Spatial and temporal scaling of periphyton growth on walls of estuarine mesocosms

被引:65
作者
Chen, CC
Petersen, JE
Kemp, WM
机构
[1] Univ. Syst. Maryland Ctr. E., Horn Point Laboratory, Cambridge, MD 21613
关键词
dimension effects; wall growth; periphyton; nutrients; zooplankton; light; phytoplankton; estuarine mesocosm;
D O I
10.3354/meps155001
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Although experimental ecosystems are basic and versatile tools widely used in coastal research, periphytic growth on container walls is an intrinsic artifact that must be considered when interpreting results. To better understand how this artifact may confound extrapolation of results from controlled experiments to conditions in natural estuarine ecosystems, we examined how wall periphyton varied with container size and shape in summer and autumn experiments. Replicate (n = 3) cylindrical mesocosms of 3 volumes (0.1, 1.0, 10 m(3)) were established in both constant-depth (depth = 1 m) and constant-shape (radius/depth = 0.56) series. Mesocosms were initiated with unfiltered estuarine water and homogenized sediments. Periphyton biomass and gross primary production (GPP) per unit of wall area increased with increasing radius (r) or decreasing ratio of wall area (A(W)) to water volume (V) for mesocosms in both series (A(W)/V = 2/r). As a consequence, periphyton biomass and metabolism expressed per unit of water volume increased as a quadratic function of increasing A(W)/V ratio. Results also suggest a secondary scaling effect, whereby wall periphyton growth may be directly related to mesocosm depth, although mechanisms for this effect remain unclear. Significant correlations between periphyton biomass (per m(2) wall area) and 3 environmental factors (light attenuation coefficient, nutrient concentration, and zooplankton abundance) suggest that these factors may have played important roles in regulating wall growth. Additionally, effects of wall periphyton growth on plankton community dynamics were also indicated by the significant negative relations between periphyton biomass and measures of both phytoplankton and zooplankton abundance. The overall effect of periphyton on the experimental ecosystems was evident in the fact that periphyton accounted or over 50% of total ecosystem GPP and biomass after 2 to 4 wk of these experiments. For mesocosm experiments designed to examine dynamics of planktonic-benthic ecosystems, our results imply that growth of wall periphyton, which is controlled by factors scaling to the radius of experimental ecosystems, tends to dominate major biotic pools and rates within weeks.
引用
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页码:1 / 15
页数:15
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共 44 条
  • [1] Beyers R.J., 1993, Ecological Microcosms
  • [2] Benthic-pelagic links: responses of benthos to water-column nutrient enrichment
    Blumenshine, SC
    Vadeboncoeur, Y
    Lodge, DM
    Cottingham, KL
    Knight, SE
    [J]. JOURNAL OF THE NORTH AMERICAN BENTHOLOGICAL SOCIETY, 1997, 16 (03): : 466 - 479
  • [3] Brownlee D.C., 1987, P217
  • [4] ECOSYSTEM EXPERIMENTS
    CARPENTER, SR
    CHISHOLM, SW
    KREBS, CJ
    SCHINDLER, DW
    WRIGHT, RF
    [J]. SCIENCE, 1995, 269 (5222) : 324 - 327
  • [5] CARRITT DE, 1966, J MAR RES, V24, P286
  • [7] DISTRIBUTION OF AND FEEDING BY THE COPEPOD PSEUDOCALANUS UNDER FAST ICE DURING THE ARCTIC SPRING
    CONOVER, RJ
    HERMAN, AW
    PRINSENBERG, SJ
    HARRIS, LR
    [J]. SCIENCE, 1986, 232 (4755) : 1245 - 1247
  • [8] THE DESIGN OF MESOCOSM EXPERIMENTS
    CROSSLAND, NO
    LAPOINT, TW
    [J]. ENVIRONMENTAL TOXICOLOGY AND CHEMISTRY, 1992, 11 (01) : 1 - 4
  • [9] Crowder MJ, 1990, ANAL REPEATED MEASUR
  • [10] SOME CONSIDERATIONS IN THE DESIGN OF AQUATIC MICROCOSMS FOR PLANKTON STUDIES
    DUDZIK, M
    HARTE, J
    JASSBY, A
    LAPAN, E
    LEVY, D
    REES, J
    [J]. INTERNATIONAL JOURNAL OF ENVIRONMENTAL STUDIES, 1979, 13 (02) : 125 - 130