Isolation, characterization, and use for plant growth promotion under salt stress, of ACC deaminase-producing halotolerant bacteria derived from coastal soil.
暂无分享,去创建一个
Tongmin Sa | T. Sa | R. Anandham | G. Han | Md. Ashaduzzaman Siddikee | P. Chauhan | Md Ashaduzzaman Siddikee | Puneet S Chauhan | R Anandham | Gwang-Hyun Han
[1] B. Glick,et al. A model for the lowering of plant ethylene concentrations by plant growth-promoting bacteria , 1998, Journal of theoretical biology.
[2] J. Lynch,et al. Substrate flow in the rhizosphere , 1990, Plant and Soil.
[3] D. Courtois,et al. Microbiological study of a hypersaline lake in French Somaliland. , 1974, Applied microbiology.
[4] B. Glick,et al. Growth of canola (Brassica napus) in the presence of plant growth-promoting bacteria and either copper or polycyclic aromatic hydrocarbons. , 2005, Canadian journal of microbiology.
[5] L. Madden,et al. Isolation and characterization of rhizobacteria from composts that suppress the severity of bacterial leaf spot of radish. , 2003, Phytopathology.
[6] B. Glick,et al. Amelioration of flooding stress by ACC deaminase-containing plant growth-promoting bacteria [aminocyclopropane-1-carboxilic acid] , 2001 .
[7] M. Amoozegar,et al. Screening and isolation of halophilic bacteria producing extracellular hydrolyses from Howz Soltan Lake, Iran , 2009, Journal of Industrial Microbiology & Biotechnology.
[8] R. Bostock,et al. Rapid In Situ Assay for Indoleacetic Acid Production by Bacteria Immobilized on a Nitrocellulose Membrane , 1991, Applied and environmental microbiology.
[9] Bernard R. Glick,et al. Promotion of plant growth by ACC deaminase-producing soil bacteria , 2007, European Journal of Plant Pathology.
[10] N. Saitou,et al. The neighbor-joining method: a new method for reconstructing phylogenetic trees. , 1987, Molecular biology and evolution.
[11] B. Glick,et al. Bacterial ACC deaminase and the alleviation of plant stress. , 2004, Advances in applied microbiology.
[12] I. Abrol,et al. Salt-affected soils and their management , 1988 .
[13] M. S. Khan,et al. Chromium Reduction, Plant Growth–Promoting Potentials, and Metal Solubilizatrion by Bacillus sp. Isolated from Alluvial Soil , 2007, Current Microbiology.
[14] A. Giongo,et al. Evaluation of genetic diversity of bradyrhizobia strains nodulating soybean [Glycine max (L.) Merrill] isolated from South Brazilian fields , 2008 .
[15] Sudhir Kumar,et al. MEGA3: Integrated software for Molecular Evolutionary Genetics Analysis and sequence alignment , 2004, Briefings Bioinform..
[16] P. Hariprasad,et al. Isolation and characterization of phosphate solubilizing rhizobacteria to improve plant health of tomato , 2009, Plant and Soil.
[17] S. Nadeem,et al. Comparative effectiveness of Pseudomonas and Serratia sp. containing ACC-deaminase for improving growth and yield of wheat (Triticum aestivum L.) under salt-stressed conditions , 2009, Archives of Microbiology.
[18] K. Ulaganathan,et al. Antagonism of Bacillus species (strain BC121) towards Curvularia lunata. , 2002 .
[19] M. Madhaiyan,et al. Potential for plant growth promotion in groundnut (Arachis hypogaea L.) cv. ALR-2 by co-inoculation of sulfur-oxidizing bacteria and Rhizobium. , 2007, Microbiological research.
[20] C. Nautiyal,et al. Biologic Control Ability of Plant Growth–Promoting Paenibacillus lentimorbus NRRL B-30488 Isolated from Milk , 2006, Current Microbiology.
[21] O. H. Lowry,et al. Protein measurement with the Folin phenol reagent. , 1951, The Journal of biological chemistry.
[22] J. Zhu,et al. Plant salt tolerance. , 2001, Trends in plant science.
[23] Trevor C. Charles,et al. An ACC Deaminase Minus Mutant of Enterobacter cloacae UW4No Longer Promotes Root Elongation , 2000, Current Microbiology.
[24] B. Glick,et al. Plant growth-promoting bacteria confer resistance in tomato plants to salt stress. , 2004, Plant physiology and biochemistry : PPB.
[25] C. Nautiyal,et al. Biocontrol Efficacy of Bacillus subtilis Strains Isolated from Cow Dung Against Postharvest Yam (Dioscorea rotundata L.) Pathogens , 2008, Current Microbiology.
[26] M. Kimura. A simple method for estimating evolutionary rates of base substitutions through comparative studies of nucleotide sequences , 1980, Journal of Molecular Evolution.
[27] N. Jamil,et al. Effect of zinc-phosphate-solubilizing bacterial isolates on growth of Vigna radiata , 2010, Annals of Microbiology.
[28] G. R.K.,et al. SCREENING OF NITROGEN FIXERS FROM RHIZOSPHERIC BACTERIAL ISOLATES ASSOCIATED WITH IMPORTANT DESERT PLANTS , 2009 .
[29] Dong-Hyun Shin,et al. Gibberellin production and phosphate solubilization by newly isolated strain of Acinetobacter calcoaceticus and its effect on plant growth , 2008, Biotechnology Letters.
[30] B. Glick,et al. 1-Aminocyclopropane-1-carboxylate deaminase from Pseudomonas putida UW4 facilitates the growth of canola in the presence of salt. , 2007, Canadian journal of microbiology.
[31] Bernard R. Glick,et al. Role of Pseudomonas putida Indoleacetic Acid in Development of the Host Plant Root System , 2002, Applied and Environmental Microbiology.
[32] D. Singh,et al. Genetic Diversity of Plant Growth Promoting Rhizobacteria Isolated from Rhizospheric Soil of Wheat Under Saline Condition , 2009, Current Microbiology.
[33] B. Glick,et al. Methods for isolating and characterizing ACC deaminase-containing plant growth-promoting rhizobacteria. , 2003, Physiologia plantarum.
[34] R. Pikovskaya. Mobilization of phosphorus in soil in connection with the vital activity of some microbial species , 1948 .
[35] J. Felsenstein. CONFIDENCE LIMITS ON PHYLOGENIES: AN APPROACH USING THE BOOTSTRAP , 1985, Evolution; international journal of organic evolution.
[36] K. Dietz,et al. Characterization of plant growth promoting rhizobacteria isolated from polluted soils and containing 1-aminocyclopropane-1-carboxylate deaminase. , 2001, Canadian journal of microbiology.
[37] J. M. Wood,et al. Bacterial genetic loci implicated in the Pseudomonas putida GR12-2R3--canola mutualism: identification of an exudate-inducible sugar transporter. , 1997, Canadian journal of microbiology.
[38] D. Courtois,et al. Microbiology Study of a Hypersaline Lake in French Somaliland , 1974 .
[39] M. Madhaiyan,et al. Induction of defense responses in tomato against Pseudomonas syringae pv. tomato by regulating the stress ethylene level with Methylobacterium oryzae CBMB20 containing 1-aminocyclopropane-1-carboxylate deaminase , 2008 .
[40] M. Madhaiyan,et al. Regulation of ethylene levels in canola (Brassica campestris) by 1-aminocyclopropane-1-carboxylate deaminase-containing Methylobacterium fujisawaense , 2006, Planta.
[41] J. Thompson,et al. CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. , 1994, Nucleic acids research.
[42] M. Madhaiyan,et al. Characterization of Plant Growth–Promoting Traits of Bacteria Isolated from Larval Guts of Diamondback Moth Plutella xylostella (Lepidoptera: Plutellidae) , 2008, Current Microbiology.
[43] H. Larsen. Halophilic and halotolerant microorganisms‐an overview and historical perspective , 1986 .
[44] B. Tindall,et al. Gracilibacillus gen. nov., with description of Gracilibacillus halotolerans gen. nov., sp. nov.; transfer of Bacillus dipsosauri to Gracilibacillus dipsosauri comb. nov., and Bacillus salexigens to the genus Salibacillus gen. nov., as Salibacillus salexigens comb. nov. , 1999, International journal of systematic bacteriology.
[45] Bernard R. Glick,et al. The enhancement of plant growth by free-living bacteria , 1995 .