专题综述

淡水浮游植物功能类群划分方法及其生态学应用研究进展(综述)

  • 田永强
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  • (厦门市环境监测中心站,福建 厦门 361012)
田永强,博士,工程师,从事浮游植物生态学研究。

收稿日期: 2015-10-28

  修回日期: 2016-01-15

  网络出版日期: 2015-12-10

基金资助

厦门市重大科技平台项目(3502Z20091005)

Ecological Application of Classification Approach of Freshwater Phytoplankton Based on Functional Group

  • TIAN Yong-Qiang
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  • (Xiamen Environmental Monitoring Central Station, Xiamen 361012, Fujian China)

Received date: 2015-10-28

  Revised date: 2016-01-15

  Online published: 2015-12-10

摘要

浮游植物功能类群分类方法是一种以浮游植物个体生态学特征为依据的生态分类法,弥补了传统分类方法在生态学应用上存在的不足,是开展淡水生态研究的重要工具。文中概述浮游植物功能类群的理论基础、分类依据及其生态学研究中的优势,并介绍功能类群分类法在国内外淡水浮游植物生态学研究中的应用进展和现状,最后探讨浮游植物功能类群研究中存在的问题及未来发展方向。

本文引用格式

田永强 . 淡水浮游植物功能类群划分方法及其生态学应用研究进展(综述)[J]. 亚热带植物科学, 2015 , 44(04) : 349 -354 . DOI: 10.3969/j.issn.1009-7791.2015.04.018

Abstract

The functional group of phytoplankton is a classification scheme based on the characteristics of autoecology, which makes up for the shortage of traditional identification in terms of their ecological applications, and is an important tool of freshwater ecological research. This paper summarized the theoretical basis, the classification criterion and the merits in freshwater ecological research of functional group, and introduced the present situation and progress of the application in freshwater ecological research. In addition, main problems in the functional group were analyzed, the research and development direction in the future were also discussed.

参考文献

[1] Desortova B. Relationship between chlorophyll-a concentration and phytoplankton biomass in several reservoirs in Czechoslovakia[J]. Internationale Revue der gesamten Hydrobiologie und Hydrographie, 1981,66: 153—169.
[2] 沈韫芬,章宗涉,龚循矩. 微型生物监测新技术[M]. 北京: 中国建筑工业出版社, 1990.
[3] 刘足根,张柱,张萌,方红亚,弓晓峰. 赣江流域浮游植物群落结构与功能类群划分[J]. 长江流域资源与环境, 2012,21(3): 375—383.
[4] Reynolds C S, Huszar V, Kruk C, Naselli-Flores L, Melo S. Towards a functional classification of the freshwater phytoplankton[J]. Journal of Plankton Research, 2002,24(5): 417—428.
[5] Sommer U. Plankton ecology: succession in plankton communities[M]. Berlin: Springer-Verlag, 1989.
[6] Weithoff G. The concepts of ‘plant functional types’ and ‘functional diversity’ in lake phytoplankton–a new understanding of phytoplankton ecology?[J]. Freshwater Biology, 2003,48(9): 1669—1675.
[7] Kruk C, Mazzeo N, Lacerot G, Reynolds C S. Classification schemes for phytoplankton: a local validation of a functional approach to the analysis of species temporal replacement[J]. Journal of Plankton Research, 2002,24(9): 901—912.
[8] Salmaso N, Padisák J. Morpho-functional groups and phytoplankton development in two deep lakes (Lake Garda, Italy and Lake Stechlin, Germany)[J]. Hydrobiologia, 2007,578(1): 97—112.
[9] Padisák J, Crossetti L O, Naselli-Flores L. Use and misuse in the application of the phytoplankton functional classification: a critical review with updates[J]. Hydrobiologia, 2009,621(1): 1—19.
[10] Weithoff G, Walz N, Gaedke U. The intermediate disturbance hypothesis-species diversity or functional diversity?[J]. Journal of Plankton Research, 2001,23(10): 1147—1155.
[11] Naselli-Flores L, Padisák J, Dokulil M T, Chorus I. Equilibrium/steady-state concept in phytoplankton ecology[J]. Hydrobiologia, 2003,502(1): 395—403.
[12] Huszar V L M, Caraco N F. The relationship between phytoplankton composition and physical-chemical variables: A comparison of taxonomic and morphological-functional descriptors in six temperate lakes[J]. Freshwater Biology, 1998,40(4): 679—696.
[13] Padisák J, Reynolds C S. Selection of phytoplankton associations in Lake Balaton, Hungary, in response to eutrophication and restoration measures, with special reference to the cyanoprokaryotes[J]. Hydrobiologia, 1998,384(1): 41—53.
[14] Beyruth Z. Periodic disturbances, trophic gradient and phytoplankton characteristics related to cyanobacterial growth in Guarapiranga Reservoir, S?o Paulo State, Brazil[J]. Hydrobiologia, 2000,424(1): 51—65.
[15] Huszar V, Silva L, Marinho M, Domingos P, Sant'Anna C L. Cyanoprokaryote assemblages in eight productive tropical Brazilian waters[J]. Hydrobiologia, 2000,424(1): 67—77.
[16] Hutchinson G E. A Treatise on Limnology. Volume II: Introduction to Lake Biology and the Limnoplankton[M]. New York: John Wiley & Sons, 1967.
[17] Reynolds C S. Phytoplankton assemblages and their periodicity in stratifying lake systems[J]. Holarctic Ecology, 1980: 141—159. [18] Braun-Blanquet J. Pflanzensociologie, Grundzuege der Vegetationskunde(3rd edn)[M]. New Work: Springer-Verlag, 1964.
[19] Reynolds C S. Phytoplankton periodicity: the interactions of form, function and environmental variability[J]. Freshwater Biology, 1984,14(2): 111—142.
[20] Reynolds C S. Functional morphology and the adaptive strategies of freshwater phytoplankton[J]. Growth and Reproductive Strategies of Freshwater Phytoplankton Cambridge University Press, Cambridge, 1988: 388—433.
[21] Grime J. Plant Strategies and Vegetation Processes[M]. Chichester, UK: Wiley & Sons, 1979.
[22] Reynolds C S. Vegetation Processes in the Pelagic: A Model for Ecosystem Theory[M]. Ecology Institute, Oldendorf/Luhe, Germany, 1997.
[23] Reynolds C S. Phytoplankton designer-or how to predict compositional responses to trophic-state change[J]. Hydrobiologia, 2000,424: 67—77.
[24] Braak C J F, Smilauer P. CANOCO Reference Manual and User’s Guide to Canoco for Windows: software for canonical community ordination (version 4)[M]. Microcomputer Power, Ithaca, New York, 1998.
[25] Kruk C, Huszar V L M, Peeters E T H M, Bonilla S, Costa L, Lürling M, Reynolds C S, Scheffer M. A morphological classification capturing functional variation in phytoplankton[J]. Freshwater Biology, 2010,55(3): 614—627.
[26] Tolotti M, Thies H O R, Nickus U, Psenner R. Temperature modulated effects of nutrients on phytoplankton changes in a mountain lake[J]. Hydrobiologia, 2012, 698(1): 61—75.
[27] Hu R, Xiao L J. Functional classification of phytoplankton assemblages in reservoirs of Guangdong Province, South China. [M]//Han B P, Liu Z. Tropical and Sub-tropical Reservoir Limnology in China, theory and practice. Dordrecht: Springer Netherland, 2012: 59—70.
[28] Kruk C, Peeters E T H M, Vannes E H, Huszar V L M, Costa L. Phytoplankton community composition can be predicted best in terms of morphological groups[J]. Limnology and Oceanography, 2011,56(1): 110.
[29] Commission E. Directive 2000/60/EC of the European Parliament and of the council of 23 October 2000 establishing a framework for community action in the field of water policy[J]. Official Journal of the European Communities, 2000, L327: 1—72.
[30] Naselli-Flores L. Phytoplankton assemblages in twenty-one Sicilian reservoirs: relationships between species composition and environmental factors[J]. Hydrobiologia, 2000,424(1): 1—11.
[31] Marinho M M, Huszar V L M. Nutrient availability and physical conditions as controlling factors of phytoplankton composition and biomass in a tropical reservoir (Southeastern Brazil)[J]. Archiv für Hydrobiologie, 2002,153(3): 443—468.
[32] Nabout J, Nogueira I S, Oliveira L. Phytoplankton community of floodplain lakes of the Araguaia River, Brazil, in the rainy and dry seasons[J]. Journal of Plankton Research, 2006,28(2): 181—193.
[33] Romo S, Villena M J. Phytoplankton strategies and diversity under different nutrient levels and planktivorous fish densities in a shallow Mediterranean lake[J]. Journal of Plankton Research, 2005,27(12): 1273—1286.
[34] Padisák J, Borics G, Grigorszky I, Soróczki-Pintér E. Use of phytoplankton assemblages for monitoring ecological status of lakes within the Water Framework Directive: the assemblage index[J]. Hydrobiologia, 2006,553(1): 1—14.
[35] Devercelli M. Phytoplankton of the Middle Paraná River during an anomalous hydrological period: a morphological and functional approach[J]. Hydrobiologia, 2006,563(1): 465—478.
[36] Borics G, Várbíró G, Grigorszky I, Krasznai E, Szabó S, Kiss K T. A new evaluation technique of potamo-plankton for the assessment of the ecological status of rivers[J]. Archiv Für Hydrobiologie Supplementband Large Rivers, 2007,17(3—4): 465—486.
[37] Soares M C S, Huszar V L M, Roland F. Phytoplankton dynamics in two tropical rivers with different degrees of human impact (Southeast Brazil)[J]. River research and applications, 2007,23(7): 698—714.
[38] Devercelli M. Changes in phytoplankton morpho-functional groups induced by extreme hydroclimatic events in the Middle Parana River (Argentina)[J]. Hydrobiologia, 2010,639(1): 5—19.
[39] Abonyi A, Leit?o M, Lan?on A M, Padisák J. Phytoplankton functional groups as indicators of human impacts along the River Loire (France)[J]. Hydrobiologia, 2012,698(1): 233—249.
[40] Carlson R E. A trophic state index for lakes[J]. Limnology and Oceanography, 1977, 22: 361—369.
[41] Becker V, Huszar V L M , Crossetti L O. Responses of phytoplankton functional groups to the mixing regime in a deep subtropical reservoir[J]. Hydrobiologia, 2009,628 (1):137—151.
[42] 李哲,方芳,郭劲松,孙志禹,陈永柏,龙曼. 三峡小江(澎溪河)藻类功能分组及其季节演替特点[J]. 环境科学, 2011,32(2): 392—400.
[43] 庄道阔,刘存歧,刘录三,李黎,刘志超,杨晨晨. 镜泊湖流域浮游植物群落及其功能类群的时空演替特征研究[J]. 环境科学与管理, 2015,40(5): 142—147.
[44] 黄国佳,李秋华,陈椽,商立海,张垒,欧滕,高廷进,李钥,邓龙. 贵州高原红枫湖水库浮游植物功能分组及其时空分布特征[J]. 生态学报, 2015, 35(17): 5573—5584.
[45] 高国敬,肖利娟,林秋奇,胡韧,雷腊梅. 海南省典型水库浮游植物功能类群的结构特征与水质评价[J]. 生态科学, 2013,32(2):144—150.
[46] Solbrig O T. Plant traits and adaptive strategies: their role in ecosystem function[J]. Biodiversity and Ecosystem Function, 1993,99: 97—116.
[47] Ten B B, Hosper S, Colijn F. A quantitative method for description & assessment of ecosystems: The AMOEBA-approach[J]. Marine Pollution Bulletin, 1991,23: 265—270.
[48] Seip K, Reynolds C. Phytoplankton functional attributes along trophic gradient and season[J]. Limnology and Oceanography, 1995,40: 589—597.
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