Limnology and Oceanography · 1997 · 343 citations · 25 references
BioconcentrationEutrophicationEngineeringMarine ChemistryMalfunctioning MicrobialloopOrganic CarbonGrowth RateBioremediationMicrobial EcologyNutrient StoichiometryEnvironmental MicrobiologyOceanic SystemsBiogeochemistryDegradable DocSurface WatersBiogeochemical CycleMicroscale ModelingWater QualityEcotoxicologyPhytoplankton EcologyDoc ProductionMicrobiologyBiogeochemical ProcessMedicineMicrobiological Degradation
Recent literature indicates that dissolved organic carbon (DOC) may accumulate in productive surface waters, enabling export to the aphotic zone by diffusion and downwelling. The study proposes a mechanism in which bacterial carbon consumption is limited by nutrient competition with phytoplankton and predation, potentially explaining DOC accumulation. A steady‑state model of heterotrophic bacteria, phytoplankton, and bacterivorous protozoa interactions is used to examine DOC production‑consumption balance across oligotrophic to eutrophic gradients. The model shows that otherwise degradable DOC can accumulate and be subject to chemical transformation and vertical transport, with the DOC balance shifting from oligotrophy to eutrophy.
Recent literature indicates that dissolved organic carbon (DOC) may accumulate in productive surface waters. Such accumulation will allow export of DOC to the aphotic zone by diffusion and downwelling. As an alternative to models based on low degradability, we here propose a mechanism where bacterial carbon consumption is restricted due to food web mechanisms controlling both growth and biomass of the bacteria: growth rate is kept low by bacteria‐phytoplankton competition for mineral nutrients, and biomass is kept low by bacterial predators. With such a mechanism, otherwise degradable material may accumulate and become subject both to chemical transformation and vertical transport. The steady‐states of a model describing the interactions between heterotrophic bacteria, phytoplankton, and bacterivorous protozoa is used to explore how the balance between DOC production and consumption shifts along a gradient from oligotrophy to eutrophy.
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The Ecological Role of Water-Column Microbes in the Sea
F Azam, Tom Fenchel, JG Field et al. · Marine Ecology Progress Series · 1983 · 5.4K citations · Full text
G. Evelyn Hutchinson · The American Naturalist · 1961 · 3.1K citations