⁻¹的低光照下,测定了PSI和PSII活性、PSII中的能量猝灭、PSI的氧化还原状态和质子动力势()的稳态。高光处理后,通过PSII的电子流(ETRII)显著降低,但CEF明显增强。P700氧化率显著增加,但非光化学猝灭变化可忽略不计。同时,总的显著降低,类囊体膜两侧的质子梯度(ΔpH)保持稳定。此外,P700氧化率与ETRII的值呈负相关。这些结果表明,在PSII光抑制时,CEF被刺激以增加ATP合成,促进光损伤PSII的快速修复。低光照下P700氧化率的增加不能用的变化来解释,而是主要由从PSII的电子转移控制。