Biocontrol potential of two deep-sea microorganisms against gray blight disease of tea
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[1] Xiaojia Lin,et al. Streptomyces akebiae sp. nov., a novel actinomycete isolated from rhizosphere soil of Akebia trifoliate , 2022, Antonie van Leeuwenhoek.
[2] Shunping He,et al. Molecular Mechanisms of the Convergent Adaptation of Bathypelagic and Abyssopelagic Fishes , 2022, Genome biology and evolution.
[3] R. Malmstrom,et al. Community Structure and Microbial Associations in Sediment-Free Methanotrophic Enrichment Cultures from a Marine Methane Seep , 2022, Applied and environmental microbiology.
[4] W. Zhang,et al. Tea Plants With Gray Blight Have Altered Root Exudates That Recruit a Beneficial Rhizosphere Microbiome to Prime Immunity Against Aboveground Pathogen Infection , 2021, Frontiers in Microbiology.
[5] Amira M. El-Tahan,et al. Efficacy of Bacillus subtilis, Moringa oleifera seeds extract and potassium bicarbonate on Cercospora leaf spot on sugar beet , 2021, Saudi journal of biological sciences.
[6] N. Jiao,et al. Distinct metabolic strategies of the dominant heterotrophic bacterial groups associated with marine Synechococcus. , 2021, The Science of the total environment.
[7] H. Kwok,et al. Development of Marine-Derived Compounds for Cancer Therapy , 2021, Marine drugs.
[8] Jeffrey C. Anderson,et al. StPIP1, a PAMP-induced peptide in potato, elicits plant defenses and is associated with disease symptom severity in a compatible interaction with potato virus Y. , 2021, Journal of experimental botany.
[9] Zhiqiang Yu,et al. Occurrence of Halogenated Organic Pollutants in Hadal Trenches of the Western Pacific Ocean. , 2020, Environmental science & technology.
[10] A. A. Al-Homaidan,et al. Marine microorganisms as an untapped source of bioactive compounds , 2020, Saudi journal of biological sciences.
[11] Shiou-Ruei Lin,et al. Cryptic Diversity, Molecular Systematics and Pathogenicity of Pestalotiopsis and Allied Genera Causing Grey Blight Disease of Tea in Taiwan, with Description of a New Species of Pseudopestalotiopsis. , 2020, Plant Disease.
[12] Musa Hassan Muhammad,et al. Ecologically controlling insect and mite pests of tea plants with microbial pesticides: a review , 2020, Archives of Microbiology.
[13] Jian-zhang Pan,et al. High-throughput single-cell cultivation reveals the underexplored rare biosphere in deep-sea sediments along the Southwest Indian Ridge. , 2019, Lab on a chip.
[14] Chaoling Wei,et al. Characterization and Pathogenicity of Pestalotiopsis-Like Species Associated With Gray Blight Disease on Camellia sinensis in Anhui Province, China. , 2019, Plant Disease.
[15] Yuchun Wang,et al. Diversity of Pestalotiopsis-Like Species Causing Gray Blight Disease of Tea Plants (Camellia sinensis) in China, Including two Novel Pestalotiopsis Species, and Analysis of Their Pathogenicity. , 2019, Plant disease.
[16] D. Daffonchio,et al. Microbial ecology of deep-sea hypersaline anoxic basins. , 2018, FEMS microbiology ecology.
[17] Benwei Zhu,et al. Expression and characterization of a new heat-stable endo-type alginate lyase from deep-sea bacterium Flammeovirga sp. NJ-04 , 2017, Extremophiles.
[18] Lu Yu,et al. Investigating the antifungal activity and mechanism of a microbial pesticide Shenqinmycin against Phoma sp. , 2017, Pesticide biochemistry and physiology.
[19] Y. Arafat,et al. Spatial Distribution Patterns of Root-Associated Bacterial Communities Mediated by Root Exudates in Different Aged Ratooning Tea Monoculture Systems , 2017, International journal of molecular sciences.
[20] Gopalakrishnan Kumar,et al. Seaweeds: A resource for marine bionanotechnology. , 2016, Enzyme and microbial technology.
[21] Ajay Kumar,et al. Comparative Transcriptome Analysis of Chinary, Assamica and Cambod tea (Camellia sinensis) Types during Development and Seasonal Variation using RNA-seq Technology , 2016, Scientific Reports.
[22] Somnath Roy,et al. Use of plant extracts for tea pest management in India , 2016, Applied Microbiology and Biotechnology.
[23] Meijuan Fang,et al. A new macrolactin antibiotic from deep sea-derived bacteria Bacillus subtilis B5 , 2016, Natural product research.
[24] V. Veer,et al. Morphological and molecular diversity of endophytic Colletotrichum gloeosporioides from tea plant, Camellia sinensis (L.) O. Kuntze of Assam, India , 2016, Journal, genetic engineering & biotechnology.
[25] E. Suffredini,et al. Occurrence of virulence genes among Vibrio cholerae and Vibrio parahaemolyticus strains from treated wastewaters , 2014, Environmental Monitoring and Assessment.
[26] K. Sowndhararajan,et al. Biocontrol potential of phylloplane bacterium Ochrobactrum anthropi BMO‐111 against blister blight disease of tea , 2013, Journal of applied microbiology.
[27] J. Usall,et al. Formulation development of the biocontrol agent Bacillus subtilis strain CPA‐8 by spray‐drying , 2012, Journal of applied microbiology.
[28] J. Usall,et al. Endospore production allows using spray-drying as a possible formulation system of the biocontrol agent Bacillus subtilis CPA-8 , 2012, Biotechnology Letters.
[29] V. González-Rodríguez,et al. Development of Proteomics-Based Fungicides: New Strategies for Environmentally Friendly Control of Fungal Plant Diseases , 2011, International journal of molecular sciences.
[30] A. Miclot,et al. Efficacy of fungicides with various modes of action in controlling the early stages of an Erysiphe necator-induced epidemic. , 2010, Pest management science.
[31] Jiaxu Wang,et al. Enhancing the virulence of Paecilomyces lilacinus against Meloidogyne incognita eggs by overexpression of a serine protease , 2010, Biotechnology Letters.
[32] R. Ploetz,et al. Influence of Temperature, Light Intensity, and Isolate on the Development of Neofusicoccum parvum-Induced Dieback of Eugenia, Syzygium paniculatum. , 2009, Plant Disease.
[33] M. Micha‐Screttas. Editorial [Hot Topic:Biomedical Applications of Dendrimers (Guest Editor: Maria Micha-Screttas)] , 2008 .
[34] N. Sakthivel,et al. Cloning and overexpression of antifungal barley chitinase gene in Escherichia coli. , 2007, Protein expression and purification.
[35] A. Pandey,et al. Bacillus species: the dominant bacteria of the rhizosphere of established tea bushes. , 1997, Microbiological research.
[36] A. Hirota,et al. Phytotoxins from Tea Gray Blight Fungi, Pestalotiopsis longiseta and Pestalotiopsis theae. , 1992, Bioscience, biotechnology, and biochemistry.
[37] T. Zhu,et al. Secondary Metabolites from Deep-sea Derived Microorganisms. , 2019, Current Medicinal Chemistry.
[38] M. Athar,et al. Role of Antagonistic Microorganisms and Organic Amendment in Stimulating the Defense System of Okra Against Root Rotting Fungi. , 2015, Polish journal of microbiology.
[39] S. Palanisamy,et al. Susceptibility Against Grey Blight Disease-Causing Fungus Pestalotiopsis sp. in Tea (Camellia sinensis (L.) O. Kuntze) Cultivars Is Influenced by Anti-oxidative Enzymes , 2013, Applied Biochemistry and Biotechnology.
[40] Maria Micha-Screttas,et al. Current Topics in Medicinal Chemistry. Biomedical applications of dendrimers. , 2008, Current topics in medicinal chemistry.