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不同混合速率下阳光UV辐射对假微型海链藻PSⅡ功能的影响

涂勃, 袁悟飚, 徐兴莲, 梅洪, 吴红艳

涂勃, 袁悟飚, 徐兴莲, 梅洪, 吴红艳. 不同混合速率下阳光UV辐射对假微型海链藻PSⅡ功能的影响[J]. 植物科学学报, 2018, 36(2): 300-308. DOI: 10.11913/PSJ.2095-0837.2018.20300
引用本文: 涂勃, 袁悟飚, 徐兴莲, 梅洪, 吴红艳. 不同混合速率下阳光UV辐射对假微型海链藻PSⅡ功能的影响[J]. 植物科学学报, 2018, 36(2): 300-308. DOI: 10.11913/PSJ.2095-0837.2018.20300
Tu Bo, Yuan Wu-Biao, Xu Xing-Lian, Mei Hong, Wu Hong-Yan. Effect of solar UV radiation on photosystem Ⅱ function in Thalassiosira pseudonana under different mixing rates[J]. Plant Science Journal, 2018, 36(2): 300-308. DOI: 10.11913/PSJ.2095-0837.2018.20300
Citation: Tu Bo, Yuan Wu-Biao, Xu Xing-Lian, Mei Hong, Wu Hong-Yan. Effect of solar UV radiation on photosystem Ⅱ function in Thalassiosira pseudonana under different mixing rates[J]. Plant Science Journal, 2018, 36(2): 300-308. DOI: 10.11913/PSJ.2095-0837.2018.20300
涂勃, 袁悟飚, 徐兴莲, 梅洪, 吴红艳. 不同混合速率下阳光UV辐射对假微型海链藻PSⅡ功能的影响[J]. 植物科学学报, 2018, 36(2): 300-308. CSTR: 32231.14.PSJ.2095-0837.2018.20300
引用本文: 涂勃, 袁悟飚, 徐兴莲, 梅洪, 吴红艳. 不同混合速率下阳光UV辐射对假微型海链藻PSⅡ功能的影响[J]. 植物科学学报, 2018, 36(2): 300-308. CSTR: 32231.14.PSJ.2095-0837.2018.20300
Tu Bo, Yuan Wu-Biao, Xu Xing-Lian, Mei Hong, Wu Hong-Yan. Effect of solar UV radiation on photosystem Ⅱ function in Thalassiosira pseudonana under different mixing rates[J]. Plant Science Journal, 2018, 36(2): 300-308. CSTR: 32231.14.PSJ.2095-0837.2018.20300
Citation: Tu Bo, Yuan Wu-Biao, Xu Xing-Lian, Mei Hong, Wu Hong-Yan. Effect of solar UV radiation on photosystem Ⅱ function in Thalassiosira pseudonana under different mixing rates[J]. Plant Science Journal, 2018, 36(2): 300-308. CSTR: 32231.14.PSJ.2095-0837.2018.20300

不同混合速率下阳光UV辐射对假微型海链藻PSⅡ功能的影响

基金项目: 

国家自然科学基金项目(31270452);教育部科学技术项目(213026A);淡水生态与生物技术国家重点实验室开放基金(2014FB04);河湖生态修复与藻类利用湖北省重点实验室项目(HHKF201508)。

详细信息
    作者简介:

    涂勃(1992-),男,硕士研究生,研究方向为藻类生理生态(E-mail:535069011@qq.com)。

    通讯作者:

    吴红艳,E-mail:why-z-z@hotmail.com

  • 中图分类号: Q949.27

Effect of solar UV radiation on photosystem Ⅱ function in Thalassiosira pseudonana under different mixing rates

Funds: 

This work was supported by grants from the National Natural Science Foundation of China (31270452), Research Project of Chinese Ministry of Education (213026A), Open Project Foundation of State Key Laboratory of Freshwater Ecology and Biotechnology (2014FB04) and Project of Key Laboratory of Ecological Remediation for Lakes and Rivers and Algal Utilization of Hubei Province (HHKF201508).

  • 摘要: 以浮游硅藻假微型海链藻(Thalassiosira pseudonana(Hustedt)Hasle et Heimdal CCMP 1335)为材料,研究不同混合速率下,随辐射水平增加,UV辐射和可见光PAR对其光系统Ⅱ功能的影响。结果显示,混合速率慢时,随着PAR及UV辐射水平的增加,假微型海链藻PSⅡ的光化学效率(Fv/Fm)持续受到抑制,光合效率α和相对最大电子传递速率rETRmax下降。尤其是UV辐射存在时,PSⅡ反应中心D1蛋白含量下降,有活性的PSⅡ反应中心数量减少,单位反应中心吸收(ABS/RC)和耗散(DI0/RC)的能量增加。混合速率快时,PAR辐射下PSⅡ光化学活性相比混合速率慢时升高,D1蛋白含量增加;而UV辐射存在下各光合参数表现出与混合速率慢时类似的变化趋势。研究结果表明水体混合速率的加快可缓解高水平可见光导致的光抑制,而对UV辐射的抑制效应并未产生显著改变。
    Abstract: The marine diatom Thalassiosira pseudonana was selected as experimental material to investigate the impact of photosynthetically active radiation (PAR) and PAR plus ultraviolet radiation (UVR) on the function of photosystem Ⅱ(PSⅡ) with increasing irradiance levels at two different mixing rates. Results showed that, at slow mixing speed, the maximum quantum yield of PSⅡ(Fv/Fm), photosynthetic efficiency parameter (α), and maximum relative electron transport rate (rETRmax) were progressively inhibited with increasing irradiance levels in both PAR and PAR + UVR treatments. The decreased PSⅡ D1 protein content, which indicates less active PSⅡ reaction centers, led to the increase in energy fluxes for absorption (ABS/RC) and dissipation (DI0/RC) per reaction center. In contrast, at fast mixing speed, Fv/Fm increased under PAR compared with that at slow mixing and D1 protein content was also enhanced. However, similar changes were shown in various photosynthetic parameters under UVR. These results indicate that fast mixing could alleviate the photoinhibition caused by high PAR but could not modify the effects of UVR.
  • [1]

    Kerr JB, McElroy CT. Evidence for large upward trends of ultraviolet-B radiation linked to ozone depletion[J]. Science, 1993, 262(5136):1032-1034.

    [2]

    Lubin D, Jensen EH. Effects of clouds and stratospheric ozone depletion on ultraviolet radiation trends[J]. Nature, 1995, 377(6551):710-713.

    [3]

    Manney GL, Santee ML, Rex M, Livesey NJ, Pitts MC, et al. Unprecedented Arctic ozone loss in 2011[J]. Nature, 2011, 478(7370):469-475.

    [4]

    Wu H, Gao K, Wu H. Responses of a marine red tide alga Skeletonema costatum (Bacillariophyceae) to long-term UV radiation exposures[J]. J Photoch Photobio B, 2009, 94(2):82-86.

    [5]

    Wu H, Gao K. Ultraviolet radiation stimulated activity of extracellular carbonic anhydrase in the marine diatom Skeletonema costatum[J]. Funct Plant Biol, 2009, 36(2):137-143.

    [6] 张培玉, 唐学玺, 蔡恒江, 于娟, 杨震. 3种海洋赤潮微藻蛋白质和核酸合成对UV-B辐射增强的响应[J]. 植物生态学报, 2005, 29(3):505-509.

    Zhang PY, Tang XX, Cai HJ, Yu J, Yang Z. Effects of UV-B radiation on protein and nucleic acid synthesis in three species of marine red-tide microalgae[J]. Chinese Journal of Plant Ecology, 2005, 29(3):505-509.

    [7]

    Wulff A, Roleda MY, Zacher K, Wiencke C. UV radiation effects on pigments, photosynthetic efficiency and DNA of an Antarctic marine benthic diatom community[J]. Aquat Biol, 2008, 3(2):167-177.

    [8]

    Buma A, Zemmelink HJ, Sjollema K, Gieskes W. UVB radiation modifies protein and photosynthetic pigment content, volume and ultrastructure of marine diatoms[J]. Mar Ecol-Prog Ser, 1996, 142(1):47-54.

    [9] 刘成圣, 唐学玺, 王艳玲, 王蒙, 王丽丽. UV-B辐射对三角褐指藻DNA伤害的研究[J]. 海洋水产研究, 2002, 23(2):45-48.

    Liu CS, Tang XX, Wang YL, Wang M, Wang LL. Studies on the damage of UV-B radiation to DNA of Phaeodactylum tricornutum[J]. Marine Fisheries Research, 2002, 23(2):45-48.

    [10]

    Helbling EW, Gao K, Ai H, Ma Z, Villafañe VE. Differential responses of Nostoc sphaeroides and Arthrospira platensis to solar ultraviolet radiation exposure[J]. J Appl Phycol, 2006, 18(1):57-66.

    [11]

    Boelen P, Veldhuis MJ, Buma AG. Accumulation and removal of UVB-induced DNA damage in marine tropical plankton subjected to mixed and simulated non-mixed conditions[J]. Aquat Microb Ecol, 2001, 24(3):265-274.

    [12]

    Neale PJ, Banaszak AT, Jarriel CR. Ultraviolet sunscreens in Gymnodinium sanguineum (Dinophyceae):mycosporine-like amino acids protect against inhibition of photosynthesis[J]. J Phycol, 1998, 34(6):928-938.

    [13]

    Köhler J, Schmitt M, Krumbeck H, Kapfer M, Litchman E, Neale PJ. Effects of UV on carbon assimilation of phytoplankton in a mixed water column[J]. Aquat Sci, 2001, 63(3):294-309.

    [14]

    Helbling EW, Gao K, Goncalves RJ, Wu H, Villafañe VE. Utilization of solar UV radiation by coastal phytoplankton assemblages off SE China when exposed to fast mixing[J]. Mar Ecol-Prog Ser, 2003, 259:59-66.

    [15]

    Jin P, Gao K, Villafañe VE, Campbell DA, Helbling EW. Ocean acidification alters the photosynthetic responses of a coccolithophorid to fluctuating ultraviolet and visible radiation[J]. Plant Physiol, 2013, 162(4):2084-2094.

    [16]

    Xu X, Liu J, Shi Q, Mei H, Zhao Y, Wu H. Ocean warming alters photosynthetic responses of diatom Phaeodactylum tricornutum to fluctuating irradiance[J]. Phycologia, 2016, 55(2):126-133.

    [17]

    Helbling EW, Carrillo P, Medina-Sánchez JM, Durán C, Herrera G, Villar-Argaiz M, Villafañe VE. Interactive effects of vertical mixing, nutrients and ultraviolet radiation:in situ photosynthetic responses of phytoplankton from high mountain lakes in Southern Europe[J]. Biogeosciences, 2013, 10(2):1037-1050.

    [18]

    White AJ, Critchley C. Rapid light curves:a new fluorescence method to assess the state of the photosynthetic apparatus[J]. Photosynth Res, 1999, 59(1):63-72.

    [19]

    Ralph PJ, Gademann R. Rapid light curves:a powerful tool to assess photosynthetic activity[J]. Aquat Bot, 2005, 82(3):222-237.

    [20]

    Genty B, Briantais JM, Baker NR. The relationship between the quantum yield of photosynthetic electron transport and quenching of chlorophyll fluorescence[J]. BBA-Gen Subjects, 1989, 990(1):87-92.

    [21]

    Jassby AD, Platt T. Mathematical formulation of the relationship between photosynthesis and light for phytoplankton[J]. Limnol Oceanogr, 1976, 21(4):540-547.

    [22]

    Strasser RJ, Srivastava A, Govindjee. Polyphasic chlorophyll a fluorescence transient in plants and cyanobacteria[J]. Photochem Photobiol, 1995, 61(1):32-42.

    [23] 李鹏民, 高辉远, Strasser RJ. 快速叶绿素荧光诱导动力学分析在光合作用研究中的应用[J]. 植物生理与分子生物学学报, 2005, 31(6):559-566.

    Li PM, Gao HY, Strasser RJ. Application of the fast chlorophyll fluorescence induction dynamics analysis in photosynthesis study[J]. Journal of Plant Physiology and Molecular Biology, 2005, 31(6):559-566.

    [24]

    Krüger GH, Tsimillimichael M, Strasser RJ. Light stress provokes plastic and elastic modifications in structure and function of photosystemⅡ in camellia leaves[J]. Physiol Plantarum, 1997, 101(2):265-277.

    [25]

    Gao K, Guan W. Light histories influence the impacts of solar ultraviolet radiation on photosynthesis and growth in a marine diatom, Skeletonema costatum[J]. J Photoch Photobio B, 2008, 91(2):151-156.

    [26]

    Lu C, Zhang J, Zhang Q, Li L, Kuang T. Modification of photosystemⅡ photochemistry in nitrogen deficient maize and wheat plants[J]. J Plant Physiol, 2001, 158(11):1423-1430.

    [27]

    Helbling EW, Buma AG, De Poll WH, Zenoff MV, Villafañe VE. UVR-induced photosynthetic inhibition dominates over DNA damage in marine dinoflagellates exposed to fluctuating solar radiation regimes[J]. J Exp Mar Biol Ecol, 2008, 365(2):96-102.

    [28]

    Ohnishi N, Allakhverdiev SI, Takahashi S, Higashi S, Watanabe M, et al. Two-step mechanism of photodamage to photosystemⅡ:step 1 occurs at the oxygen-evolving complex and step 2 occurs at the photochemical reaction center[J]. Biochemistry, 2005, 44:8494-8499.

    [29]

    Che Y, Fu A, Hou X, McDonald K, Buchanan BB, Huang W, Luan S. C-terminal processing of reaction center protein D1 is essential for the function and assembly of photosystemⅡ in Arabidopsis[J]. Proc Natl Acad Sci USA, 2013, 110(40):16247-16252.

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出版历程
  • 收稿日期:  2017-10-22
  • 网络出版日期:  2022-10-31
  • 发布日期:  2018-04-27

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