THE EFFECT OF TEMPERATURE AND ALGAL BIOMASS ON BACTERIAL PRODUCTION AND SPECIFIC GROWTH-RATE IN FRESH-WATER AND MARINE HABITATS

被引:437
作者
WHITE, PA
KALFF, J
RASMUSSEN, JB
GASOL, JM
机构
[1] Limnology Research Centre, Department of Biology, McGill University, Montréal, H3A 1B1, Québec
关键词
D O I
10.1007/BF02539147
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
We analyzed heterotrophic, pelagic bacterial production and specific growth rate data from 57 studies conducted in fresh, marine and estuarine/coastal waters. Strong positive relationships were identified between 1) bacterial production and bacterial abundance and 2) bacterial production and algal biomass. The relationship between bacterial production and bacterial abundance was improved by also considering water temperature. The analysis of covariance model revealed consistent differences between fresh, marine and estuarine/coastal waters, with production consistently high in estuarine/coastal environments. The log-linear regression coefficient of abundance was not significantly different from 1.00, and this linear relationship permitted the use of specific growth rate (SGR in day-1) as a dependent variable. A strong relationship was identified between specific growth rate and temperature. This relationship differed slightly across the three habitats. A substantial portion of the residual variation from this relationship was accounted for by algal biomass, including the difference between marine and estuarine/coastal habitats. A small but significant difference between the fresh- and saltwater habitats remained. No significant difference between the chlorophyll effect in different habitats was identified. The model of SGR against temperature and chlorophyll was much weaker for freshwater than for marine environments. For a small subset of the data set, mean cell volume accounted for some of the residual variation in SGR. Pronounced seasonality, fluctuations in nutrient quality, and variation of the grazing environment may contribute to the unexplained variation in specific growth.
引用
收藏
页码:99 / 118
页数:20
相关论文
共 101 条
[1]  
AITKIN M, 1989, STATISTICAL MODELLIN
[2]  
Aizaki M., 1981, SIL PROC 1922 2010, V21, P675, DOI [10.1080/03680770.1980.11897067, DOI 10.1080/03680770.1980.11897067]
[3]   ANNUAL BACTERIOPLANKTON BIOMASSES AND PRODUCTIVITIES IN A TEMPERATE WEST-COAST CANADIAN FJORD [J].
ALBRIGHT, LJ ;
MCCRAE, SK .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1987, 53 (06) :1277-1285
[4]   THE SIGNIFICANCE OF MACROSCOPIC AGGREGATES (MARINE SNOW) AS SITES FOR HETEROTROPHIC BACTERIAL PRODUCTION IN THE MESOPELAGIC ZONE OF THE SUBTROPICAL ATLANTIC [J].
ALLDREDGE, AL ;
YOUNGBLUTH, MJ .
DEEP-SEA RESEARCH PART A-OCEANOGRAPHIC RESEARCH PAPERS, 1985, 32 (12) :1445-1456
[5]   PRODUCTION OF HETEROTROPHIC BACTERIA INHABITING MACROSCOPIC ORGANIC AGGREGATES (MARINE SNOW) FROM SURFACE WATERS [J].
ALLDREDGE, AL ;
COLE, JJ ;
CARON, DA .
LIMNOLOGY AND OCEANOGRAPHY, 1986, 31 (01) :68-78
[6]  
ALLEN DM, 1971, TECHNOMETRICS, V13, P465
[7]   DETERMINING CARBON TO CHLOROPHYLL RATIO OF NATURAL PHYTOPLANKTON [J].
BANSE, K .
MARINE BIOLOGY, 1977, 41 (03) :199-212
[8]   ASSESSING PHYTOPLANKTON AND BACTERIOPLANKTON PRODUCTION DURING EARLY SPRING IN LAKE ERKEN, SWEDEN [J].
BELL, RT ;
KUPARINEN, J .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1984, 48 (06) :1221-1230
[9]   ESTIMATING BACTERIOPLANKTON PRODUCTION BY MEASURING [H-3]THYMIDINE INCORPORATION IN A EUTROPHIC SWEDISH LAKE [J].
BELL, RT ;
AHLGREN, GM ;
AHLGREN, I .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1983, 45 (06) :1709-1721