يعرض 1 - 10 نتائج من 10 نتيجة بحث عن '"Técnicas de cultivo (biología)"', وقت الاستعلام: 0.80s تنقيح النتائج
  1. 1
    Book

    المساهمون: Gómez Sánchez, Nelson, Restrepo Gonzalez, Silvia Juliana, Martinez Moreno, Leidy Juliana, Roche, Cara Inés de la, Gómez Sánchez, Antonio

    جغرافية الموضوع: Bucaramanga

    وصف الملف: application/pdf

    Relation: Garcia, J., Restrepo, S., Gòmez, N., Moreno, E., Dubeibe, D., Mogollon, E,. (2017), Manual de procedimientos para la producción y vitrificación de embriones bovinos en laboratorios de reproducción animal, Santander, San Gil, Bucaramanga, Colombia. Servicio Nacional de Aprendizaje, Universidad Cooperativa de Colombia.; https://hdl.handle.net/11404/5047

  2. 2
  3. 3
    Dissertation/ Thesis

    المساهمون: Uribe-Velez, Daniel, Castellanos Hernandez, Leonardo, Estudio y Aprovechamiento de Productos Naturales Marinos y Frutas de Colombia, Microbiologia Agricola

    وصف الملف: xxix, 260 páginas; application/pdf

    Relation: Pan, H. Q., Li, Q. L., & Hu, J. C. (2017). The complete genome sequence of Bacillus velezensis 9912D reveals its biocontrol mechanism as a novel commercial biological fungicide agent. Journal of Biotechnology, 247, 25–28. https://doi.org/10.1016/j.jbiotec.2017.02.022; Pandin, Caroline et al. 2018. “Complete Genome Sequence of Bacillus Velezensis QST713: A Biocontrol Agent That Protects Agaricus Bisporus Crops against the Green Mould Disease.” Journal of Biotechnology 278: 10–19. https://hal.archives-ouvertes.fr/hal-02353465.; Patel, Hiren et al. 2011. “All-or-None Membrane Permeabilization by Fengycin-Type Lipopeptides from Bacillus Subtilis QST713.” Biochimica et Biophysica Acta - Biomembranes 1808(8): 2000–2008.; Pathak, Khyati v., and Hareshkumar Keharia. 2014. “Identification of Surfactins and Iturins Produced by Potent Fungal Antagonist, Bacillus Subtilis K1 Isolated from Aerial Roots of Banyan (Ficus Benghalensis) Tree Using Mass Spectrometry.” 3 Biotech 4(3): 283–95.; Pathma, J., Rahul, G. R., Kennedy, R. K., Subashri, R., & Sakthivel, N. (2011). Secondary Metabolite Production by Bacterial Antagonists. Journal of Biological Control, 25(3), 165–181. https://doi.org/10.18311/jbc/2011/3716; Pedraza, L. (2022). Genomic comparative reveal that biocontroler strain IBUN 2755 is a Bacillus velezensis 2755 asociated with plants. In preparation.; Pedraza, L. A., Bautista, J., & Uribe-Vélez, D. (2018). Seed-born burkholderia glumae infects rice seedling and maintains bacterial population during vegetative and reproductive growth stage. Plant Pathology Journal, 34(5), 393–402. https://doi.org/10.5423/PPJ.OA.02.2018.0030; Pedraza, L. A., López, C. E., & Uribe-Vélez, D. (2020). Mechanisms of action of bacillus spp. (bacillaceae) against phytopathogenic microorganisms during their interaction with plants. Acta Biologica Colombiana, 25(1), 112–125. https://doi.org/10.15446/abc.v25n1.75045; Pedraza, Luz. 2022. “Genomic Comparative Reveal That Biocontroler Strain IBUN 2755 Is a Bacillus Velezensis 2755 Asociated with Plants. In Preparation.”; Pedraza-Herrera, L. A., Bautista, J. P., Cruz-Ramírez, C. A., & Uribe-Vélez, D. (2021). IBUN2755 Bacillus strain controls seedling root and bacterial panicle blight caused by Burkholderia glumae. Biological Control, 153, 104494. https://doi.org/10.1016/j.biocontrol.2020.104494; Peixoto, C. N., Ottoni, G., Filippi, M. C. C., Silva-Lobo, V. L., & Prabhu, A. S. (2013). Biology of Gaeumannomyces graminis var. graminis isolates from rice and grasses and epidemiological aspects of crown sheath rot of rice. Tropical Plant Pathology, 38(6), 495–504. https://doi.org/10.1590/s1982-56762013000600005; Pellegrini, M., Pagnani, G., Bernardi, M., Mattedi, A., Spera, D. M., & Del Gallo, M. (2020). Cell-free supernatants of plant growth-promoting bacteria: A review of their use as biostimulant and microbial biocontrol agents in sustainable agriculture. Sustainability (Switzerland), 12(23), 1–22. https://doi.org/10.3390/su12239917; Perez C, C., & Saavedra, E. (2018). Avances en el manejo integrado de la bacteria burkholderia glumae en el cultivo de arroz en el caribe colombiano. Revista Colombiana de Ciencia Animal - RECIA, 3(1), 111. https://doi.org/10.24188/recia.v3.n1.2011.344; Phulpoto, Irfan Ali et al. 2020. “Production and Characterization of Surfactin-like Biosurfactant Produced by Novel Strain Bacillus Nealsonii S2MT and It’s Potential for Oil Contaminated Soil Remediation.” Microbial Cell Factories 19(1).; Pigrau, C., & Almirante, B. (2009). Oxazolidinones, glycopeptides and cyclic lipopeptides. Enfermedades Infecciosas y Microbiologia Clinica, 27(4), 236–246. https://doi.org/10.1016/j.eimc.2009.02.004; Pluskal, Tomáš, Sandra Castillo, Alejandro Villar-Briones, and Matej Orešič. 2010. “MZmine 2: Modular Framework for Processing, Visualizing, and Analyzing Mass Spectrometry-Based Molecular Profile Data.” BMC Bioinformatics 11.; Prabhu, A., & Filippi, M. (2002). OCORRÊNCIA DO MAL-DO-PÉ CAUSADO POR Gaeumannomyces graminis var . Fitopatologia Brasileira, 27(4), 417–419.; Prado, G. A., Correa, F., Aricapa, M. G., & Escobar, F. (2001). Caracterización preliminar de la resistencia de germoplasma de arroz al añublo de la vaina (Rhizoctonia solani Kuhn). 7(1), 8–11.; Qin, Tianzhu, Lamia Goual, and Mohammad Piri. 2019. “Synergistic Effects of Surfactant Mixtures on the Displacement of Nonaqueous Phase Liquids in Porous Media.” Colloids and Surfaces A: Physicochemical and Engineering Aspects 582.; Quinn, Robert A et al. 2017. “Molecular Networking As a Drug Discovery , Drug Metabolism , and Precision Medicine Strategy.” Trends in Pharmacological Sciences 38(2): 143–54. http://dx.doi.org/10.1016/j.tips.2016.10.011.; Raaijmakers, J. M., Bruijn, I. De, & Kock, M. J. D. De. (2006). Cyclic Lipopeptide Production by Plant-Associated Pseudomonas spp .: Diversity , Activity , Biosynthesis , and Regulation. 19(7), 699–710.; Raaijmakers, J. M., Bruijn, I. De, Nybroe, O., & Ongena, M. (2010). Natural functions of lipopeptides from Bacillus and Pseudomonas : more than surfactants and antibiotics. https://doi.org/10.1111/j.1574-6976.2010.00221.x; Rabbee, M. F., Sarafat Ali, M., Choi, J., Hwang, B. S., Jeong, S. C., & Baek, K. hyun. (2019). Bacillus velezensis: A valuable member of bioactive molecules within plant microbiomes. Molecules, 1–13. https://doi.org/10.3390/molecules24061046; Rabbee, Muhammad Fazle et al. 2019. “Bacillus Velezensis: A Valuable Member of Bioactive Molecules within Plant Microbiomes.” Molecules: 1–13.; Rahman, Faisal bin, Bishajit Sarkar, Ripa Moni, and Mohammad Shahedur Rahman. 2021. “Molecular Genetics of Surfactin and Its Effects on Different Sub-Populations of Bacillus Subtilis.” Biotechnology Reports 32.; Raj, A., Kumar, A., & Dames, J. F. (2021). Tapping the Role of Microbial Biosurfactants in Pesticide Remediation: An Eco-Friendly Approach for Environmental Sustainability. Frontiers in Microbiology, 12(December). https://doi.org/10.3389/fmicb.2021.791723; Ramírez, J. M., Gómez, D., & Becerra, A. (2014). Efectos sobre bienestar y pobreza de la política comercial agrícola : el caso del arroz en Colombia. 63, 60.; Ramos-Molina, L. M., Chavarro-Mesa, E., Pereira, D. A. dos S., Silva-Herrera, M. del R., & Ceresini, P. C. (2016). Rhizoctonia solani AG-1 IA infects both rice and signalgrass in the Colombian Llanos. Pesquisa Agropecuária Tropical, 46(1), 65–71. https://doi.org/10.1590/1983-40632016v4638696; Rani, A., Saini, K. C., Bast, F., Varjani, S., Mehariya, S., Bhatia, S. K., Sharma, N., & Funk, C. (2021). A review on microbial products and their perspective application as antimicrobial agents. Biomolecules, 11(12). https://doi.org/10.3390/biom11121860; Rivera, M. V, & Gómez, L. C. (2012). Identificación y patogenicidad de Fusarium spp y Rhizoctonia solan i en cultivos de arroz del Cesar . Identification and pathogenicity of Fusarium spp and Rhizoctonia solani in rice crops of Cesar . Revista Colombiana de Microbiología, 2(2), 63–68.; Rives, N., Acebo, Y., & Hernández, A. (2007). BACTERIAS PROMOTORAS DEL CRECIMIENTO VEGETAL EN EL CULTIVO DEL ARROZ (Oryza sativa L.). PERSPECTIVAS DE SU USO EN CUBA. Cultivos Tropicales, 28(2), 29–38.; Romero-Rodríguez, A., Maldonado-Carmona, N., Ruiz-Villafán, B., Koirala, N., Rocha, D., & Sánchez, S. (2018). Interplay between carbon, nitrogen, and phosphate utilization in the control of secondary metabolite production in Streptomyces. Antonie van Leeuwenhoek, International Journal of General and Molecular Microbiology, 111(5), 761–781. https://doi.org/10.1007/s10482-018-1073-1; Ruiz, B., Chávez, A., Forero, A., García-Huante, Y., Romero, A., Snchez, M., Rocha, D., Snchez, B., Rodríguez-Sanoja, R., Sánchez, S., & Langley, E. (2010). Production of microbial secondary metabolites: Regulation by the carbon source. Critical Reviews in Microbiology, 36(2), 146–167. https://doi.org/10.3109/10408410903489576; Ruiz, Beatriz et al. 2010. “Production of Microbial Secondary Metabolites: Regulation by the Carbon Source.” Critical Reviews in Microbiology 36(2): 146–67.; Ruiz-Villafán, B., Cruz-Bautista, R., Manzo-Ruiz, M., Passari, A. K., Villarreal-Gómez, K., Rodríguez-Sanoja, R., & Sánchez, S. (2021). Carbon catabolite regulation of secondary metabolite formation, an old but not well-established regulatory system. Microbial Biotechnology, 0, 1–15. https://doi.org/10.1111/1751-7915.13791; Saggese, A., De Luca, Y., Baccigalupi, L., & Ricca, E. (2022). An antimicrobial peptide specifically active against Listeria monocytogenes is secreted by Bacillus pumilus SF214. BMC Microbiology, 22(1), 1–11. https://doi.org/10.1186/s12866-021-02422-9; Sánchez, Sergio et al. 2010. “Carbon Source Regulation of Antibiotic Production.” Journal of Antibiotics 63(8): 442–59.; Sansinenea, E., & Ortiz, A. (2011). Secondary metabolites of soil Bacillus spp . 1523–1538. https://doi.org/10.1007/s10529-011-0617-5; Sarwar, Ambrin et al. 2018. “Biocontrol Activity of Surfactin A Purified from Bacillus NH-100 and NH-217 against Rice Bakanae Disease.” Microbiological Research 209: 1–13.; Savary, S., Ficke, A., Aubertot, J. N., & Hollier, C. (2012). Crop losses due to diseases and their implications for global food production losses and food security. Food Security, 4(4), 519–537. https://doi.org/10.1007/s12571-012-0200-5; Sayler, R. J., Cartwright, R. D., & Yang, Y. (2006). Genetic characterization and real-time PCR detection of Burkholderia glumae, a newly emerging bacterial pathogen of rice in the United States. Plant Disease, 90(5), 603–610. https://doi.org/10.1094/PD-90-0603; Seydlová, Gabriela, and Jaroslava Svobodová. 2008. “Review of Surfactin Chemical Properties and the Potential Biomedical Applications.” Central European Journal of Medicine 3(2): 123–33.; Shafi, J., Tian, H., & Ji, M. (2017). 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