收稿日期: 2010-04-22
修回日期: 2010-11-14
网络出版日期: 2011-05-04
基金资助
海洋公益性行业科研专项(200705026); 国家自然科学基金项目(40830852、41025007); 国家重点基础研究发展计划项目(2007CB815905)
Diurnal variations of photosynthetic efficiency of symbiotic algae of reef-building corals in a Sanya fringing reef
Received date: 2010-04-22
Revised date: 2010-11-14
Online published: 2011-05-04
Supported by
海洋公益性行业科研专项(200705026); 国家自然科学基金项目(40830852、41025007); 国家重点基础研究发展计划项目(2007CB815905)
对海南三亚鹿回头珊瑚礁礁坪上块状类型的粗糙菊花珊瑚Goniastrea aspera、澄黄滨珊瑚Porites lutea和枝状类型的指状蔷薇珊瑚Montipora digitata的虫黄藻光合作用的有效光量子产量Fv/Fm′ (Fv为可变荧光值, Fm′为光适应后的最大荧光值)开展了连续4d的现场监测, 旨在了解珊瑚共生虫黄藻光合作用效率的日变化规律。结果表明: 1)3种造礁珊瑚虫黄藻的Fv/Fm′与太阳辐射、温度呈现良好的负相关性, 即太阳辐射越强、温度越高珊瑚虫黄藻的Fv/Fm′就越低, 其中Fv/Fm′与太阳辐射的相关性高于与温度的相关性。2)珊瑚虫黄藻能够利用日照光进行光合作用, 但存在一定的阈值, 当光合有效辐射强度PAR<250µmol•(m2•s)-1时, 珊瑚虫黄藻的有效光量子产量Fv/Fm′随着光强增强而增强, 超过这一辐射强度时, 珊瑚虫黄藻的Fv/Fm′迅速降低。3)从珊瑚虫黄藻的有效光量子产量Fv/Fm′的日变化看, 粗糙菊花珊瑚虫黄藻的日变化幅度最小, 澄黄滨珊瑚和指状蔷薇珊瑚的变化幅度接近。
关键词: 造礁石珊瑚; 有效光量子产量Fv/Fm′; 光合有效辐射; 光抑制
黄玲英,余克服,施祺,赵美霞,陈天然,严宏强 . 三亚造礁石珊瑚虫黄藻光合作用效率的日变化规律[J]. 热带海洋学报, 2011 , 30(2) : 46 -50 . DOI: 10.11978/j.issn.1009-5470.2011.02.046
Using pulse amplitude modulated (PAM) chlorophyll fluorescence techniques, the authors monitored the photo-chemical efficiency of symbiotic algae (zooxanthellae) within the tissues of three species of reef-building corals in a Sanya fringing reef, and analyzed their response to diurnal irradiance variations. The results indicate that: 1) Fv/Fm′, an indicator of actual photochemical efficiency, showed clear diurnal variations, with high values occurring in the morning and evening when solar radiation was weak and low values occurring in the noon matching with strong solar radiation. Regression analysis suggests that the Fv/Fm′ values were negatively corelated to both radiation and water temperature, and were more likely adjusted by solar radiation. 2)Although sunlight is essential for the photosynthesis of symbiotic algae, a threshold was found between the sunshine intensity and photosynthetic efficiency. When the photosynthetic active radiation (PAR) was lower than 250µmol•(m2•s)-1, the Fv/Fm′ increased with the increasing of PAR; while Fv/Fm′ decreased with the increasing of PAR when PAR was higher than 250µmol•(m2•s)-1. 3) Among the three investigated corals, Goniastrea aspera showed smaller amplitude of daily Fv/Fm′ variations than that of Porites lutea and Montipora digitata, which had similar Fv/Fm′ variations to each other.
Key words: reef-building corals; Fv/Fm′; photochemical efficiency; photo-inhibition
[1] 李淑, 余克服. 珊瑚礁白化研究进展[J]. 生态学报, 2007, 27(5): 2059-2069.
[2] ROWAN R, KNOWLTON N, BAKER A, et al. Landscape ecology of algal symbionts creates variation in episodes of coral bleaching[J]. Nature, 1997, 388(6639): 265-269.
[3] TRENCH R K. The cell biology of plant-animal symbiosis[J]. Annual Review of Plant Physiology, 1979, 30: 485-531.
[4] LESSER M P, FARRELL J H. Exposure to solar radiation increases damage to both host tissues and algal symbionts of corals during thermal stress[J]. Coral Reefs, 2004, 23(3): 367-377.
[5] HOEGH-GULDBERG O, JONES R J. Photoinhibition and photoprotection in symbiotic dinoflagellates from reef-building corals[J]. Marine Ecology Progress Series, 1999, 183: 73-86.
[6] 赵美霞, 余克服, 张乔民, 等. 近
[7] GENTY B, BRIANTAIS J M, BAKER N R. The relationship between the quantum yield of photosynthetic electron transport and quenching of chlorophyll fuorescence[J]. Biochimica et Biophysica Acta, 1989, 990: 87-92.
[8] 陈景玲. 实用光源的lx与µmol·m-2·s-1的转换关系[J]. 河南农业大学学报, 1998, 32(2): 199-202.
[9] GORBUNOV M, KOLBER Z S, LESSER M P, et al. Photosynthesis and photoprotection in symbiotic corals[J]. Limol Oceanogr, 2001, 46: 75-85.
[10] JONES R J, HOEGH-GULDBERG O. Diurnal changes in the photochemical efficiency of the symbiotic dinoflagellates (Dinophyceae) of corals: photoprotection, photoinactivation and the relationship to coral bleaching [J]. Plant, Cell and Environment, 2001, 24: 89-99.
[11] 李秀保, 黄晖, 练健生, 等. 珊瑚及共生藻在白化过程中的适应机制研究进展[J]. 生态学报, 2007, 27(3): 1217-1225.
[12] GLYNN P W. Coral-reef bleaching: ecological perspectives[J]. Coral Reefs, 1993, 12(1): 1-17.
[13] MULLER P, LI X P, NIYOGI K K. Non-photochemical quenching. A response to excess light energy[J]. Plant Physiology, 2001, 125(4): 1558-1566.
[14] LONG S P, HUMPHRIES S, FALKOWSKI P G. Photoinhibition of photosynthesis in nature [J]. Annual Review of Plant Physiology and Molecular Biology, 1994, 45: 633-662.
[15] 董高峰, 陈贻竹, 蒋跃明. 植物叶黄素循环与非辐射能量耗散[J]. 植物生理学通讯, 1999, 35(2): 141-144.
/
〈 |
|
〉 |