National Key Laboratory of Plant Molecular Genetics, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, 300 Fenglin Road, Shanghai 200032, PR China.
Plant Cell Physiol. 2011 Oct;52(10):1734-43. doi: 10.1093/pcp/pcr109. Epub 2011 Aug 9.
Although bisulfite at low concentrations (L-NaHSO₃) has been found to increase the cyclic electron transport around PSI (CET), its regulative mechanism remains unknown. In this work, the role of L-NaHSO₃ (0.1-500 μM) in NAD(P)H dehydrogenase-dependent CET (the NDH pathway) was investigated. After treatment of tobacco leaves with L-NaHSO₃, the NDH pathway, as reflected by a transient post-illumination increase in Chl fluorescence, the dark reduction of P700+ after far-red light and the amount of NDH, was increased after the light-dark-light transition, but was slightly lowered under continuous light. Meanwhile, the linear electron transport (LET) was accelerated by L-NaHSO₃ under both the light regimes. Experiments in thylakoids further demonstrated that both LET, monitored by light-dependent oxygen uptake, and CET, as determined from the NADPH-dependent oxygen uptake and dark reduction of P700+, were enhanced by L-NaHSO₃ and the enhancements were abolished by superoxide dismutase. Furthermore, L-NaHSO₃-induced CET was partially impaired in thylakoids of the ΔndhCKJ mutant, while L-NaHSO₃-induced LET was not affected. Based on these results, we propose that the photooxidation of L-NaHSO₃ initiated by superoxide anions in PSI regulates NDH pathway to maintain efficient photosynthesis.
虽然低浓度的亚硫酸氢盐(L-NaHSO₃)已被发现可以增加 PSI 周围的循环电子传递(CET),但其调节机制尚不清楚。在这项工作中,研究了 L-NaHSO₃(0.1-500 μM)在 NAD(P)H 脱氢酶依赖性 CET(NDH 途径)中的作用。用 L-NaHSO₃处理烟草叶片后,NDH 途径,如光后短暂增加叶绿素荧光、远红光后 P700+的暗还原和 NDH 的量所示,在光-暗-光转变后增加,但在连续光照下略有降低。同时,L-NaHSO₃在两种光照条件下均加速了线性电子传递(LET)。类囊体的实验进一步表明,LET(通过光依赖性氧摄取监测)和 CET(通过 NADPH 依赖性氧摄取和 P700+的暗还原确定)均被 L-NaHSO₃增强,而超氧化物歧化酶可消除增强作用。此外,L-NaHSO₃诱导的 CET 在 ndhCKJ 突变体的类囊体中部分受损,而 L-NaHSO₃诱导的 LET 不受影响。基于这些结果,我们提出 PSI 中超氧阴离子引发的 L-NaHSO₃的光氧化调节 NDH 途径以维持有效的光合作用。