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dc.contributor.authorHernández Quiñónez, José Alirio
dc.contributor.authorSALAZAR MERCADO, SEIR ANTONIO
dc.contributor.authorRodriguez Araujo, Edgar
dc.date.accessioned2021-11-11T20:16:25Z
dc.date.available2021-11-11T20:16:25Z
dc.date.issued2021-03-18
dc.identifier.urihttp://repositorio.ufps.edu.co/handle/ufps/904
dc.description.abstractEsta investigación evaluó la aplicación de fertilizantes que contenían elementos menores como mejoradores de la calidad molinera del arroz (Oryza sativa L.) en un suelo clasificado como Typic Xerofluvents. Se valoró un área de 2,5 ha, divididas en cuatro piscinas cultivadas con arroz variedad Fedearroz 2000. Se utilizó un diseño de bloques completos al azar con cinco tratamientos y cuatro repeticiones. Las variables de producción evaluadas fueron: densidad de plantas (46,27 ± 320 plantas/m2), macollamiento (59,48 ± 821,26 macollas/m2), número panículas/área (8,53 ± 440 panículas/m2), número espiguillas/panícula (2,76 ± 12,3 espiguillas/panícula), número de granos totales (15,44 ± 138,77 granos), número de granos llenos (7,88 ± 116 granos) y número de granos vanos (19,88 ± 22,28 granos). Para evaluar el componente de molinería se utilizaron 500 gramos de granos y se valoraron las siguientes variables: porcentaje de vaneamiento (15,24 ± 18,48), masa blanca (70,57 ± 70,68), grano entero (446,9 ± 59,65), cristal (176,93 ± 25,24 %), harina (79 ± 12,82), cáscara (7,89 ± 20,85) y grano yesado (82,08 ± 2,08). Para determinar el rendimiento (37,19 ± 7.689 Kg/ha) se cosechó y se pesó cada tratamiento por separado. Se presentaron diferencias significativas (p < 0,0001) entre los tratamientos, siendo T2 (fertilización tradicional de NPK + fertilización edáfica con elementos menores) el que presentó mejor comportamiento entre variables de producción, mientras que T5 (fertilización tradicional de NPK + fertilización foliar con elementos menores + fertilización foliar con silicio) reportó las mejores variables de molinería. La fertilización con elementos menores contribuye a mejorar la calidad molinera y el rendimiento del arroz, puesto que fortalece el sistema inmune de la planta, combate agentes bióticos y evita los granos vacíos.spa
dc.description.abstractThe research evaluated the application of fertilizers containing minor elements as milling quality improvers of rice (Oryza sativa L) in Typic Xerofluvents soils. We assessed an area of 2.5 ha divided into four ponds and cultivated with Fedearroz 2000 rice variety. A randomized complete block design with five treatments and four replications was used. The production variables evaluated were: plant density (46.27 ± 320 plants/m2 ), tillering (59.48 ± 821.26 tillers/m2 ), number of panicles/area (8.53 ± 440 panicles/m2 ), number of spikelets/panicle (2.76 ± 12.3 spikelets/panicle), number of total grains (15.44 ± 138.77 grains), number of filled grains (7.88 ± 116 grains), and number of vain grains (19.88 ± 22.28 grains). 500 grams of kernels were used to evaluate the milling component, assessing the following variables: percentage of spike sterility (15.24 ± 18.48), white mass (70.57 ±70.68), whole grain (446.9 ± 59.65), crystal (176.93 ± 25.24%), flour (79 ± 12.82), husk (7.89 ± 20.85), and plaster grain (82.08 ± 2.08). Each treatment was harvested and weighed separately in order to determine yield (37.19 ± 7,689 kg/ ha). There were significant differences (p < 0.0001) among the treatments, with T2 (traditional npk fertilization + soil fertilization with minor elements) showing the best performance among production variables and T5 among milling variables (traditional npk fertilization + foliar fertilization with minor elements + foliar fertilization with silicon). Fertilization with minor elements improves milling quality and rice yield by strengthening the plant’s immune system, thus combating biotic agents and avoiding empty grains.eng
dc.format.mimetypeapplication/pdfspa
dc.language.isospaspa
dc.publisherMutisspa
dc.relation.ispartofMutis
dc.rightsMUTIS, Journal of the Faculty of Sciences and Engineering, Jorge Tadeo Lozano University, is licensed under the Creative Commons 4.0: Attribution - Noncommercial - No Derivative Workseng
dc.sourcehttps://revistas.utadeo.edu.co/index.php/mutis/article/view/1711spa
dc.titleEfecto de los elementos menores en la calidad molinera del arroz (Oryza sativa L.) variedad F-2000eng
dc.typeArtículo de revistaspa
dcterms.referencesAbubakar, B., Yakasai, H. M., Zawawi, N., & Ismail, M. (2018). Compositional analyses of white, brown and germinated forms of popular Malaysian rice to offer insight into the growing diet-related diseases. Journal of Food and Drug Analysis, 26(2),706-715. https://doi.org/10.1016/j. jfda.2017.06.010spa
dcterms.referencesAhmad, W., Niaz, N., Kanwal, S., & Khalid, M. (2009). Role of boron in plant growth: A review. J Agric Res., 47(3), 329-338.spa
dcterms.referencesAlamdari, M., & Mobasser, H. (2014). The effect of macro and micro-nutrient fertilizers on yield and yield attributes of rice in a calcareous soil. American Journal of Experimental Agriculture, 4(12), 1604-1615. https://doi.org/10.9734/ ajea/2014/3536spa
dcterms.referencesAlshaal, T., & El-Ramady, H. (2017). Foliar Application: from Plant Nutrition to Biofortification. The Environment, Biodiversity & Soil Security, 1, 71-83. https://doi.org/10.21608/jenvbs.2017.1089.1006spa
dcterms.referencesÁlvarez, J., Daza, M., & Mendoza, C. (2008). Aplicación de un fertilizante enriquecido con silicio y materia orgánica en arroz (Oryza sativa L) cultivado en Ibagué y el Guamo (Tolima, Colombia). Revista Facultad Nacional Agronomía Medellín, 61(2), 4605-4617spa
dcterms.referencesAshrafi, E., Pirdashti, H., & Niknejhad, Y. (2014). Effect of iron, zinc and silicon application on quantitative parameters of rice (Oryza Sativa L. CV. Tarom Mahalli). Intl J Farm & Alli Sci., 3(5), 529-533.spa
dcterms.referencesBalindong, J. L., Ward, R. M., Liu, L., Rose, T. J., Pallas, L. A., Ovenden, B. W., Snell, P. J., & Waters, D. L. (2018). Rice grain protein composition influences instrumental measures of rice cooking and eating quality. Rev. Cereal, 79(18), 35-42. https://doi. org/10.1016/j.jcs.2017.09.008spa
dcterms.referencesBarona, E. (2010). Importancia de la semilla de arroz. Arroz, 58(489), 15-21.spa
dcterms.referencesBashir, K., Takahashi, R., Nakanishi, H., & Nishizawa, N. (2013). The road to micronutrient biofortification of rice: Progress and prospects. Frontiers in Plant Science, 4(15), 1-7. https://doi. org/10.3389/fpls.2013.00015spa
dcterms.referencesBotta, G. F., Tolón-Becerra, A., Lastra-Bravo, X., Hidalgo, R., Rivero, D., & Agnes, D. (2015). Alternatives for handling rice (Oryza sativa L.) straw to favor its decomposition in direct sowing systems and their incidence on soil compaction. Geoderma, 239-240, 213-222. https://doi. org/10.1016/j.geoderma.2014.10.021spa
dcterms.referencesBouis, H., & Saltzman, A. (2017). Improving nutrition through biofortification: A review of evidence from HarvestPlus, 2003 through 2016. Global Food Security, 12, 49-58. https://doi. org/10.1016/j.gfs.2017.01.009spa
dcterms.referencesCakmak, I., & Kutman, U. (2017). Agronomic biofortification of cereals with zinc: A review. European Journal of Soil Science, 69(1), 172-180. https://doi.org/10.1111/ejss.12437spa
dcterms.referencesDas, J., Salam, R., Kumar, R., & Bhutta, Z. (2013). Micronutrient fortification of food and its impact on woman and child health: A systematic review. Systematic Reviews, 2, 67. https://doi. org/10.1186/2046-4053-2-67spa
dcterms.referencesDomínguez, A., & Muñoz, O. (2012). Evaluación de la calidad molinera y dimensiones de los granos de dos variedades de arroz y sus varietales de arroz maleza. Rev. Agronomía Tropical Argentina, 2(12), 5-6.spa
dcterms.referencesDutta, S., Das, S., Pale, G., Iangrai, B., Aochen, C., Rai, M., & Pattanayak, A. (2016). Current status and future prospects of research on genetically modified rice: A review. Agricultural Reviews, 37(1), 10-18. https://doi.org/10.18805/ ar.v37i1.9259spa
dcterms.referencesFairhurst, T. H., & Witt, C. (2002). Guía práctica para el manejo de nutrientes. Postash & Phosphate Institute (ppi), Potash & Phosphate Institute of Canada (ppic), & International Rice Research Institute (irri).spa
dcterms.referencesFood and Agriculture Organization of the United Nations [fao]. (2009). Global agriculture towards 2050: High Level Expert Forum - How to Feed the World in 2050. fao http://www.fao.org/ fileadmin/templates/wsfs/docs/Issues_papers/ HLEF2050_Global_Agriculture.pdfspa
dcterms.referencesFood and Agriculture Organization of the United Nations [fao]. (2014). A regional rice strategy for sustainable food security in Asia and the Pacific. fao.spa
dcterms.referencesGnanamanickam, S. (2009). Rice and its importance to human life. Prog Biol Con., 8, 1-11. https://doi. org/10.1007/978-90-481-2465-7_1spa
dcterms.referencesGuillermo, S., Acosta, C., Cleva, M., & Gonzáles, A. (2012). Sistema de control de calidad de granos de arroz pulidos empleando visión por computadora. xiv Workshop de Investigadores en Ciencias de la Computación. Universidad Nacional de Misiones. http://sedici.unlp. edu.ar/bitstream/handle/10915/18840/ Sistema+de+control+de+calidad+de+granos+de +arroz+pulidos.pdf;jsessionid=69E2259FFC4A7D6F3899E8F1ED4D7C7E?sequence=1spa
dcterms.referencesHafeez, B., Khanif, Y., & Saleem, M. (2013). Role of zinc in plant nutrition. A review. American Journal of Experimental Agriculture, 3(2), 374-391. https://doi.org/10.9734/AJEA/2013/2746spa
dcterms.referencesHansch, R., & Mendel, R. (2009). Physiological functions of mineral micronutrients (Cu, Zn, Mn, Fe, Ni, Mo, B, Cl). Current Opinion in Plant Biology, 12, 259-266. https://doi.org/10.1016/j. pbi.2009.05.006spa
dcterms.referencesHernández-Rodríguez, A., Rives-Rodríguez, N., Acebo-Guerrero, Y., Diaz-de-la-Osa, A., Heydrich-Pérez, M., & Divan-Baldani, L. (2014). Potencialidades de las bacterias diazotróficas asociativas en la promoción del crecimiento vegetal y el control de Pyricularia oryzae (Sacc.) en el cultivo del arroz (Oryza sativa L.) Revista de Protección Vegetal, 29(1), 1-10.spa
dcterms.referencesInternational Food Policy Research Institute [ifpri]. (2014). Global nutrition report 2014: Actions and accountability to accelerate the world’s progress on nutrition. ifpri. https://doi. org/10.2499/9780896295803spa
dcterms.referencesJin, Z., Minyan, W., Lianghuan, W., Jiangguo, W., & Chunhai, S. (2008). Impacts of combination of foliar iron and boron application on iron biofortification and nutritional quality of rice grain. Journal of Plant Nutrition, 31, 1599-1611. https://doi.org/10.1080/01904160802244803spa
dcterms.referencesJo, G., & Todorov, T. I. (2019). Distribution of nutrient and toxic elements in brown and polished rice. Rev Food Chemistry., 289(2), 360-368. https://doi. org/10.1016/j.foodchem.2019.03.040spa
dcterms.referencesKato, Y., & Katsura, K. (2014). Rice adaptation to aerobic soils: Physiological considerations and implications for agronomy. Plant Production Sc., 17(1), 1-12. https://doi.org/10.1626/pps.17.1spa
dcterms.referencesKumar, S. (2014). Role of micronutrient in rice cultivation and management strategy in organic agriculture. A reappraisal. Agricultural Sciences, 5, 765-769. https://doi.org/10.4236/as.2014.59080spa
dcterms.referencesKumar, D., Singh, Sh., Singh, Sw., Mishra, S., Chauhan, D., & Dubey, N. (2015). Micronutrients and their diverse role in agricultural crops: Advances and future prospective. Acta Physiol Plant., 37, 139. https://doi.org/10.1007/s11738-015-1870-3spa
dcterms.referencesLarios, A., Porcayo, J., & Poggi, H. (2010). Obtención de una harina de pulido de arroz desengrasada con bajo contenido de fibra neutro detergente. Rev. Food Chemistry Colombia, 1(22), 3-5spa
dcterms.referencesLivore, A. (2013). Calidad industrial y culinaria del arroz. idia xxi, 6, 190-194spa
dcterms.referencesMartínez, E., Pinciroli, M., & Vidal, V. (2010). Proteínas de arroz propiedades estructurales y funcionales. Rev Argentina, 2(2),67-69.spa
dcterms.referencesMeena, N., & Fathima, P. (2017). Nutrient uptake of rice as influenced by agronomic biofortification of Zn and Fe under methods of rice cultivation. Int J Pure App Biosci., 5(5), 456-459. https://doi. org/10.18782/2320-7051.3027spa
dcterms.referencesMejía, M. S., & Menjivar, J. C. (2010). Nutrición mineral de arroz. En V. M. Degiovanni-Beltramo, C. P. Martínez-Racines, & F. Motta (eds.). Producción eco-eficiente del arroz en América Latina. Centro Internacional de Agricultura Tropical (ciat).spa
dcterms.referencesMercado, S., Caleño, J., & Rozo, L. (2020). Improvement of the methodology of the tetrazolium test using different pretreatments in seeds of the genus Epidendrum (Orchidaceae). Journal of Seed Science, 42, e202042013. https://doi. org/10.1590/2317-1545v42231028spa
dcterms.referencesMiranda, E., & Ruíz, R. (2015). Análisis proximal de granos de arroz, frijol, maíz y café comercializados en el mercado. Revista Roberto Huembes de Managua, 6(18), 2-9.spa
dcterms.referencesMohanty, S. (2013). Trends in global rice consumption. Rice Today, 12(1), 44-45.spa
dcterms.referencesMuthayya, S., Sugimoto, J., Montgomery, S., & Maberly, G. (2014). An overview of global rice production, supply, trade, and consumption. Ann N. Y. Acad Sci, 1324, 7-14. https://doi. org/10.1111/nyas.12540spa
dcterms.referencesPhattarakul, N., Rerkasem, B., Li, L., Hu, L., Zou, C., Ram, H., Sohu, B., Kang, B., Surek, H., Kalayci, M., Yazici, A., Zhang, F., & Cakmak, I. (2012). Biofortification of rice grain with zinc through zinc fertilization in different countries. Plant Soil, 361, 131-141. https://doi.org/10.1007/ s11104-012-1211-xspa
dcterms.referencesRadhika, K., Hemalatha, S., Maragatham, S., & Praveena, S. (2013). Effect of foliar application of micronutrients on the yield components of rice and soil available micronutrients status. Asian Journal of Soil Science, 8(2), 419-421.spa
dcterms.referencesRamírez, E., Caraballo, R., & Medina, V. (2017). Efecto de la distancia entre plantas y la época de siembra en las características morfológicas de la panícula de la planta de arroz (O. sativa L.). Instituto de Investigaciones del Arroz.spa
dcterms.referencesRives, 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.spa
dcterms.referencesRodríguez-Araujo, E. A., Bolaños-Benavides, M. M., & Menjivar-Flores, J. C. (2010). Efecto de la fertilización en la nutrición y rendimiento de ají (Capsicum spp.) en el Valle del Cauca, Colombia. Acta Agronómica, 59(1), 55- 64. https://www.redalyc.org/articulo. oa?id=1699/169916223005spa
dcterms.referencesRoholla, S., Shahsavari, M., & Rezaei, M. (2011). A general overview on manganese (Mn) importance for crops production. Australian Journal of Basic and Applied Sciences, 5(9), 1799-1803.spa
dcterms.referencesRout, G., & Sahoo, S. (2015). Role of iron in plant growth and metabolism. Reviews in Agricultural Science, 3, 1-24. https://doi.org/10.7831/ras.3.1spa
dcterms.referencesSaha, S., Chakraborty, M., Padhan, D., Saha, B., Murmu, S., Batabyal, K., Seth, A., Hazra, G., Mandal, B., & Bell, R. (2017). Agronomic biofortification of zinc in rice: Influence of cultivars and zinc application methods on grain yield and zinc bioavailability. Field Crops Research, 210, 52-60. https://doi.org/10.1016/j. fcr.2017.05.023spa
dcterms.referencesSalazar, S. A., Botello, H., & Quintero, J. (2020a). Optimización de la prueba de tetrazolio para evaluar la viabilidad en semillas de Solanum lycopersicum L. Ciencia & Tecnología Agropecuaria, 21(3). https://doi.org/10.21930/ rcta.vol21_num3_art:1344spa
dcterms.referencesSalazar, S. A., Quintero, Rojas, J. (2020b). Optimization of the tetrazolium test in three species of orchids of the Andean forest. Australian Journal Crop Sci, 14(5), 822-830. https://doi.org/10.21475/ajcs.20.14.05.p2276spa
dcterms.referencesSalazar-Mercado, S., Quintero-Caleño, Q., & Rojas-Suárez, J. (2020) Determinación de la viabilidad de semillas de Capsicum annuum L. utilizando la prueba de tetrazolio. Aibi Revista Investig Adm Ing., 8(3), 7-12. https://doi. org/10.15649/2346030X.718spa
dcterms.referencesSerraj, R., McNally, K., Slamet, I., Kohli, A., Haefele, S., Atlin, G., & Kumar, A. (2011). Drought resistance improvement in rice: An integrated genetic and resource management strategy. Plant Production Science, 14(1), 1-14. https://doi.org/10.1626/ pps.14.1spa
dcterms.referencesShayganya, J., Peivandya, N., & Ghasemi, S. (2012). Increased yield of direct seeded rice (Oryza sativa L.) by foliar fertilization through multi-component fertilizers. Archives of Agronomy and Soil Science, 58(10), 1091-1098. https://doi.org/10.1080/0365 0340.2011.570336spa
dcterms.referencesSiddika, M., Abedin, M., Sharmin, T., Hanif, M., & Chandra, P. (2016). Effect of different micronutrients on growth and yield of rice. International Journal of Plant and Soil Science, 12(6), 1-8. https://doi.org/10.9734/ IJPSS/2016/28707spa
dcterms.referencesSiebenmorgen, T. (2013). Laboratory measurement of rice milling yield. En J. T. Hardke (ed.), Rice production handbook (pp. 167-173). University of Arkansasspa
dcterms.referencesVirgili, A. (1996). Introducción a la fertilización con microelementos. Welgro Micromix, 1(2), 3-10.spa
dcterms.referencesYamasaki, H., Pilon, M., & Shikanai, T. (2008). How do plants respond to copper deficiency?. Plant Signaling & Behavior, 3(4), 231-232. https://doi. org/10.4161/psb.3.4.5094spa
dcterms.referencesYuan, L., Wu, L., Yang, C., & Lv, Q. (2012). Effects of iron and zinc foliar applications on rice plants and their grain accumulation and grain nutritional quality. J Sci Food Agric., 93(2), 254-261. https:// doi.org/10.1002/jsfa.5749spa
dcterms.referencesYruela, I. (2005). Copper in plants. Braziliam Journal of Plant Physiology, 17(1), 145-156. https://doi. org/10.1590/S1677-04202005000100012spa
dcterms.referencesZhang, C., Zhao, W., Gao, A., Su, T., Wang, Y., Zhang, Y., Zhou, X., & He, X. (2017). How could agronomic biofortification of rice be an alternative strategy with higher cost-effectiveness for human iron and zinc deficiency in China?. Food and Nutrition Bulletin, 39(2), 246-259. https://doi.org/10.1177/0379572117745661spa
dc.identifier.doi10.21789/22561498.1711
dc.relation.citationeditionVol.11 No.1.(2021)spa
dc.relation.citationendpage21spa
dc.relation.citationissue1 (2021)spa
dc.relation.citationstartpage8spa
dc.relation.citationvolume11spa
dc.relation.citesHernández Quiñónez , J. A., Salazar Mercado , S. A., & Rodríguez Araújo , E. A. (2021). Efecto de los elementos menores en la calidad molinera del arroz (Oryza sativa L.) variedad F-2000. Revista Mutis, 11(1), 8-21. https://doi.org/10.21789/22561498.1711
dc.rights.accessrightsinfo:eu-repo/semantics/openAccessspa
dc.rights.creativecommonsAtribución-NoComercial-CompartirIgual 4.0 Internacional (CC BY-NC-SA 4.0)spa
dc.subject.proposalfertilización edáficaspa
dc.subject.proposalfertilización foliarspa
dc.subject.proposalmacollaspa
dc.subject.proposalpanículaspa
dc.subject.proposalgrano entero.spa
dc.subject.proposalSoil fertilizationeng
dc.subject.proposalfoliar fertilizationeng
dc.subject.proposalbuncheng
dc.subject.proposalpanicleeng
dc.subject.proposalwhole grain.eng
dc.title.translatedEffect of Minor Elements on the Milling Quality of F-2000 Rice Variety (Oryza sativa L.)
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