Plant Protection Mediated Through an Array of Metabolites Produced by Pantoea dispersa Isolated from Pitcher Plant
暂无分享,去创建一个
A. R. | C. T. Aravindakumar | S. S. | N. K. | R. K | C. Aravindakumar | Nejumal K. K. | Sebastian K. S.
[1] R. E. Krishnankutty,et al. Root exudate components induced production of plant beneficial metabolites in rhizospheric Pseudomonas spp. , 2021 .
[2] R. Singh,et al. Anti-enterococcal and anti-oxidative potential of a thermophilic cyanobacterium, Leptolyngbya sp. HNBGU 003 , 2021, Saudi journal of biological sciences.
[3] J. A. López-González,et al. Seed biopriming with cyanobacterial extracts as an eco-friendly strategy to control damping off caused by Pythium ultimum in seedbeds. , 2021, Microbiological research.
[4] Satyawati Sharma,et al. Pythium Damping-Off and Root Rot of Capsicum annuum L.: Impacts, Diagnosis, and Management , 2021, Microorganisms.
[5] R. Bhai,et al. Efficacy of bioagents against Pythium deliense Meurs associated with yellowing of black pepper , 2021, Archives of Microbiology.
[6] Y. Shouche,et al. A prospectus of plant growth promoting endophytic bacterium from orchid (Vanda cristata) , 2021, BMC Biotechnology.
[7] M. C. Quecine,et al. Beneficial Plant-Associated Microorganisms From Semiarid Regions and Seasonally Dry Environments: A Review , 2021, Frontiers in Microbiology.
[8] Manoj Kumar Solanki,et al. Diazotrophic Bacteria Pantoea dispersa and Enterobacter asburiae Promote Sugarcane Growth by Inducing Nitrogen Uptake and Defense-Related Gene Expression , 2021, Frontiers in Microbiology.
[9] G. Pagnani,et al. Cell-Free Supernatants of Plant Growth-Promoting Bacteria: A Review of Their Use as Biostimulant and Microbial Biocontrol Agents in Sustainable Agriculture , 2020 .
[10] A. Pareek,et al. Pitchers of Nepenthes khasiana express several digestive-enzyme encoding genes, harbor mostly fungi and probably evolved through changes in the expression of leaf polarity genes , 2020, BMC plant biology.
[11] M. Ruzzi,et al. Metabolites Secreted by a Plant-Growth-Promoting Pantoea agglomerans Strain Improved Rooting of Pyrus communis L. cv Dar Gazi Cuttings , 2020, Frontiers in Microbiology.
[12] W. N. Chen,et al. GC-MS-Based Metabolomics Analysis of Prawn Shell Waste Co-Fermentation by Lactobacillus plantarum and Bacillus subtilis , 2020, Polysaccharides.
[13] Radhakrishnan Edayileveetil Krishnankutty,et al. Rhizobacterial biofilm and plant growth promoting trait enhancement by organic acids and sugars , 2020, Biofouling.
[14] E. Radhakrishnan,et al. Modulation of agriculturally useful rhamnolipid profile of Pseudomonas sp. K6 due to the supplementation with chitosan and gold nanoparticles , 2020, World Journal of Microbiology and Biotechnology.
[15] D. de Pascale,et al. Molecular Network and Culture Media Variation Reveal a Complex Metabolic Profile in Pantoea cf. eucrina D2 Associated with an Acidified Marine Sponge , 2020, International journal of molecular sciences.
[16] O. Babalola,et al. Exploring the potentialities of beneficial endophytes for improved plant growth , 2020, Saudi journal of biological sciences.
[17] J. W. Goessling,et al. Pathogenicity of Pythium species to maize , 2020, European Journal of Plant Pathology.
[18] F. Ye,et al. Isolation and identification of bioactive substance 1-hydroxyphenazine from Pseudomonas aeruginosa and its antimicrobial activity. , 2020, Letters in applied microbiology.
[19] E. Radhakrishnan,et al. Nanoelicitor based enhancement of camptothecin production in fungi isolated from Ophiorrhiza mungos , 2020, Biotechnology progress.
[20] O. Babalola,et al. Elucidating Mechanisms of Endophytes Used in Plant Protection and Other Bioactivities With Multifunctional Prospects , 2020, Frontiers in Bioengineering and Biotechnology.
[21] J. Reyes-Pérez,et al. Efficiency of Marine Bacteria and Yeasts on the Biocontrol Activity of Pythium ultimum in Ancho-Type Pepper Seedlings , 2020, Agronomy.
[22] Shilpi Sharma,et al. Next generation bioformulation prepared by amalgamating Bradyrhizobium, cell free culture supernatant, and exopolysaccharides enhances the indigenous rhizospheric rhizobial population, nodulation, and productivity of pigeon pea , 2020 .
[23] B. Glick,et al. The extreme plant-growth promoting properties of Pantoea phytobeneficialis MSR2 revealed by functional and genomic analysis. , 2020, Environmental microbiology.
[24] Lihua Li,et al. Antifungal activity of endophytic Bacillus safensis B21 and its potential application as a biopesticide to control rice blast. , 2020, Pesticide biochemistry and physiology.
[25] D. Mitra. Emerging Plant Diseases: Research Status and Challenges , 2020 .
[26] Cha Young Kim,et al. Potential of Pantoea dispersa as an effective biocontrol agent for black rot in sweet potato , 2019, Scientific Reports.
[27] S. Potdukhe,et al. Efficacy of Fungicides and Bioagents against Damping off in Chilli caused by Pythium aphanidermatum , 2019, International Journal of Current Microbiology and Applied Sciences.
[28] R. Abbas. Chemical Constituents of the Goat Margarine and Antibacterial Activity against Bacterial Pathogens in Sudan , 2019, Journal of Pure and Applied Microbiology.
[29] A. Sessitsch,et al. A review on the plant microbiome: Ecology, functions, and emerging trends in microbial application , 2019, Journal of advanced research.
[30] M. Chytrý,et al. Diversity of fungi and bacteria in species‐rich grasslands increases with plant diversity in shoots but not in roots and soil , 2018, FEMS microbiology ecology.
[31] N. Comlekcioglu. Bioactive Compounds and Antioxidant Activity in Leaves of Endemic and Native Isatis spp in Turkey , 2019, Brazilian Archives of Biology and Technology.
[32] M. Abdel-Aziz,et al. Antimicrobial and antioxidant activities of different extracts from Aspergillus unguis SPMD-EGY grown on different media , 2018, Bulletin of the National Research Centre.
[33] P. Prasertsan,et al. Inhibitory effects of acetophenone or phenylethyl alcohol as fumigant to protect soybean seeds against two aflatoxin-producing fungi , 2018, Journal of Food Science and Technology.
[34] E. Radhakrishnan,et al. Differential modulation of phytoelemental composition by selected Pseudomonas spp. , 2018, 3 Biotech.
[35] W. Romi,et al. Antimicrobial potentiality of actinobacteria isolated from two microbiologically unexplored forest ecosystems of Northeast India , 2018, BMC microbiology.
[36] E. Radhakrishnan,et al. Beneficial Changes in Capsicum frutescens Due to Priming by Plant Probiotic Burkholderia spp. , 2018, Probiotics and Antimicrobial Proteins.
[37] Sudhir Kumar,et al. MEGA X: Molecular Evolutionary Genetics Analysis across Computing Platforms. , 2018, Molecular biology and evolution.
[38] M. Biswas,et al. Efficacy of Medicinal Plant Extracts Against Collar Rot of Tomato Caused By Sclerotium Rolfsii (Sacc.) , 2018, International Journal of Microbiology Research.
[39] T. Xuan,et al. Allelopathic potential of Tridax procumbens L. on radish and identification of allelochemicals , 2018 .
[40] E. Radhakrishnan,et al. Green synthesized silver nanoparticles by marine endophytic fungus Penicillium polonicum and its antibacterial efficacy against biofilm forming, multidrug-resistant Acinetobacter baumanii. , 2018, Microbial pathogenesis.
[41] N. Sharma,et al. Establishment of LCMS Based Platform for Discovery of Quorum Sensing Inhibitors: Signal Detection in Pseudomonas aeruginosa PAO1. , 2018, ACS chemical biology.
[42] O. Darwesh,et al. First report of Pythium aphanidermatum infecting tomato in Egypt and its control using biogenic silver nanoparticles , 2023, Journal of Plant Protection Research.
[43] E. Radhakrishnan,et al. Plant Growth Promoting Endophytic Serratia sp. ZoB14 Protecting Ginger from Fungal Pathogens , 2019, Proceedings of the National Academy of Sciences, India Section B: Biological Sciences.
[44] E. Radhakrishnan,et al. Culturable Endophytic Bacteria of Ginger Rhizome and their Remarkable Multi-trait Plant Growth-Promoting Features , 2018, Current Microbiology.
[45] P. Manage,et al. In vitro screening of, antibacterial antifungal and cytotoxicity activities in crude extract of freshwater cyanobacterium Oscillatoria sp. , 2017 .
[46] J. Postma,et al. Current Insights into the Role of Rhizosphere Bacteria in Disease Suppressive Soils , 2017, Front. Microbiol..
[47] I. Ibraheam,et al. Characterization of Antifungal Metabolites Produced by Aeromonas Hydrophila and Analysis of its Chemical Compounds Using GC-MS , 2017 .
[48] P. Owlia,et al. Comprehensive genomic analysis of a plant growth-promoting rhizobacterium Pantoea agglomerans strain P5 , 2017, Scientific Reports.
[49] J. Mathew,et al. Pseudomonas fluorescens R68 assisted enhancement in growth and fertilizer utilization of Amaranthus tricolor (L.) , 2017, 3 Biotech.
[50] J. Mathew,et al. Identification of a novel endophytic Bacillus sp. from Capsicum annuum with highly efficient and broad spectrum plant probiotic effect , 2016, Journal of applied microbiology.
[51] E. Radhakrishnan,et al. Identification of plant growth promoting Rhizosphere Bacillus sp. WG4 antagonistic to Pythium myriotylum and its enhanced antifungal effect in association with Trichoderma , 2016 .
[52] B. Ali,et al. Screening of Rhizospheric Actinomycetes for Various In-vitro and In-vivo Plant Growth Promoting (PGP) Traits and for Agroactive Compounds , 2016, Front. Microbiol..
[53] C. Juneius,et al. Studies on the Effects of L-Prolinamide, 5-OXO- L-Prolyl-L-Phenylanyl-4-Hydroxy Compound Produced by Pseudomonas Fluorescence against Cell Wall Protein (3GNU Receptor) of Pythium SPP MTCC 10247 , 2016 .
[54] Martín P. Vázquez,et al. Integrated analysis of root microbiomes of soybean and wheat from agricultural fields , 2016, Scientific Reports.
[55] E. Radhakrishnan,et al. Surfactin, Iturin, and Fengycin Biosynthesis by Endophytic Bacillus sp. from Bacopa monnieri , 2016, Microbial Ecology.
[56] A. Manilal,et al. Evaluating the antibacterial and anticandidal potency of mangrove, Avicennia marina , 2016 .
[57] R. Majinda,et al. GC-MS Analysis and Preliminary Antimicrobial Activity of Albizia adianthifolia (Schumach) and Pterocarpus angolensis (DC) , 2016, Medicines.
[58] Muthu Kumar. Occurrence and Distribution of Indigenous Isolates of Pythium Species in Northern India , 2016 .
[59] Adriana Ambrosini,et al. Plant growth-promoting bacteria as inoculants in agricultural soils , 2015, Genetics and molecular biology.
[60] T. Losenge,et al. Efficacy of Bacillus subtilis and Trichoderma asperellum against Pythium aphanidermatum in tomatoes , 2015 .
[61] M. Anandaraj,et al. Isolation, characterization, and evaluation of multi-trait plant growth promoting rhizobacteria for their growth promoting and disease suppressing effects on ginger. , 2015, Microbiological research.
[62] Yuan-Qiu He,et al. The application of phosphate solubilizing endophyte Pantoea dispersa triggers the microbial community in red acidic soil , 2014 .
[63] M. Mansour,et al. Fatty Acid Methyl Esters from Air-Dried Wood, Bark, and Leaves of Brachychiton diversifolius R. Br: Antibacterial, Antifungal, and Antioxidant Activities , 2014 .
[64] John Stavrinides,et al. Identification of a Pantoea Biosynthetic Cluster That Directs the Synthesis of an Antimicrobial Natural Product , 2014, PloS one.
[65] E. Radhakrishnan,et al. Phenazine carboxylic acid production and rhizome protective effect of endophytic Pseudomonas aeruginosa isolated from Zingiber officinale , 2014, World journal of microbiology & biotechnology.
[66] Imhoi Koo,et al. Compound identification in GC-MS by simultaneously evaluating the mass spectrum and retention index. , 2014, The Analyst.
[67] J. Mathew,et al. LC-MS/MS Based Identification of Piperine Production by Endophytic Mycosphaerella sp. PF13 from Piper nigrum , 2014, Applied Biochemistry and Biotechnology.
[68] E. Radhakrishnan,et al. Isolation of endophytic bacteria from embryogenic suspension culture of banana and assessment of their plant growth promoting properties , 2014, Plant Cell, Tissue and Organ Culture (PCTOC).
[69] B. Yun,et al. Biocontrol Activity of Bacillus amyloliquefaciens CNU114001 against Fungal Plant Diseases , 2013, Mycobiology.
[70] J. Mathew,et al. Isolation and characterization of plant growth promoting endophytic bacteria from the rhizome of Zingiber officinale , 2013, 3 Biotech.
[71] T. Karegoudar,et al. Indole‐3‐acetic acid biosynthetic pathway and aromatic amino acid aminotransferase activities in Pantoea dispersa strain GPK , 2013, Letters in applied microbiology.
[72] Yong Hoon Lee,et al. Plant growth promoting rhizobacterium Proteus vulgaris JBLS202 stimulates the seedling growth of Chinese cabbage through indole emission , 2013, Plant and Soil.
[73] S. George,et al. Production and characterization of rhamnolipid biosurfactant from waste frying coconut oil using a novel Pseudomonas aeruginosa D , 2013, Journal of applied microbiology.
[74] Su Nam Kim,et al. Growth Promotion of Pepper Plants by Pantoea ananatis B1-9 and its Efficient Endophytic Colonization Capacity in Plant Tissues , 2012 .
[75] A. Silini,et al. Isolation and characterization of plant growth promoting traits of a rhizobacteria: Pantoea agglomerans lma2. , 2012, Pakistan journal of biological sciences : PJBS.
[76] N. Gherraf,et al. Chemical composition and antibacterial activity of the essential oils from Launaea resedifolia L , 2012, Organic and medicinal chemistry letters.
[77] M. Stolarz,et al. Quite a few reasons for calling carnivores 'the most wonderful plants in the world'. , 2012, Annals of botany.
[78] W. Blankenfeldt,et al. Diversity and Evolution of the Phenazine Biosynthesis Pathway , 2009, Applied and Environmental Microbiology.
[79] A. Gulati,et al. Organic acid production in vitro and plant growth promotion in maize under controlled environment by phosphate-solubilizing fluorescent Pseudomonas , 2009, BMC Microbiology.
[80] M. Ongena,et al. Bacillus lipopeptides: versatile weapons for plant disease biocontrol. , 2008, Trends in microbiology.
[81] A. Mir,et al. Simultaneous lipidomic analysis of three families of bioactive lipid mediators leukotrienes, resolvins, protectins and related hydroxy-fatty acids by liquid chromatography/electrospray ionisation tandem mass spectrometry. , 2008, Rapid communications in mass spectrometry : RCM.
[82] S. Tsushima,et al. Culturable Leaf-Associated Bacteria on Tomato Plants and Their Potential as Biological Control Agents , 2007, Microbial Ecology.
[83] J. Nowak,et al. Use of Plant Growth-Promoting Bacteria for Biocontrol of Plant Diseases: Principles, Mechanisms of Action, and Future Prospects , 2005, Applied and Environmental Microbiology.
[84] S. Gibbons,et al. The antimycobacterial components of hops (Humulus lupulus) and their dereplication , 2004, Phytotherapy research : PTR.
[85] S. R. Giddens,et al. The influence of antibiotic production and pre-emptive colonization on the population dynamics of Pantoea agglomerans (Erwinia herbicola) Eh1087 and Erwinia amylovora in planta. , 2003, Environmental microbiology.
[86] J. Yu,et al. THE PEPTIDE ANTIBIOTIC PRODUCED BY PANTOEA AGGLOMERANS EH252 IS A MICROCIN , 2002 .
[87] A. Allan,et al. BIOCONTROL AGENT PANTOEA AGGLOMERANS STRAIN NZ501 INDUCES A RESISTANCE-LIKE RESPONSE IN KIWIFRUIT AND TOBACCO CELLS , 2002 .
[88] S. R. Giddens,et al. Characterization of a novel phenazine antibiotic gene cluster in Erwinia herbicola Eh1087 , 2002, Molecular microbiology.
[89] R. Porat,et al. Induction of Resistance to Penicillium digitatum in Grapefruit by the Yeast Biocontrol Agent Candida oleophila. , 2002, Phytopathology.
[90] T. Tworkoski,et al. Characterizing the mechanism of biological control of postharvest diseases on fruits with a simple method to study competition for nutrients. , 2000, Phytopathology.
[91] Lukas Wagner,et al. A Greedy Algorithm for Aligning DNA Sequences , 2000, J. Comput. Biol..
[92] G. Taylor,et al. Pseudomonas aeruginosa pyocyanin and 1-hydroxyphenazine inhibit fungal growth. , 1999, Journal of clinical pathology.
[93] P. Bakker,et al. Utilization of heterologous siderophores and rhizosphere competence of fluorescent Pseudomonas spp. , 1995 .
[94] A. Cremieux,et al. Antibacterial activity of phenethyl alcohol and resulting membrane alterations. , 1990, Research in microbiology.