Department of Botany, Graduate School of Science, Kyoto University, Kyoto, 606-8502 Japan.
CREST, Japan Science and Technology Agency, Chiyoda-ku, Tokyo 102-0076, Japan.
Nat Plants. 2016 Feb 22;2:16012. doi: 10.1038/nplants.2016.12.
In photosynthesis, linear electron transport from water to nicotinamide adenine dinucleotide phosphate (NADP(+)) cannot satisfy the ATP/NADPH production stoichiometry required by the Calvin-Benson cycle. Cyclic electron transport (CET) around photosystem I (PSI) and pseudocyclic electron transport (pseudoCET) can produce ATP without the accumulation of NADPH. Flavodiiron proteins (Flv) are the main mediator of pseudoCET in photosynthetic organisms, spanning cyanobacteria to gymnosperms. However, their genes are not conserved in angiosperms. Here we explore the possibility of complementing CET with Flv-dependent pseudoCET in the angiosperm Arabidopsis thaliana. We introduced FlvA and FlvB genes from the moss Physcomitrella patens into both wild-type (WT) Arabidopsis and the proton gradient regulation 5 (pgr5) mutant, which is defective in the main pathway of CET. We measured rates of pseudoCET using membrane inlet mass spectrometry, along with several photosynthetic parameters. Flv expression significantly increased rates of pseudoCET in the mutant plants, particularly at high light intensities, and partially restored the photosynthetic phenotype. In WT plants, Flv did not compete with PGR5-dependent CET during steady-state photosynthesis, but did form a large electron sink in fluctuating light. We conclude that flavodiiron proteins can help to protect the photosystems in Arabidopsis under fluctuating light, even in the presence of CET.
在光合作用中,从水到烟酰胺腺嘌呤二核苷酸磷酸(NADP(+))的线性电子传递不能满足卡尔文-本森循环所需的 ATP/NADPH 产生化学计量比。围绕光系统 I(PSI)的循环电子传递(CET)和拟循环电子传递(pseudoCET)可以在不积累 NADPH 的情况下产生 ATP。黄铁蛋白(Flv)是光合生物中拟循环电子传递的主要介导物,从蓝藻到裸子植物都有。然而,它们的基因在被子植物中并不保守。在这里,我们探索了在被子植物拟南芥中用 Flv 依赖的拟循环电子传递来补充 CET 的可能性。我们从藓类植物Physcomitrella patens 中引入 FlvA 和 FlvB 基因到野生型(WT)拟南芥和质子梯度调节 5(pgr5)突变体中,后者在 CET 的主要途径中存在缺陷。我们使用膜入口质谱法测量了拟循环电子传递的速率,以及几个光合作用参数。Flv 的表达显著增加了突变体植物中的拟循环电子传递速率,特别是在高光强下,并部分恢复了光合作用表型。在 WT 植物中,Flv 在稳态光合作用期间不会与 PGR5 依赖的 CET 竞争,但在波动光下形成了一个大的电子汇。我们得出结论,黄铁蛋白可以帮助保护拟南芥中的光系统在波动光下,即使存在 CET。