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亚铁离子对赤潮异弯藻种群消长和部分生化特性的影响 被引量:2

Population dynamics and some biochemical changes in Heterosigma akashiwo affected by ferrous ion
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摘要 研究了赤潮异弯藻(Heterosigma akashiwo)在不同浓度的Fe(NH4)2(SO4)2.6H2O(Fe1)和FeSO4.7H2O(Fe2)(浓度分别为:高铁150 nmol/L、低铁50 nmol/L,缺铁0 nmol/L Fe0)中的种群消长过程、单位细胞总多糖特征、光合色素chla、chlc变化以及NO3--N的吸收情况。结果表明,Fe2+浓度影响到赤潮异弯藻的消亡:缺铁组比高铁组种群消亡慢。在平台期和衰亡期时,Fe1各组单位细胞总多糖含量均明显高于Fe2各组。从平台期到衰亡期,各组单位细胞多糖含量明显增加,Fe2各组增量最大,Fe1各组多糖倍增与Fe0相似。亚铁离子浓度的进一步增加有利于单位细胞色素chla和chlc的积累。亚铁离子的不同化合物状态影响到多糖和光合色素的累积,但不影响种群生长率和对NO3--N的吸收。 The effects of ferrous ion on ichthyotoxic red tide organism Heterosigma akashiwo were studied. Two ferrous ion forms, Fe(NH4)2 (SO4)(Fel) and FeSO4 (Fe2), were added to the culture under three different concentrations (high group, 150 nmol/L low group, 50 nmol/L, naught group, 0 nmol/L), changes of population, polysaccharide, chlorophyll a and c and nitrate level in culture medium were investigated. The results indicated that ferrous concentration affects the population crash, a ferrous deficient group(Fe0) can maintain a longer life and a higher density than the higher iron groups during the population crash. The cellular polysaccharide content in Fe1 group is significantly higher than that in Fe2 group both at stationary phase and crash phase. From stationary phase to crash phase, the polysaccharide content in each group increased, the highest increase appeared in Fe2. Increase of ferrous ion is helpful to the accumulation of chlorophylls. The different formations of ferrous ion affect the accumulations of polysaccharide and chlorophylls but have no obvious effects on the population growth rate and nitrate level.
出处 《海洋科学》 CAS CSCD 北大核心 2008年第1期10-13,18,共5页 Marine Sciences
基金 国家自然科学基金项目(20472040) 教育部高等学校科技创新工程重大项目培育资金项目(705028) 浙江省自然科学基金资助项目(Y504083)
关键词 亚铁离子 赤潮异弯藻(Heterosigma akashiwo) 种群消长 多糖 光合色素 Ferrous ion Heterosigma akashiwo population dynamics polysaccharides chlorophylls
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参考文献17

  • 1郭玉洁.大连湾赤潮生物──赤潮异弯藻[J].海洋与湖沼,1994,25(2):211-215. 被引量:58
  • 2Han M S, Kim Y P, Cattolico R A. Heterosigrna akashiwo (Raphidophyceae) resting cell formation in batch culture: strain identity versus physiological response? [J]. Journal of Phyeology, 2002, 38(2):304-317.
  • 3Itakura S, Nagasaki K, Yamaguchi M, etal. Cyst formation in the red flagellate Heterosigma akashiwo (Raphidophyceae)[J]. J Plankton Res, 1996, 18: 1 975-1 979.
  • 4Khan S, Arakawa O, Onoue Y. Neurotoxins in a toxic red tide of Heterosigma akashiwo (Raphidophyceae) in Kagoshima Bay, Japan[J]. Aquaculture Research, 1997, 28(1): 9-17.
  • 5Smayda T J. Ecophysiology and bloom dynamics of Heterosigma akashiwo (Raphidophyceae)[A]. Anderson D M, Cerebella A D, Hallegraeff G M. Physiological Ecology of Harmful Algal Blooms [C].Germany:Springer-Verlag Berlin Heidelberg, 1998. 135-148.
  • 6Ono K, Khan S, Onoue Y. Effects of temperature and light intensity on the growth and toxicity of Heterosigma akashiwo (Raphidophyceae) [J]. Aquaculture Research, 2000, 31(5): 427-442.
  • 7Twiner M J, Dixon S J, Trick C G. Toxic effects of Heterosigma akashiwo do not appear to be mediated by hydrogen peroxide[J]. Limnol Oceanogr, 2001, 46(6) : 1 400 -1 405.
  • 8颜天,周名江,傅萌,于仁诚,王云峰,李钧,谭志军.赤潮异弯藻毒性及毒性来源的初步研究[J].海洋与湖沼,2003,34(1):50-55. 被引量:50
  • 9Martin J H, Fitzwater S E. Iron deficiency limits phytoplankton growth in the northeast Pacific subarctic[J]. Nature, 1988, 331:341-343.
  • 10de Baar H J W, de Jong J T M, Loscher B M, et al. Importance of iron for plankton blooms and carbon dioxide draw down in the Southern Ocean[J]. Nature, 1995, 373:412-415.

二级参考文献21

  • 1Lovcinsky M, Dedic R, Psencik J. 1999. Spectroscopic characterization of pigment binding proteins in normal-grown and iron-stress thermophilic cyanobacteria. J Mol Strut, 480 ~ 481 (spec) : 57758O.
  • 2Martin JH, Fitzwater SE. 1988. Iron deficiency limits phytoplankton growth in the north-east subarctic Pacific Ocean. Nature,331(6154) : 341-343.
  • 3Martin JH, Coale KH, Johnson, KS. 1994. Testing the iron hypothesis in ecosystems of the equatorial Pacific Ocean. Nature, 371(6493) : 123 - 129.
  • 4Osborne BA, Geider RJ. 1986. Effect of nitrate-nitrogen limitation on photosynthesis of the diatom Phaeodactylum tricornutum Bohlin (Bacillariophyceae). Plant Cell Environ, 9(6) :617~625.
  • 5Pakrasi HIB, Goldenverg A, Sherman LA. 1985. Membrane development in the Cyanobacterium, Anacystis nidulans, during recovery from iron starvaion. Plant Physiol, 79( 1 ): 290- 295.
  • 6Rueter JG, Unsworth NL. 1991. Response of marine Synechococcus (cyanobacterium) cultures to iron nutrition. J Phycol, 27(2):173 - 178.
  • 7Sosik HM, Mitchell BG. 1991. Absorption, fluorescence, and quantum yield for growth in nitrogen-limited Dunaliella tertiolecta. Limnol Oceanogr, 36(3) :910- 921.
  • 8Vassiliev IR, Kolber Z, Wyman KD. 1995. Effects of iron limitation on photosystem If. Composition and light utilization in Dunaliella tertiolecta. Plant Physiol, 109 (3) : 963 -- 972.
  • 9Borowitzka MA, Larkum AW. 1976. Calcification in the green alga Halimeda. II. The exchange of Ca2+ and the occurrence of age gradients in calcification and photosynthesis. J Exp Bot, 27(100) :864 - 878.
  • 10Coale KH, Johnson KS, Fitzwater SE, et al. 1996. A massive phytoplankton bloom induced by an ecosystem-scale iron fertilization experiment in the equatorial Pacific Ocean. Nature, 383(6600) : 495--501.

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