Fluorescent pseudomonads occurring in Macrotermes subhyalinus mound structures decrease Cd toxicity and improve its accumulation in sorghum plants.
暂无分享,去创建一个
J. Thioulouse | M. Lepage | P. Moulin | R. Duponnois | K. Assigbétsé | Y. Prin | M. Kisa | M. Issartel | Marija Kisa | Michel Lepage
[1] A. Schaeffer,et al. Evaluation of the effect of small organic acids on phytoextraction of Cu and Pb from soil with tobacco Nicotiana tabacum. , 2006, Chemosphere.
[2] J. Thioulouse,et al. Litter-forager termite mounds enhance the ectomycorrhizal symbiosis between Acacia holosericea A. Cunn. Ex G. Don and Scleroderma dictyosporum isolates. , 2006, FEMS microbiology ecology.
[3] M. Wong,et al. Effects of inoculation of plant growth-promoting rhizobacteria on metal uptake by Brassica juncea. , 2006, Environmental pollution.
[4] G. H. Heichel,et al. Nitrogen release from roots of alfalfa and soybean grown in sand culture , 1989, Plant and Soil.
[5] A. Masoni,et al. Response of miscanthus to toxic cadmium applications during the period of maximum growth , 2006 .
[6] A. G. Khan. Role of soil microbes in the rhizospheres of plants growing on trace metal contaminated soils in phytoremediation. , 2005, Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements.
[7] L. Cavalca,et al. Analysis of rhizobacterial communities in perennial Graminaceae from polluted water meadow soil, and screening of metal-resistant, potentially plant growth-promoting bacteria. , 2005, FEMS microbiology ecology.
[8] Z. Piotrowska-Seget,et al. Metal-tolerant bacteria occurring in heavily polluted soil and mine spoil , 2005 .
[9] K. Kandil,et al. Tolerance and uptake of heavy metals by Pseudomonads , 2005 .
[10] H. Insam,et al. Soil microbial biomass and respiration measurements: An automated technique based on infra-red gas analysis , 1989, Plant and Soil.
[11] A. de Varennes,et al. Influence of organic matter on the uptake of cadmium, zinc, copper and iron by sorghum plants. , 2004, The Science of the total environment.
[12] K. Prach. The Restoration and Management of Derelict Land: Modern Approaches , 2004 .
[13] H. Marschner,et al. Contribution of an arbuscular mycorrhizal fungus to the uptake of cadmium and nickel in bean and maize plants , 1996, Plant and Soil.
[14] C. Leyval,et al. Arbuscular mycorrhizal contribution to heavy metal uptake by maize (Zea mays L.) in pot culture with contaminated soil , 1995, Mycorrhiza.
[15] R. Duponnoisa,et al. Functional diversity of soil microbial community , rock phosphate dissolution and growth of Acacia seyal as influenced by grass-, litter-and soil-feeding termite nest structure amendments , 2004 .
[16] Richard J. Ellis,et al. Cultivation-Dependent and -Independent Approaches for Determining Bacterial Diversity in Heavy-Metal-Contaminated Soil , 2003, Applied and Environmental Microbiology.
[17] R. Duponnois,et al. A mycorrhiza helper bacterium enhances ectomycorrhizal and endomycorrhizal symbiosis of Australian Acacia species , 2003, Mycorrhiza.
[18] M. Wong,et al. The role of citric acid on the phytoremediation of heavy metal contaminated soil. , 2003, Chemosphere.
[19] M. Wong,et al. The role of arbuscular mycorrhiza in zinc uptake by red clover growing in a calcareous soil spiked with various quantities of zinc. , 2003, Chemosphere.
[20] Ming Hung Wong,et al. The restoration and management of derelict land :modern approaches , 2003 .
[21] Guy Perrière,et al. Between-group analysis of microarray data , 2002, Bioinform..
[22] A. Brauman,et al. Phylogenetic relationships in Termitomyces (Family Agaricaceae) based on the nucleotide sequence of ITS: a first approach to elucidate the evolutionary history of the symbiosis between fungus-growing termites and their fungi. , 2002, Molecular phylogenetics and evolution.
[23] Catherine N. Mulligan,et al. Surfactant-enhanced remediation of contaminated soil: a review , 2001 .
[24] Catherine N. Mulligan,et al. Remediation technologies for metal-contaminated soils and groundwater: an evaluation , 2001 .
[25] C. Leyval,et al. Time-course of heavy metal uptake in maize and clover as affected by root density and different mycorrhizal inoculation regimes , 2001, Biology and Fertility of Soils.
[26] J. V. van Elsas,et al. Structural diversity of microorganisms in chemically perturbed soil assessed by molecular and cytochemical approaches. , 2001, Journal of microbiological methods.
[27] J. D. Elsas,et al. Response of the bacterial community to root exudates in soil polluted with heavy metals assessed by molecular and cultural approaches , 2000 .
[28] A. Khan,et al. Role of plants, mycorrhizae and phytochelators in heavy metal contaminated land remediation. , 2000, Chemosphere.
[29] P. Hobbs,et al. Structure and function of the soil microbial community in microhabitats of a heavy metal polluted soil , 2000, Biology and Fertility of Soils.
[30] B R Glick,et al. Plant growth-promoting bacteria that decrease heavy metal toxicity in plants. , 2000, Canadian journal of microbiology.
[31] Bernard R. Glick,et al. Biochemical and Genetic Mechanisms Used by Plant Growth Promoting Bacteria , 1999 .
[32] S. D. Cunningham,et al. Chelate-Assisted Pb Phytoextraction: Pb Availability, Uptake, and Translocation Constraints , 1999 .
[33] M. Kaldorf,et al. The Zinc Violet and its Colonization by Arbuscular Mycorrhizal Fungi , 1999 .
[34] Catherine N. Mulligan,et al. On the use of biosurfactants for the removal of heavy metals from oil‐contaminated soil , 1999 .
[35] D. Salt,et al. Phytoremediation: A Plant—Microbe-Based Remediation System , 1999 .
[36] J. Holt. Microbial activity in the mounds of some Australian termites , 1998 .
[37] R. Brooks. Plants that Hyperaccumulate Heavy Metals , 1998 .
[38] C. Leyval,et al. Effect of heavy metal pollution on mycorrhizal colonization and function: physiological, ecological and applied aspects , 1997, Mycorrhiza.
[39] B. Degens,et al. Development of a physiological approach to measuring the catabolic diversity of soil microbial communities , 1997 .
[40] H. Felix. Field trials for in situ decontamination of heavy metal polluted soils using crops of metal-accumulating plants , 1997 .
[41] G. Cieslinski,et al. Kinetics of Cadmium Release from Soils as Influenced by Organic Acids: Implication in Cadmium Availability , 1997 .
[42] S. Grayston,et al. Rhizosphere carbon flow in trees, in comparison with annual plants: the importance of root exudation and its impact on microbial activity and nutrient availability , 1997 .
[43] Jean Thioulouse,et al. ADE-4: a multivariate analysis and graphical display software , 1997, Stat. Comput..
[44] Cadmium binding by bacteria: screening and characterization of new isolates and mutants. , 1996, FEMS microbiology letters.
[45] J. Kozdrój. Microbial responses to single or successive soil contamination with Cd or Cu , 1995 .
[46] Ilya Raskin,et al. Phytoremediation: A Novel Strategy for the Removal of Toxic Metals from the Environment Using Plants , 1995, Bio/Technology.
[47] B. Hetrick,et al. The influence of mycorrhizal symbiosis and fertilizer amendments on establishment of vegetation in heavy metal mine spoil. , 1994, Environmental pollution.
[48] R. Chaney,et al. Bacterial resistance to heavy metals related to extractable and total metal concentrations in soil and media , 1993 .
[49] P. Bradley,et al. Influence of Pb on microbial activity in Pb contaminated soils , 1993 .
[50] G. Gadd. Metals and microorganisms: a problem of definition. , 1992, FEMS microbiology letters.
[51] J. Devillers,et al. Applied multivariate analysis in SAR and environmental studies , 1991 .
[52] G. Banco,et al. Principal Component and Correspondence Analyses with Respect to Instrumental Variables : An Overview of Their Role in Studies of Structure - Activity and Species - Environment Relationships , 1991 .
[53] T. Rosswall,et al. Effects of cadmium, copper, magnesium, and zinc on the decomposition of citrate by a Klebsiella sp , 1989, Applied and environmental microbiology.
[54] Daniel Chessel,et al. Rythmes saisonniers et composantes stationnelles en milieu aquatique. II: Prise en compte et élimination d'effets dans un tableau faunistique , 1989 .
[55] M. Lepage,et al. The role of subterranean fungus comb chambers (isoptera, macrotermitinae) in soil nitrogen cycling in a preforest savanna (côte divoire) , 1989 .
[56] J. Bollag,et al. Microbial Role in Immobilization and Subsequent Mobilization of Cadmium in Soil Suspensions1 , 1987 .
[57] P. Arlien‐Søborg,et al. Science of the Total Environment , 2018 .
[58] Daniel Chessel,et al. Rythmes saisonniers et composantes stationnelles en milieu aquatique. I: Description d'un plan d'observation complet par projection de variables , 1987 .
[59] G. Sparling,et al. Modifications to the substrate-induced respiration method to permit measurement of microbial biomass in soils of differing water contents , 1986 .
[60] Y. Piché,et al. A developmental study of the early stages in vesicular-arbuscular mycorrhiza formation , 1985 .
[61] R. Wildung,et al. Nickel Complexes with Soil Microbial Metabolites—Mobility and Speciation in Soils , 1979 .
[62] J. M. Phillips,et al. Improved procedures for clearing roots and staining parasitic and vesicular-arbuscular mycorrhizal fungi for rapid assessment of infection. , 1970 .
[63] Calyampudi R. Rao. The use and interpretation of principal component analysis in applied research , 1964 .
[64] King Eo,et al. Two simple media for the demonstration of pyocyanin and fluorescin. , 1954 .
[65] E. King,et al. Two simple media for the demonstration of pyocyanin and fluorescin. , 1954, The Journal of laboratory and clinical medicine.