Makino Amane, Miyake Chikahiro, Yokota Akiho
Graduate School of Agricultural Sciences, Tohoku University, Tsutsumidori-Amamiyamachi, Aoba-ku, Sendai, 981-8555 Japan.
Plant Cell Physiol. 2002 Sep;43(9):1017-26. doi: 10.1093/pcp/pcf124.
Changes in chlorophyll fluorescence, P700(+)-absorbance and gas exchange during the induction phase and steady state of photosynthesis were simultaneously examined in rice (Oryza sativa L.), including the rbcS antisense plants. The quantum yield of photosystem II (PhiPSII) increased more rapidly than CO(2) assimilation in 20% O(2). This rapid increase in PhiPSII resulted from the electron flux through the water-water cycle (WWC) because of its dependency on O(2). The electron flux of WWC reached a maximum just after illumination, and rapidly generated non-photochemical quenching (NPQ). With increasing CO(2) assimilation, the electron flux of WWC and NPQ decreased. In 2% O(2), WWC scarcely operated and PhiPSI was always higher than PhiPSII. This suggested that cyclic electron flow around PSI resulted in the formation of NPQ, which remained at higher levels in 2% O(2). The electron flux of WWC in the rbcS antisense plants was lower, but these plants always showed a higher NPQ. This was also caused by the operation of the cyclic electron flow around PSI because of a higher ratio of PhiPSI/PhiPSII, irrespective of O(2) concentration. The results indicate that WWC functions as a starter of photosynthesis by generating DeltapH across thylakoid membranes for NPQ formation, supplying ATP for carbon assimilation. However, WWC does not act to maintain a high NPQ, and PhiPSII is down-regulated by DeltapH generated via the cyclic electron flow around PSI.
在水稻(Oryza sativa L.)包括rbcS反义植株中,同时检测了光合作用诱导期和稳态期间叶绿素荧光、P700(+)-吸光度及气体交换的变化。在20% O₂条件下,光系统II的量子产率(PhiPSII)比CO₂同化作用增加得更快。PhiPSII的这种快速增加是由于通过水-水循环(WWC)的电子通量,因为它依赖于O₂。WWC的电子通量在光照后立即达到最大值,并迅速产生非光化学猝灭(NPQ)。随着CO₂同化作用的增加,WWC的电子通量和NPQ降低。在2% O₂条件下,WWC几乎不运转,且PhiPSI始终高于PhiPSII。这表明围绕PSI的循环电子流导致了NPQ的形成,在2% O₂条件下NPQ保持在较高水平。rbcS反义植株中WWC的电子通量较低,但这些植株总是表现出较高的NPQ。这也是由于围绕PSI的循环电子流的运转,因为PhiPSI/PhiPSII的比值较高,与O₂浓度无关。结果表明,WWC通过在类囊体膜上产生用于形成NPQ的ΔpH,为碳同化提供ATP,从而作为光合作用的启动器发挥作用。然而,WWC并不起到维持高NPQ的作用,并且PhiPSII会被围绕PSI的循环电子流产生的ΔpH下调。