Seasonal succession and taxon-specific bacterial grazing rates of heterotrophic nanoflagellates in Lake Constance

被引:56
作者
Cleven, EJ [1 ]
Weisse, T [1 ]
机构
[1] Univ Konstanz, Inst Limnol, D-78457 Cologne, Germany
关键词
heterotrophic nanoflagellates (HNF); seasonal succession; FLB; grazing rate; negative binomial distribution; Lake Constance;
D O I
10.3354/ame023147
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
We investigated the taxonomic composition of the heterotrophic nanoflagellate (HNF) assemblage and its taxon-specific bacterial grazing rates in Lake Constance (Germany) over the course of 1 yr. Bacterial grazing rates were measured using natural fluorescently labelled bacteria (FLB) and compared to bacterial production estimated by the uptake of C-14-leucine incorporation. Glutaraldehyde-fixed, DAPI-stained flagellates were counted using epifluorescence microscopy. Based on annual averages, small species such as Spumella sp. (2 to 6 mum) were the most numerous HNF and the dominant bacterivores. Larger flagellates such as Kathablepharis sp, contributed significantly to total HNF biomass, in particular during spring, but were relatively unimportant as bacterial grazers. The HNF community structure changed during the transition from the phytoplankton spring bloom to the clearwater phase, with small flagellates such as heterokonts, kinetoplastids and choanoflagellates becoming increasingly abundant. The flagellate community composition was more diverse during summer and autumn than in spring. Per capita ingestion rates ranged from 0 to 31 bacteria HNF-1 h(-1) and changed seasonally up to 10-fold within a given taxon. Mixotrophic species contributed little to total bacterivory. We provide evidence that the relative significance of bacterial ingestion by a given flagellate taxon may change seasonally. Based upon our experimental results, we discuss potential shortcomings inherent in the FLB technique.
引用
收藏
页码:147 / 161
页数:15
相关论文
共 86 条
[11]  
Carrias JF, 1996, MICROBIAL ECOL, V31, P249
[12]   EFFECTS OF FIXATION ON CELL-VOLUME OF MARINE PLANKTONIC PROTOZOA [J].
CHOI, JW ;
STOECKER, DK .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1989, 55 (07) :1761-1765
[13]   PREY-SIZE SELECTION BY FRESH-WATER FLAGELLATED PROTOZOA [J].
CHRZANOWSKI, TH ;
SIMEK, K .
LIMNOLOGY AND OCEANOGRAPHY, 1990, 35 (07) :1429-1436
[14]   Systematics of the enigmatic kathablepharids, including EM characterization of the type species, Kathablepharis phoenikoston, and new observations on K-remigera comb. nov. [J].
Clay, B ;
Kugrens, P .
PROTIST, 1999, 150 (01) :43-59
[15]   Ingestion and digestion of an autotrophic picoplankter, Synechococcus, by a heterotrophic nanoflagellate, Bodo saltans [J].
Dolan, JR ;
Simek, K .
LIMNOLOGY AND OCEANOGRAPHY, 1998, 43 (07) :1740-1746
[17]  
GAEDKE U, 1994, MARINE MICROBIAL FOOD WEBS, 1994, VOL 8, NO 1 AND 2, P163
[18]  
Gaedke Ursula, 1998, Advances in Limnology, V53, P317
[19]  
Gaedke Ursula, 1998, Advances in Limnology, V53, P587
[20]   PATTERNS IN THE TOP-DOWN VERSUS BOTTOM-UP REGULATION OF HETEROTROPHIC NANOFLAGELLATES IN TEMPERATE LAKES [J].
GASOL, JM ;
SIMONS, AM ;
KALFF, J .
JOURNAL OF PLANKTON RESEARCH, 1995, 17 (10) :1879-1903