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Involvement of cyclic electron flow in irradiance stress responding and its potential regulation of the mechanisms in Pyropia yezoensis 被引量:1

Involvement of cyclic electron flow in irradiance stress responding and its potential regulation of the mechanisms in Pyropia yezoensis
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摘要 Pyropia yezoensis, belongs to the genus of P orphyra before 2011, inhabit on intertidal zone rocks where irradiation changes dramatically, implying that the seaweed has gained certain mechanisms to survive a harsh environment. Based on the photosynthetic parameters with or without the inhibitors determined by a Dual-PAM-100 apparatus, we investigated the photosynthetic performance and the changes in electron fl ow that occurred during the algae were stressed with dif ferent light intensities previously. When the irradiation saturation was approaching, the CEF around PS I became crucial since the addition of inhibitors usually led to an increase in non-photochemical quenching. The inhibitor experiments showed that there were at least three dif ferent CEF pathways in Py. yezoensis and these pathways compensated each other. In addition to maintaining a proper ratio of ATP/NAD(P)H to support effi cient photosynthesis, the potential roles of CEF might also include the regulation of dif ferent photoprotective mechanisms in Py. yezoensis. Under the regulation of CEF, chlororespiration is thought to transport electrons from the reduced plastoquinone(PQ) pool to oxygen in order to mitigate the reduction in the electron transfer chain. When irradiation was up to the high-grade stress conditions, the relative value of CEF began to decrease, which implied that the NADP+ pool or PQ + pool was very small and that the electrons were transferred from reduced PS I to oxygen. The scavenging enzymes might be activated and the water-water cycle probably became an ef fective means of removing the active oxygen produced by the irradiation stressed Py. yezoensis. We believe that the dif ferent mechanisms could make up the photoprotective network to allow Py. yezoensis for survival in a highly variable light stress habitat, which may enlighten scientists in future studies on irradiance stress in other algae species. Pyropia yezoensis, belongs to the genus of P orphyra before 2011, inhabit on intertidal zone rocks where irradiation changes dramatically, implying that the seaweed has gained certain mechanisms to survive a harsh environment. Based on the photosynthetic parameters with or without the inhibitors determined by a Dual-PAM-100 apparatus, we investigated the photosynthetic performance and the changes in electron fl ow that occurred during the algae were stressed with dif ferent light intensities previously. When the irradiation saturation was approaching, the CEF around PS I became crucial since the addition of inhibitors usually led to an increase in non-photochemical quenching. The inhibitor experiments showed that there were at least three dif ferent CEF pathways in Py. yezoensis and these pathways compensated each other. In addition to maintaining a proper ratio of ATP/NAD(P)H to support effi cient photosynthesis, the potential roles of CEF might also include the regulation of dif ferent photoprotective mechanisms in Py. yezoensis. Under the regulation of CEF, chlororespiration is thought to transport electrons from the reduced plastoquinone(PQ) pool to oxygen in order to mitigate the reduction in the electron transfer chain. When irradiation was up to the high-grade stress conditions, the relative value of CEF began to decrease, which implied that the NADP+ pool or PQ + pool was very small and that the electrons were transferred from reduced PS I to oxygen. The scavenging enzymes might be activated and the water-water cycle probably became an ef fective means of removing the active oxygen produced by the irradiation stressed Py. yezoensis. We believe that the dif ferent mechanisms could make up the photoprotective network to allow Py. yezoensis for survival in a highly variable light stress habitat, which may enlighten scientists in future studies on irradiance stress in other algae species.
出处 《Chinese Journal of Oceanology and Limnology》 SCIE CAS CSCD 2016年第4期730-739,共10页 中国海洋湖沼学报(英文版)
基金 Supported by the National Natural Science Foundation of China(No.41176134) the Laboratory for Marine Biology and Biotechnology,Qingdao National Laboratory for Marine Science and Technology,the Prospective Joint Research Project of Jiangsu Province(No.BY2011188) the National Basic Research Program of China(973 Program)(No.2011CB411908) the National Marine Public Welfare Research Project(Nos.201105023-8,201105008-2)
关键词 光保护机制 条斑紫菜 辐射应力 电子流 水循环 应力响应 调控 电子传递链 cyclic electron flow dual-PAM Pyropia yezoensis irradiation stress photoprotective mechanism
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  • 1Amon D I, Chain R K. 1975. Regulation of ferredoxin- catalyzed photosynthetic phosphorylations. Proceeding of the National Academy of Sciences of the United States of America, 72(12): 4 961-4 965.
  • 2Asada K. 1999. The water-water cycle in Chloroplasts: scavenging of active oxygens and dissipation of excess photons. Annual Review of Plant Physiology and Plant Molecular Bioloev. 50: 601-639.
  • 3Baier M, Dietz K J. 1999. Alkyl hydroperoxide reductases: theway out of the oxidative breakdown of lipids in chloroplasts. Trends in Plant Science, 4(5): 166-168.
  • 4Bendall D S. 1982. Photosynthetic cytochromes of oxygenic organisms. Biochimica et Biophysica Acta (BBA)-Reviews on Bioenergetics, 683(2): 119-151.
  • 5Bendall D S, Manasse R S. 1995. Cyclic photophosphorylation and electron transport. Biochimica et Biophysica Acta (BBA)-Bioenergetics, 1229(1): 23-38.
  • 6Bennoun P. 1982. Evidence for a respiratory chain in the chloroplast. Proceeding of the National Academy of Sciences of the United States of America, 79(14): 4 352- 4 356.
  • 7Brooks M D, Sylak-Glassman E J, Fleming G R, Niyogi K K. 2013. A thioredoxin-like/13-propeller protein maintains the efficiency of light harvesting in Arabidopsis. Proceeding of the National Academy of Sciences of the United States of America, 110(29): E2733-E2740.
  • 8Bukhov N, Carpentier R. 2004. Alternative photosystem I-driven electron transport routes: mechanisms and functions. Photosynthesis Research, 82(1): 17-33.
  • 9Carol P, Stevenson D, Bisanz C, Breitenbach J, Sandmann G, Mache R, Coupland G, Kuntz M. 1999. Mutations in the Arabidopsis gene IMMUTANS cause a variegated phenotype by inactivating a chloroplast terminal oxidase associated with phytoene desaturation. The Plant Cell, 11(1): 57-68.
  • 10Corneille S, Cournac L, Guedeney G, Havaux M, Peltier G. 1998. Reduction of the plastoquinone pool by exogenous NADH and NADPH in higher plant chloroplasts: characterization of a NAD(P)H-plastoquinone oxidoreductase activity. Biochimica et Biophysica Acta (BBA)-Bioenergetics, 1363(1): 59-69.

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