Influence of the variation potential on photosynthetic flows of light energy and electrons in pea

被引:0
作者
Ekaterina Sukhova
Maxim Mudrilov
Vladimir Vodeneev
Vladimir Sukhov
机构
[1] N.I. Lobachevsky State University of Nizhny Novgorod,Department of Biophysics
来源
Photosynthesis Research | 2018年 / 136卷
关键词
Electron flow; Light energy dissipation; Light energy flow; pH changes; Regulation of photosynthesis; Variation potential;
D O I
暂无
中图分类号
学科分类号
摘要
Local damage (mainly burning, heating, and mechanical wounding) induces propagation of electrical signals, namely, variation potentials, which are important signals during the life of plants that regulate different physiological processes, including photosynthesis. It is known that the variation potential decreases the rate of CO2 assimilation by the Calvin–Benson cycle; however, its influence on light reactions has been poorly investigated. The aim of our work was to investigate the influence of the variation potential on the light energy flow that is absorbed, trapped and dissipated per active reaction centre in photosystem II and on the flow of electrons through the chloroplast electron transport chain. We analysed chlorophyll fluorescence in pea leaves using JIP-test and PAM-fluorometry; we also investigated delayed fluorescence. The electrical signals were registered using extracellular electrodes. We showed that the burning-induced variation potential stimulated a nonphotochemical loss of energy in photosystem II under dark conditions. It was also shown that the variation potential gradually increased the flow of light energy absorbed, trapped and dissipated by photosystem II. These changes were likely caused by an increase in the fraction of absorbed light distributed to photosystem II. In addition, the variation potential induced a transient increase in electron flow through the photosynthetic electron transport chain. Some probable mechanisms for the influence of the variation potential on the light reactions of photosynthesis (including the potential role of intracellular pH decrease) are discussed in the work.
引用
收藏
页码:215 / 228
页数:13
相关论文
共 390 条
  • [11] Inagaki N(2017)/OH Plant Cell Physiol 79 273-779
  • [12] Kanesaki Y(2011) channels in saline pathology of Front Plant Sci 188 775-228
  • [13] Murata N(2014): brief history BioChemistry 109 212-386
  • [14] Allakhverdiev SI(1980)Reactive oxygen species and oxidative burst: roles in stress, senescence and signal transduction in plants Biochem J 49 377-920
  • [15] Los DA(2015)Evidence for the involvement of electrical, calcium and ROS signaling in the systemic regulation of non-photochemical quenching and photosynthesis Environ Exp Bot 31 913-1210
  • [16] Mohanty P(2007)Calcium efflux systems in stress signaling and adaptation in plants Plant J 160 1203-1349
  • [17] Nishiyama Y(2004)Long-distance signal transmission and regulation of photosynthesis in characean cells Funct Plant Biol 250 1339-1385
  • [18] Murata N(2003)Action of calcium ions on spinach ( J Plant Physiol 119 1379-97
  • [19] Avenson TJ(2013)) chloroplast fructose bisphosphatase and other enzymes of the Calvin cycle Protoplasma 58 86-257
  • [20] Kanazawa A(1999)Mechanisms of oxidative stress in plants: from classical chemistry to cell biology Plant Physiol 30 249-552