Inoculación con bacterias promotoras de crecimiento vegetal en tomate bajo condiciones de invernadero
| dc.audience | Investigador | |
| dc.coverage | C.I Tibaitatá | |
| dc.coverage | Colombia | |
| dc.creator | Sánchez López, Diana Beatriz | |
| dc.creator | Gómez Vargas, Ruth Milena | |
| dc.creator | Garrido Rubiano, María Fernanda | |
| dc.creator | Bonilla Buitrago, Ruth Rebeca | |
| dc.date | 2025-06-03T17:02:08Z | |
| dc.date | 2025-06-03T17:02:08Z | |
| dc.date | 2012-08 | |
| dc.date | 2012 | |
| dc.date.accessioned | 2026-06-27T04:35:55Z | |
| dc.description | El incremento en la población mundial ha aumentado la demanda de alimentos y así mismo la demanda de fertilizantes químicos los cuales no sólo son costosos sino también contaminantes. El objetivo de este trabajo fue evaluar el efecto de la aplicación de varias cepas candidatas a promotoras del crecimiento vegetal sobre el crecimiento y producción del cultivo del tomate. El estudio se realizó en 2010, en el Centro de Investigación Tibaitatá (Corpoica) ubicado en Mosquera (Cundinamarca- Colombia). Se emplearon las cepas TVL-1 y TVL-2 que se encuentran identificadas como Enterobacter sp., además las cepas Pseudomonas sp. PSO13, PSO14, y Bacillus sp. BEOO2 y BEOO3. Los resultados demostraron la capacidad intrínseca de las cepas para solubilizar una fuente de fósforo poco soluble donde la utilización de las cepas TVL-1, TVL-2 y PSO14 evidenciaron los mejores resultados. Las cepas TVL-1, TVL-2 y PSO13 presentaron actividad fosfatasa. Adicionalmente, las bacterias fueron capaces de producir índoles y sideróforos bajo las condiciones evaluadas. El experimento en invernadero evidenció que las cepas TVL-2 y PSO14 incrementaron de manera significativa la biomasa y desarrollo de la planta (p< 0.05) así como el rendimiento en la producción de frutos lo que se puede asociar a las capacidades bioquímicas asociadas a promoción de crecimiento vegetal evaluadas en el laboratorio. | |
| dc.description | Tomate | |
| dc.description | Solanum lycopersicum | |
| dc.format | application/pdf | |
| dc.format | application/pdf | |
| dc.identifier | https://www.scielo.org.mx/scielo.php?script=sci_abstract&pid=S2007-09342012000700009&lng=es&nrm=iso&tlng=es | |
| dc.identifier | 2007-0934 | |
| dc.identifier | http://hdl.handle.net/20.500.12324/40969 | |
| dc.identifier | reponame:Biblioteca Digital Agropecuaria de Colombia | |
| dc.identifier | instname:Corporación colombiana de investigación agropecuaria AGROSAVIA | |
| dc.identifier.uri | http://hdl.handle.net/123456789/32595 | |
| dc.language | spa | |
| dc.publisher | SciELO | |
| dc.relation | Revista mexicana de ciencias agrícolas | |
| dc.relation | 3 | |
| dc.relation | 7 | |
| dc.relation | 1401 | |
| dc.relation | 1415 | |
| dc.relation | Ali, B.; Sabri, A.; Ljung, K. and Hasnain, S. 2009. Quantification of indole-3-acetic acid from plant associated Bacillus spp. and their phytostimulatory effect on Vigna radiata (L.). World J. Microbiol. Biotechnol. 25(3):519-526. | |
| dc.relation | Alikhani, H.; Saleh-Rastin, N. and Antoun, H. 2006. Phosphate solubilization activity of rhizobia native to Iranian soils. Plant Soil. 287:35-14. | |
| dc.relation | Antoun, H. and Prevost, D. 2005. Ecology of plant growth promoting rhizobacteria. In: Siddiqui, Z. A. (Ed.). PGPR: Biocontrol and Biofertilization. Springer. 1-38 pp. | |
| dc.relation | Ashrafuzzaman, M.; Islam, M.; Ismail, M.; Shahidullah, S. and Hanafi, M. 2009. Evaluation of six aromatic rice varieties for yield and yield contributing characters. Int. J. Agric. Biol. 11:616-620. | |
| dc.relation | Badri, D.; Weir, T.; van der Lelie, D. and Vivanco, J. 2009. Rhizosphere chemical dialogues:plant–microbe interactions. Curr. Opin. Biotechnol. 20:642-650. | |
| dc.relation | Chen, Y.; Rekha, P.; Arun, F.; Schen, W.; Lai, C. and Young, C. 2006. Phosphate solubilizing bacteria from subtropical soil and their tricalcium phosphate solubilizing abilities. Appl. Soil Ecol. 34:33-41. | |
| dc.relation | Fernández, M. 2007. Sobre los de la caña de azúcar. Red de Revistas Científicas de América Latina. CIDCA. El Caribe, Portugal. 41(2):51-57. | |
| dc.relation | Fiske, C. and subbaRow, Y. 1925.The colorimetric determination of phosphorus. J. Biol. Chem. 66:375. | |
| dc.relation | Gupta, N.; Sabat, J.; Parida, R. and Kerkatta, D. 2007. Solubilization of tricalcium phosphate and rock phosphate by microbes isolated from chromite, iron and manganese mines. Acta Botánica. 66(2):197-204. | |
| dc.relation | Gagné, S.; Dehbi, L.; Le Queré, D.; Cayer, F.; Morin, J.; Lemay, R. and Foumier, N. 1993. Increase of greenhouse tomato fruit yields by plant growth-promoting rhizobacteria (PGPR) inoculated into the peat-based growing media. Soil Biol. Biochem. 25(2):269-272. | |
| dc.relation | Glickman, E. and Dessaux, Y. 1995. A Critical examination of the specificity of the salkowsky reagent for indolic compounds produced by phytopathogenic bacteria. Appl. Environ. Microbiol. 61(2):793-796. | |
| dc.relation | Gravel, V.; Martínez, C.; Antoun, H. and Tweddell, R. 2006. Control of greenhouse tomato root rot (Pythium ultimum) in hydroponic systems. using plantgrowth-promoting microorganisms. J. Plant Pathol. 28:475-483. | |
| dc.relation | Gravel, V; Antoun, H and Tweddell, R. 2007. Growth stimulation and fruit yield improvement of greenhouse tomato plants by inoculation with Pseudomonas putida or Trichoderma atroviride: possible role of índole acetic acid (IAA). Soil Biol. Biochem. 39:1968-1977. | |
| dc.relation | Gunnarsson, N.; Mortensen, U.; Sosio, M.; Nielsen, J. 2004. Identification of the enther- doudoroff pathway in an antibiotic- producing actinomicetes species. Mol. Microbiol. 2(3):895-92. | |
| dc.relation | Hariprasad, P.; Navya, H.; Chandra, S. and Niranjana, S. 2009. Advantage of using PSIRB over PSRB and IRB to improve plant health of tomato. Biological Control. 50:307-316. | |
| dc.relation | Jaramillo, N.; Rodríguez, P.; Guzmán, A. y Zapata, C. 2007. Manual técnico buenas prácticas agrícolas (BPA) en la producción de tomate bajo condiciones protegidas. Corpoica. Ed. CTP Print Ltda. 314 p. | |
| dc.relation | Kang, S.; Hat, C.; Lee, T. and Maheshwari, D. 2002. Solubilization of insoluble inorganic phosphates by a soil-inhabiting fungus Fomitopsis sp. PS 102. Curr. Sci. 82:439-442. | |
| dc.relation | Kirankumar, R.; Jagadeesh, K.; Krishnaraj, P. and Patil, M. 2008. Enhanced growth promotion of tomato and nutrient uptake by plant growth promoting rhizobacterial isolates in presence of tobacco mosaic virus pathogen. Karnataka J. Agric. Sci. 21:309-311. | |
| dc.relation | Kumar-Mishra, R.; Prakash, O.; Alam, M. and Dikshit, A. 2010. Influence of plant growth promoting rhizobacteria (PGPR) on the productivity of Pelargonium graveolens L. Herit. Recent Res. Sci. Technol. 2(5):53-57. | |
| dc.relation | Luna, M.; Aprea, J.; Crespo, J. and Boiardi, J. 2011. Colonization and yield promotion of tomato by gluconacetobacter diazotrophicus. Appl. Soil Ecol. doi:10.1016/j.apsoil.2011.09.002. | |
| dc.relation | Ma, Y.; Prassad, M.; Rajkumar, M. and Freitas, H. 2011. Plant growth promoting rhizobacteria and endophytes accelerate phytoremediation of metalliferous soils. Biotechnol. Advances. 29:248-258. | |
| dc.relation | Mejía, M.; Estrada, E. y Franco, M. 2007. Respuesta del tomate chonto cultivar Unapal Maravilla, a diferentes concentraciones de nutrientes. Acta Agronómica. 56(2):75-83. | |
| dc.relation | Mena, H. and Olalde, V. 2007. Alteration of tomato fruit quality by root inoculation with plant growthpromoting rhizobacteria (PGPR): Bacillus subtilis BEB-13bs. Sci. Hortic. 113:103-106. | |
| dc.relation | Park, J.; Bolanab, N.; Mallavarapuab, M. and Naiduab, R. 2010. Enhancing the solubility of insoluble phosphorus compounds by phosphate solubilizing bacteria. World Congress of Soil Science. Soil Solutions for a Changing World Brisbane. Published on DVD. 66:1-6. | |
| dc.relation | Patten, C. and Glick, B. 2002. Role of Pseudomonas putida indoleacetic acid in development of the host plant root system. Appl. Environ. Microbiol. 68:3795-3801. | |
| dc.relation | Pérez, M. y Smyth, T. 2005. Potencial agronómico y eficiencia agronómica de tres rocas fosfóricas de diferente composición mineralógica. Revista de la Facultad de Agronomía Universidad del Zulia. Venezuela. 22:214-227. | |
| dc.relation | Rodríguez, H and Fraga, R. 1999. Phosphate solubilizing bacteria and their role in plant growth promotion. Biotechnol. Advances. 17:319-339. | |
| dc.relation | Rodríguez, H; González, T; Goire, I and Bashan, Y. 2004. Gluconic acid production and phosphate solubilization by the plant growth-promoting bacterium Azospirillum spp. Naturwissenschaften. 91:552-555. | |
| dc.relation | Schwyn, B. and Neilands, J. 1987. Universal che- mical assays for the detection and determination of siderophores. Analy. Biochem.160:47-56. | |
| dc.relation | Seshadri, S; Ignacimuthu, S. and Lakshminarsimhan, C. 2002. Variation of heterotrophic and phosphate solubilizing bacteria from Chennai.Southeast coast of India. Indian J. Marine Sci.31:69-72. | |
| dc.relation | Sharma, V; Archana, G. y Kumar, G. 2011. Plasmid load adversely affects growth and gluconic acid secretion ability of mineral phosphate solubilizing rhizospheric bacterium Enterobacter asburiae PSI3 under P limited conditions. Microbiol. Res. 166:36-46. | |
| dc.relation | Srivastava, A. and Handa, A. 2005. Hormonal regulation of tomato fruit development: a molecular perspective. J. Plant Growth Regulation. 24:6-82. | |
| dc.relation | Tabatabai, M. and Bremner. M. 1969. Use of p-nitophenylphosphate for assay of soil phosphatise activitiy. Soil Biol. Biochem. 1:301-307. | |
| dc.relation | Yu, X.; Liu, X.; Zhu, T.; Liu, H. and Mao, C. 2011.Isolation and characterization of phosphate-solubilizing bacteria from walnut and their effect on growth and phosphorus mobilization. Biol. Fertility Soils. 47:43-446. | |
| dc.relation | Vassilev, N.; Toro, M.; Vassileva, M.; Azcon, R. and Barea, J. M. 1997. Rock phosphate solubilization by immobilized cells of Enterobacter sp. in fermentation and soil conditions. Bio. Technol. 61(1):29-32. | |
| dc.relation | Vassilev, N.; Medina, A. and Vassileva, M. 2006. Microbial solubilization of rock phosphate on media containing agro-industrial wastes and effect of the resulting products on plant growth and P uptake. Plant Soil. 287:77-84. | |
| dc.rights | Atribución-NoComercial-CompartirIgual 4.0 Internacional | |
| dc.rights | http://creativecommons.org/licenses/by-nc-sa/4.0/ | |
| dc.source | Revista Mexicana de Ciencias Agrícolas; Vol. 3, Núm. 7 (2012): Revista Mexicana de Ciencias Agrícolas (Ago.);p. 1401-1415. | |
| dc.subject | Cultivo - F01 | |
| dc.subject | Biofertilizante | |
| dc.subject | Tomate | |
| dc.subject | Invernadero | |
| dc.subject | Crecimiento de planta | |
| dc.subject | Hortalizas y plantas aromáticas | |
| dc.subject | http://aims.fao.org/aos/agrovoc/c_24975 | |
| dc.subject | http://aims.fao.org/aos/agrovoc/c_7805 | |
| dc.subject | http://aims.fao.org/aos/agrovoc/c_3379 | |
| dc.subject | http://aims.fao.org/aos/agrovoc/c_08842b17 | |
| dc.thumbnail | https://repository.agrosavia.co/bitstreams/7bb57492-00c8-454c-9eed-d87b1c05f23f/download | |
| dc.title | Inoculación con bacterias promotoras de crecimiento vegetal en tomate bajo condiciones de invernadero | |
| dc.title | Inoculation with plant growth promoting bacteria on tomato under greenhouse conditions | |
| dc.type | Artículo científico |
