Benzo ( a ) pyrene inhibits the role of the bioturbator Tubifex tubifex in river sediment biogeochemistry
暂无分享,去创建一个
F. Mermillod‐Blondin | B. Montuelle | F. Bellvert | C. Lécuyer | L. Simon | V. Grossi | A. Foulquier | G. Comte | F. Fourel | S. Navel | F. Gilbert
[1] F. Mermillod‐Blondin,et al. Sedimentary context controls the influence of ecosystem engineering by bioturbators on microbial processes in river sediments , 2012 .
[2] C. Piscart,et al. Leaf litter recycling in benthic and hyporheic layers in agricultural streams with different types of land use. , 2011, The Science of the total environment.
[3] M. Solan,et al. Habitat structure mediates biodiversity effects on ecosystem properties , 2011, Proceedings of the Royal Society B: Biological Sciences.
[4] F. Mermillod‐Blondin. The functional significance of bioturbation and biodeposition on biogeochemical processes at the water–sediment interface in freshwater and marine ecosystems , 2011, Journal of the North American Benthological Society.
[5] F. Mermillod‐Blondin,et al. Water–Sediment Exchanges Control Microbial Processes Associated with Leaf Litter Degradation in the Hyporheic Zone: a Microcosm Study , 2011, Microbial Ecology.
[6] M. Gerino,et al. An alternative method of particulate fluorescent tracer analysis in sediments using a microplate fluorimeter , 2011, Environmental technology.
[7] O. Andersen,et al. Effects of bioturbation on the fate of oil in coastal sandy sediments--an in situ experiment. , 2011, Chemosphere.
[8] K. Sei,et al. Accelerated biodegradation of pyrene and benzo[a]pyrene in the Phragmites australis rhizosphere by bacteria-root exudate interactions. , 2011, Water research.
[9] Emma Michaud,et al. Sedimentary organic matter distributions, burrowing activity, and biogeochemical cycling: Natural patterns and experimental artifacts , 2010 .
[10] J. Gilbert,et al. Bioturbating shrimp alter the structure and diversity of bacterial communities in coastal marine sediments , 2010, The ISME Journal.
[11] F. Mermillod‐Blondin,et al. Ecosystem engineering by tubificid worms stimulates macrophyte growth in poorly oxygenated wetland sediments , 2010 .
[12] R. Aller,et al. Effects of abiotic stressors on infaunal burrowing and associated sediment characteristics , 2009 .
[13] P. Reichert,et al. Vertical hydraulic exchange and the contribution of hyporheic community respiration to whole ecosystem respiration in the River Lahn (Germany) , 2009, Aquatic Sciences.
[14] A. K. Haritash,et al. Biodegradation aspects of polycyclic aromatic hydrocarbons (PAHs): a review. , 2009, Journal of hazardous materials.
[15] M. Lafont,et al. Ecosystem engineering at the sediment–water interface: bioturbation and consumer-substrate interaction , 2009, Oecologia.
[16] W. Ziebis,et al. Biodiversity of benthic microbial communities in bioturbated coastal sediments is controlled by geochemical microniches , 2009, The ISME Journal.
[17] G. Stora,et al. Effects of uranium-contaminated sediments on the bioturbation activity of Chironomus riparius larvae (Insecta, Diptera) and Tubifex tubifex worms (Annelida, Tubificidae). , 2009, Chemosphere.
[18] F. Mermillod‐Blondin,et al. Stormwater sediment and bioturbation influences on hydraulic functioning, biogeochemical processes, and pollutant dynamics in laboratory infiltration systems. , 2009, Environmental science & technology.
[19] G. Stora,et al. Influence of Chironomus riparius (Diptera, Chironomidae) and Tubifex tubifex (Annelida, Oligochaeta) on oxygen uptake by sediments. Consequences of uranium contamination. , 2009, Environmental pollution.
[20] Raphaële Terrail,et al. Ecotoxicity of uranium to Tubifex tubifex worms (Annelida, Clitellata, Tubificidae) exposed to contaminated sediment. , 2009, Ecotoxicology and environmental safety.
[21] M. Montgomery,et al. Increased Capacity for Polycyclic Aromatic Hydrocarbon Mineralization in Bioirrigated Coastal Marine Sediments , 2008 .
[22] O. Andersen,et al. Effects of the polychaetes Arenicola marina and Nereis diversicolor on microbial pyrene mineralization , 2008 .
[23] R. Rosenberg,et al. Bioturbation-driven release of organic contaminants from Baltic Sea sediments mediated by the invading polychaete Marenzelleria neglecta. , 2008, Environmental science & technology.
[24] Michel Lafont,et al. Do tubificid worms influence organic matter processing and fate of pollutants in stormwater sediments deposited at the surface of infiltration systems? , 2007, Chemosphere.
[25] N. Quéric,et al. Impact of small-scale biogenic sediment structures on bacterial distribution and activity in Arctic deep-sea sediments , 2007 .
[26] A. Boudou,et al. Cadmium transport in sediments by tubificid bioturbation: An assessment of model complexity , 2007 .
[27] R. Pancost,et al. Impact of feeding by Arenicola marina (L.) and ageing of faecal material on fatty acid distribution and bacterial community structure in marine sediments: An experimental approach , 2006 .
[28] Y. Perrodin,et al. The impact of stormwater on a soil profile in an infiltration basin , 2006 .
[29] M. Lafont,et al. Oligochaete Assemblages in the Hyporheic Zone and Coarse Surface Sediments: Their Importance for Understanding of Ecological Functioning of Watercourses , 2006, Hydrobiologia.
[30] T. J. Boyd,et al. Dissolved Oxygen Saturation Controls PAH Biodegradation in Freshwater Estuary Sediments , 2005, Microbial Ecology.
[31] R. Rosenberg,et al. Experimental recolonisation of Baltic Sea reduced sediments: survival of benthic macrofauna and effects on nutrient cycling , 2005 .
[32] F. Mermillod‐Blondin,et al. Use of slow filtration columns to assess oxygen respiration, consumption of dissolved organic carbon, nitrogen transformations, and microbial parameters in hyporheic sediments. , 2005, Water research.
[33] M. Granberg,et al. Relative importance of macrofaunal burrows for the mocrobial mineralization of pyrene in marine sediments: impact of macrofaunal species and organic matter quality , 2005 .
[34] E. Joner,et al. PAH dissipation in a contaminated river sediment under oxic and anoxic conditions. , 2005, Environmental pollution.
[35] E. Kristensen,et al. Sediment properties and bacterial community in burrows of the ghost shrimp Pestarella tyrrhena (Decapoda: Thalassinidea) , 2005 .
[36] Q. Rochfort,et al. Benthic Responses to Wet-Weather Discharges in Urban Streams in Southern Ontario , 2004 .
[37] D. Beer,et al. Microbial activities in the burrow environment of the potamal mayfly Ephoron virgo , 2004 .
[38] Michael C. Marshall,et al. Hyporheic invertebrates affect N cycling and respiration in stream sediment microcosms , 2004, Journal of the North American Benthological Society.
[39] A. Covich,et al. The Role of Biodiversity in the Functioning of Freshwater and Marine Benthic Ecosystems , 2004 .
[40] Olivier Dangles,et al. Impacts of stream acidification on litter breakdown: implications for assessing ecosystem functioning , 2004 .
[41] P. Landrum,et al. Effect of 3,4,3′,4′‐tetrachlorobiphenyl on the reworking behavior of Lumbriculus variegatus exposed to contaminated sediment , 2004, Environmental toxicology and chemistry.
[42] K. Doick,et al. Assessment of spiking procedures for the introduction of a phenanthrene-LNAPL mixture into field-wet soil. , 2003, Environmental pollution.
[43] Thibault Datry,et al. Solute dynamics in the bed sediments of a stormwater infiltration basin , 2003 .
[44] F. Hervant,et al. Dynamics and adaptive responses of invertebrates to suboxia in contaminated sediments of a stormwater infiltration basin , 2003 .
[45] D. Raffaelli,et al. Flow modifies the effect of biodiversity on ecosystem functioning: an in situ study of estuarine sediments , 2003 .
[46] G. Stora,et al. Burial, exportation and degradation of acyclic petroleum hydrocarbons following a simulated oil spill in bioturbated Mediterranean coastal sediments. , 2002, Chemosphere.
[47] P. Landrum,et al. Biological mixing responses to sublethal concentrations of DDT in sediments by Heteromastus filiformis using a 137Cs marker layer technique , 2002 .
[48] F. Ekelund,et al. Method for Spiking Soil Samples with Organic Compounds , 2002, Applied and Environmental Microbiology.
[49] M. Gerino,et al. Functional Diversity among 3 Detritivorous Hyporheic Invertebrates: An Experimental Study in Microcosms , 2002, Journal of the North American Benthological Society.
[50] P. Rodríguez,et al. Selective feeding by the aquatic oligochaete Tubifex tubifex (Tubificidae, Clitellata) , 2001, Hydrobiologia.
[51] J. Thioulouse,et al. Characterization of Bacterial and Fungal Soil Communities by Automated Ribosomal Intergenic Spacer Analysis Fingerprints: Biological and Methodological Variability , 2001, Applied and Environmental Microbiology.
[52] A. Enrich-Prast,et al. Nitrification and denitrification in a eutrophic lake sediment bioturbated by oligochaetes , 2001 .
[53] Laurel J. Standley,et al. Transfer of Benzo[a]pyrene and 2,2‘,5,5‘-Tetrachlorobiphenyl from Bacteria and Algae to Sediment-Associated Freshwater Invertebrates , 2000 .
[54] M. Leppänen,et al. Fate of sediment-associated pyrene and benzo[a]pyrene in the freshwater oligochaete Lumbriculus variegatus (Müller) , 2000 .
[55] E. Kristensen. Organic matter diagenesis at the oxic/anoxic interface in coastal marine sediments, with emphasis on the role of burrowing animals , 2000, Hydrobiologia.
[56] S. Clark,et al. GROUNDWATER CONTAMINATION POTENTIAL FROM STORMWATER INFILTRATION PRACTICES , 1999 .
[57] Manfred Ehrhardt,et al. Methods of seawater analysis , 1999 .
[58] G. Leblon,et al. Relevance of the INT test response as an indicator of ETS activity in monitoring heterotrophic aerobic bacterial populations in activated sludges , 1998 .
[59] T. Forbes,et al. Impact of bioturbation by Arenicola marina on the fate of particle-bound fluoranthene , 1997 .
[60] W. Traunspurger,et al. The effects of nematodes on bacterial activity and abundance in a freshwater sediment , 1997, Oecologia.
[61] T. Battin. Assessment of fluorescein diacetate hydrolysis as a measure of total esterase activity in natural stream sediment biofilms , 1997 .
[62] J. Fuhrman,et al. Determination of Active Marine Bacterioplankton: a Comparison of Universal 16S rRNA Probes, Autoradiography, and Nucleoid Staining , 1997, Applied and environmental microbiology.
[63] M. Palmer. Biodiversity and Ecosystem Processes in Freshwater Sediments , 1997 .
[64] V. Forbes,et al. Particle mixing by the polychaete Capitella species 1: coupling fate and effect of a particle-bound organic contaminant (fluoranthene) in a marine sediment , 1997 .
[65] G. Stora,et al. In situ bioturbation and hydrocarbon fate in an experimental contaminated Mediterranean coastal ecosystem , 1996 .
[66] J. Svensson,et al. Effects of bioturbation by tube‐dwelling chironomid larvae on oxygen uptake and denitrification in eutrophic lake sediments , 1996 .
[67] P. Sp,et al. Effects of Tubifex tubifex (Oligochaeta: Tubificidae) on N-mineralization in freshwater sediments, measured with 15N isotopes , 1995 .
[68] J. Bertrand,et al. The in vitro influence of the burrowing polychaete Nereis diversicolor on the fate of petroleum hydrocarbons in marine sediments , 1994 .
[69] R. Aller. Bioturbation and remineralization of sedimentary organic matter: effects of redox oscillation☆ , 1994 .
[70] B. K. Jensen,et al. Estimation of Viable Biomass In Wastewater And Activated Sludge By Determination of ATP, Oxygen Utilization Rate And FDA Hydrolysis , 1992 .
[71] M. Gerino. The effects of bioturbation on particle redistribution in Mediterranean coastal sediment. Preliminary results , 1990, Hydrobiologia.
[72] M. Shiaris. Seasonal Biotransformation of Naphthalene, Phenanthrene, and Benzo[a]pyrene in Surficial Estuarine Sediments , 1989, Applied and environmental microbiology.
[73] T. Reynoldson. Interactions between sediment contaminants and benthic organisms , 1987, Hydrobiologia.
[74] D. Capone,et al. Degradation and Mineralization of the Polycyclic Aromatic Hydrocarbons Anthracene and Naphthalene in Intertidal Marine Sediments , 1985, Applied and environmental microbiology.
[75] D. Capone,et al. Effects of four aromatic organic pollutants on microbial glucose metabolism and thymidine incorporation in marine sediments , 1985, Applied and environmental microbiology.
[76] D. Lynch,et al. Interpretation procedures for the determination of sediment parameters from time-dependent flux inputs , 1982 .
[77] J. B. Robinson,et al. Role of Tubificid Worms on Nitrogen Transformations in Stream Sediment , 1979 .
[78] R. Brinkhurst,et al. Studies on the Biology of the Tubificidae (Annelida, Oligochaeta) in a Polluted Stream , 1965 .
[79] M. Suidan,et al. Biodegradation of sediment-bound PAHs in field-contaminated sediment. , 2005, Water research.
[80] O. Andersen,et al. Bioturbation and the fate of sediment pollutants: experimental case studies of selected infauna species , 2003 .
[81] B. Clément,et al. Interactions between a polycyclic aromatic hydrocarbon mixture and the microbial communities in a natural freshwater sediment. , 2002, Chemosphere.
[82] Brian H. McArdle,et al. FITTING MULTIVARIATE MODELS TO COMMUNITY DATA: A COMMENT ON DISTANCE‐BASED REDUNDANCY ANALYSIS , 2001 .
[83] R. Naidu,et al. Bioremediation of high molecular weight polycyclic aromatic hydrocarbons: a review of the microbial degradation of benzo[a]pyrene. , 2000 .
[84] J. Durbec,et al. Quantitative estimation of biodiffusive and bioadvective sediment mixing - in-situ experimental approach , 1994 .
[85] Fabrice Martinet. Le macrobenthos limivore, descripteur des flux organiques liés aux sédiments : exemples dans diverses annexes fluviales du Rhône , 1993 .
[86] C. Weber. Methods for measuring the acute toxicity of effluents and receiving waters to freshwater and marine organisms , 1991 .
[87] H. Etcheber,et al. Measurement of actual electron transport system (ETS) activity in marine sediments by incubation with INT , 1989 .
[88] J. Fisher,et al. Effects of Tubificid Oligochaetes on Physical and Chemical Properties of Lake Erie Sediments , 1980 .