Limnology and Oceanography · 1992 · 536 citations · 11 references
BiogeochemistryEngineeringPhytoplankton BiomassBloom EcologyEstuarine EcologyRecent InvasionTrophic InteractionsMarine SystemsPhytoplankton EcologyEstuaryMarine BiologyPrimary ProductionBenthic EcologyMarine EnvironmentLow River FlowDirect Physical EffectsOceanic SystemsTrophic Transfer
The invasion of San Francisco Bay by the suspension‑feeding clam Potamocorbula amurensis has altered estuarine phytoplankton dynamics, which historically showed low biomass during high river flow and high biomass during low flow periods. The study tests whether seasonal and interannual phytoplankton fluctuations are jointly regulated by river‑driven transport and grazing by invasive suspension feeders. The authors attribute changes to river‑driven transport and enhanced grazing pressure from the introduced bivalves. Since 1987, the summer phytoplankton peak has disappeared, and primary production fell from 106 g C m⁻² yr⁻¹ to 39 g C m⁻² yr⁻¹ when bivalve densities exceeded 2,000 m⁻².
The recent invasion of San Francisco Bay by the suspension-feeding clam Potamocorbula amurensis has provided an opportunity to document the ecological consequences of a major biological disturbance. Previous work over the last two decades has shown that phytoplankton biomass in the upper estuary is low (2–3 mg Chl a m−3) during seasonal periods of high river flow and short residence time, and it is usually high (peak > 30 mg Chl a m−3) during the summer‒autumn seasons of low river flow and long residence time. However since P. amurensis became widespread and abundant in 1987, the summer phytoplankton biomass maximum has disappeared, presumably because of increased grazing pressure by this newly introduced species. For the period 1977–1990, mean estimated primary production was only 39 g C m 2 yr−1 during years when bivalve suspension feeders were abundant (> 2,000 m−2), compared to 106 g C m−2 yr−1 when bivalves were absent or present in low numbers. These observations support the hypothesis that seasonal and interannual fluctuations in estuarine phytoplankton biomass and primary production can be regulated jointly by direct physical effects (e.g. river-driven transport) and trophic interactions (episodes of enhanced grazing pressure by immigrant populations of benthic suspension feeders).
11
Regulation of Lake Primary Productivity by Food Web Structure
Stephen R. Carpenter, James F. Kitchell, James R. Hodgson et al. · Ecology · 1987 · 893 citations · Full text
Aquatic Food System, Peter Lake, Benthic-pelagic Coupling +9