氮磷对铜绿微囊藻群体形态的影响

被引:6
作者
周健 [1 ,2 ]
杨桂军 [3 ]
秦伯强 [1 ]
张光生 [3 ]
许慧萍 [3 ]
机构
[1] 中国科学院南京地理与湖泊研究所,湖泊科学与环境国家重点实验室
[2] 中国科学院大学
[3] 江南大学环境与土木工程学院
基金
国家自然科学基金重点项目;
关键词
铜绿微囊藻; 群体形态; 群体消失; 氮、磷质量浓度;
D O I
10.13198/j.issn.1001-6929.2014.11.05
中图分类号
X173 [环境植物学];
学科分类号
071012 ; 0713 ;
摘要
在自然条件下,铜绿微囊藻主要以群体形态存在,其群体形态通常由10103数量级的单位细胞组成,然而在实验室条件下经过几代培养之后,铜绿微囊藻的群体形态逐渐变为单细胞和少量双细胞.在实验室条件〔温度为(25±1)℃,光照强度为2 000 lx,光暗比为12 h∶12 h〕下,采用不同ρ(TN)、ρ(TP)的BG11培养基培养群体形态的太湖铜绿微囊藻(FACHB912),其中T1试验组ρ(TN)、ρ(TP)分别为1.00、0.05 mg/L,T2试验组为5.00、0.25 mg/L,T3试验组为25.00、1.25 mg/L,T4试验组为125.00、6.25 mg/L,T5试验组为247.06、7.11 mg/L.结果表明:T1、T2和T3试验组铜绿微囊藻群体形态细胞所占比例及群体大小均有所增加,T4和T5试验组则表现为减少,并且T1、T2、T3试验组与T4、T5试验组间差异显著(P<0.05).T1、T2、T3试验组出现了>100个细胞的群体,其中T2试验组的铜绿微囊藻群体最大,最大群体约由960个藻细胞组成;而T4、T5试验组中的群体却趋于消失.相对于单细胞,群体形态的铜绿微囊藻在低ρ(TN)、ρ(TP)条件下能吸收更多的营养盐,有利于细胞的生长;高ρ(TN)、ρ(TP)条件下提供了丰富的营养盐,但可能抑制或者不能刺激胞外多糖的合成和分泌,从而不利于铜绿微囊藻群体形态的维持.
引用
收藏
页码:1251 / 1257
页数:7
相关论文
共 48 条
[1]  
Lake eutrophication and its ecosystem response[J]. QIN BoQiang,GAO Guang,ZHU GuangWei,ZHANG YunLin,SONG YuZhi,TANG XiangMing,XU Hai,DENG JianMing.Chinese Science Bulletin. 2013(09)
[2]  
Environmental factors controlling colony formation in blooms of the cyanobacteria Microcystis spp. in Lake Taihu, China[J] . Jianrong Ma,Justin D. Brookes,Boqiang Qin,Hans W. Paerl,Guang Gao,Pan Wu,Wei Zhang,Jianming Deng,Guangwei Zhu,Yunling Zhang,Hai Xu,Hailin Niu.Harmful Algae . 2014
[3]  
Harmful Cyanobacterial Blooms: Causes, Consequences, and Controls[J] . Hans W. Paerl,Timothy G. Otten.Microbial Ecology . 2013 (4)
[4]  
A large-scale biological control experiment to improve water quality in eutrophic Lake Taihu, China[J] . Boqiang Qin.Lake and Reservoir Management . 2013 (1)
[5]   Contrasting zooplankton communities of two bays of the large, shallow, eutrophic Lake Taihu, China: Their relationship to environmental factors [J].
Yang Guijun ;
Qin Boqiang ;
Tang Xiangming ;
Gong Zhijun ;
Zhong Chunni ;
Zou Hua ;
Wang Xiaodong .
JOURNAL OF GREAT LAKES RESEARCH, 2012, 38 (02) :299-308
[6]   The role of microcystins in maintaining colonies of bloom-forming Microcystis spp. [J].
Gan, Nanqin ;
Xiao, Yan ;
Zhu, Lin ;
Wu, Zhongxing ;
Liu, Jin ;
Hu, Chenlin ;
Song, Lirong .
ENVIRONMENTAL MICROBIOLOGY, 2012, 14 (03) :730-742
[7]   Resilience to Blooms [J].
Brookes, Justin D. ;
Carey, Cayelan C. .
SCIENCE, 2011, 334 (6052) :46-47
[8]   Morphological and physiological changes in Microcystis aeruginosa as a result of interactions with heterotrophic bacteria [J].
Shen, Hong ;
Niu, Yuan ;
Xie, Ping ;
Tao, Min ;
Yang, Xi .
FRESHWATER BIOLOGY, 2011, 56 (06) :1065-1080
[9]   Characterizing a cyanobacterial bloom in western Lake Erie using satellite imagery and meteorological data [J].
Wynne, Timothy T. ;
Stumpf, Richard P. ;
Tomlinson, Michelle C. ;
Dyble, Julianne .
LIMNOLOGY AND OCEANOGRAPHY, 2010, 55 (05) :2025-2036
[10]  
Controlling harmful cyanobacterial blooms in a hyper-eutrophic lake (Lake Taihu, China): The need for a dual nutrient (N & P) management strategy[J] . Hans W. Paerl,Hai Xu,Mark J. McCarthy,Guangwei Zhu,Boqiang Qin,Yiping Li,Wayne S. Gardner.Water Research . 2010 (5)