Biorremediación de suelos contaminados con mercurio en el Bajo Cauca Antioqueño

dc.contributor.authorMontes Marín, Natalia Andrea
dc.contributor.authorQuintero, Héctor
dc.contributor.authorVásquez, Ana María
dc.contributor.researchgroupSemilleros de Investigación UNABspa
dc.coverage.campusUNAB Campus Bucaramangaspa
dc.coverage.spatialBucaramanga (Santander, Colombia)spa
dc.coverage.temporal2021spa
dc.date.accessioned2023-11-17T09:00:24Z
dc.date.available2023-11-17T09:00:24Z
dc.date.issued2021-05
dc.description.abstractLa recuperación de suelos contaminados producto de la minería a cielo abierto se ha convertido en un problema para el Estado, las asociaciones mineras y las autoridades ambientales, debido a la difícil eliminación de los metales pesados que quedan en el suelo y a la poca degradación que estos tienen; por ende, se estudiará el resultado de suelos contaminados y con presencia de metales pesados como el mercurio, intervenidos por medio de la biorremediación en sus diferentes aplicaciones, a través de plantas bioacomuladoras que permitan una captación alta de los metales pesados en el suelo, la aplicación de microorganismos y la fitorremediación (buscando a su vez una asociación entre planta-microorganismo). Lo anterior con el fin de evaluar el proceso más efectivo para la disminución o eliminación de metales pesados, obteniendo como resultado un suelo con mejores condiciones físicoquímicas y microbiológicas, con la finalidad de mejorar las condiciones paisajísticas en las zonas afectadas por dicha actividad en el Bajo Cauca antioqueño.spa
dc.description.abstractenglishThe recovery of contaminated soils as a result of open-pit mining has become a problem for the State, mining associations and environmental authorities, due to the difficult elimination of heavy metals that remain in the soil and the little degradation that these have; Therefore, the result of contaminated soils with the presence of heavy metals such as Hg intervened through bioremediation in its different applications will be studied, through bioaccumulator plants that allow a high uptake of heavy metals in the soil, the application of microorganisms and phytoremediation (looking for an association between plant-microorganism); This in order to evaluate the most effective process for the reduction or elimination of heavy metals, obtaining as a result a soil with better physical-chemical and microbiological conditions in order to improve the landscape conditions in the areas affected by said activity in the Bajo Cauca Antioqueño.spa
dc.description.learningmodalityModalidad Presencialspa
dc.format.mimetypeapplication/pdfspa
dc.identifier.instnameinstname:Universidad Autónoma de Bucaramanga - UNABspa
dc.identifier.reponamereponame:Repositorio Institucional UNABspa
dc.identifier.repourlrepourl:https://repository.unab.edu.co
dc.identifier.urihttp://hdl.handle.net/20.500.12749/22819
dc.language.isospaspa
dc.publisher.facultyFacultad Estudios Técnicos y Tecnológicosspa
dc.publisher.grantorUniversidad Autónoma de Bucaramanga UNABspa
dc.relation.referencesMoreno, F. N., Anderson, C. W. N., Stewart, R. B., & Robinson, B. H. (2005). Mercury volatilization and phytoextraction from base-metal mine tailings. Environmental Pollution, 136(2), 341–352; 2004.11.020spa
dc.relation.referencesO’Connor, D., Peng, T., Li, G., Wang, S., Duan, L., Mulder, J., Cornelissen, G., Cheng, Z., Yang, S., & Hou, D. (2018). Sulfur-modified rice husk biochar: A green method for the remediation of mercury contaminated soil. Science of the Total Environment, 621, 819-826. https://doi.org/10.1016/j.scitotenv.2017.11.213spa
dc.relation.referencesOrtega, M. (2014). Niveles de plomo y mercurio en muestras de carne de pescado importado y local. Pediatría, 47(3), 51–54. doi:10.1016/s0120-4912(15)30135-xspa
dc.relation.referencesIbarra C., Ruiz C., González E., Flores G. y Díaz P.; pH SPATIAL DISTRIBUTION IN AGRICULTURAL SOILS OF ZAPOPAN, JALISCO, MEXICO; Agricultura Técnica en México; Vol. 35; Núm.3; 2009; p. 267-276spa
dc.relation.referencesVásquez P., Macías V. y Menjivar F.; Formas de hierro y aluminio en suelos con diferentes usos en la zona norte del departamento del Magdalena, Colombia; 1 Universidad del Magdalena; Acta Agronómica. 63 (4) 2014, p 352-360spa
dc.relation.referencesGrimaldi, M., Guédron, S., & Grimaldi, C. (2015). Impact of gold mining on mercury contamination and soil degradation in Amazonian ecosystems of French Guiana. Land-use change impacts on soil processes-tropical and Savannah ecosystems. Boston: Cab International, 95-106.spa
dc.relation.referencesLiu, P., Qiu, G. L., & Shang, L. H. (2007). Phytoremediation of mercury contaminated soil: A review [J]. Chinese Journal of Ecology, 6, 27.spa
dc.relation.referencesFiqri, A., Utomo, W. H., & Handayanto, E. (2016). Effect of arbuscular mycorrhizal fungi on the potential of three wild plant species for phytoextraction of mercury from small-scale gold mine tailings. Journal of Degraded and Mining Lands Management, 3(3), 551.spa
dc.relation.referencesZarei, M., Jahandideh Mahjen Abadi, V. A., & Teixeira da Silva, J. A. (2020). Potential of arbuscular mycorrhizae and tall fescue in remediation of soils polluted with zinc. Chemistry and Ecology, 36(2), 122- 137.4spa
dc.relation.referencesLeyval, C., Joner, E. J., Del Val, C., & Haselwandter, K. (2002). Potential of arbuscular mycorrhizal fungi for bioremediation. In Mycorrhizal technology in agriculture (pp. 175-186). Birkhäuser, Basel.spa
dc.relation.referencesBi, Y., Xiao, L., & Liu, R. (2019). Response of arbuscular mycorrhizal fungi and phosphorus solubilizing bacteria to remediation abandoned solid waste of coal mine. International Journal of Coal Science & Technology, 6(4), 603-610spa
dc.relation.referencesCozzolino, V., De Martino, A., Nebbioso, A., Di Meo, V., Salluzzo, A., & Piccolo, A. (2016). Plant tolerance to mercury in a contaminated soil is enhanced by the combined effects of humic matter addition and inoculation with arbuscular mycorrhizal fungi. Environmental Science and Pollution Research, 23(11), 11312-11322.spa
dc.relation.referencesLeudo, A. M., Cruz, Y., Montoya-Ruiz, C., Delgado, M. D. P., & Saldarriaga, J. F. (2020). Mercury phytoremediation with lolium perenne-mycorrhizae in contaminated soils. Sustainability, 12(9), 3795.spa
dc.relation.referencesPietro-Souza, W., de Campos Pereira, F., Mello, I. S., Stachack, F. F. F., Terezo, A. J., da Cunha, C. N., & Soares, M. A. (2020). Mercury resistance and bioremediation mediated by endophytic fungi. Chemosphere, 240, 124874.spa
dc.relation.referencesOlusola, S. A., Oladele, O. D., & Orinami, A. P. Bioremediating Effect of Glomus Hoi and Pseudomonas Aeruginosa on the Organic Content and Heavy Metals of Soil Polluted with Oil Refinery Effluent using Amaranthus Cruentus as a Test Plant. International Journal of Environment, Agriculture and Biotechnology, 2(4), 238840.spa
dc.relation.referencesKurniati, E., Arfarita, N., Imai, T., Higuchi, T., Kanno, A., Yamamoto, K., & Sekine, M. (2014). Potential bioremediation of mercury-contaminated substrate using filamentous fungi isolated from forest soil. Journal of Environmental Sciences, 26(6), 1223-1231.spa
dc.relation.referencesCARRILLO, I., Suarez, S., & Sanz, J. R. (1995). Cómo obtener una buena muestra para el análisis de suelos. Centro Nacional de Investigaciones de Café (Cenicafé).spa
dc.relation.referencesBALTODANO, R., & CHÁVEZ, D. R. LAS CARACTERÍSTICAS DE UNA MUESTRAS DE SUELOS.spa
dc.relation.referencesEscobar-Alvarado, L. F., Vaca-Mier, M., López-Callejas, R., & Rojas-Valencia, M. N. (2018). Efficiency of Opuntia ficus in the phytoremediation of a soil contaminated with used motor oil and lead, compared to that of Lolium perenne and Aloe barbadensis. International journal of phytoremediation, 20(2), 184- 189.spa
dc.relation.referencesBustos, E., Robles, I., Bandala, Y., & Manríquez, J. (2018). Modeling of Hg (II) Adsorption onto Cabentonite. Journal of the Mexican Chemical Society, 62(2).spa
dc.relation.referencesArias, M. S. B., Peña-Cabriales, J. J., Alarcón, A., & Maldonado Vega, M. (2015). Enhanced Pb absorption by Hordeum vulgare L. and Helianthus annuus L. plants inoculated with an arbuscular mycorrhizal fungi consortium. International journal of phytoremediation, 17(5), 405-413.spa
dc.relation.referencesZhang, Y., Hu, J., Bai, J., Wang, J., Yin, R., Wang, J., & Lin, X. (2018). Arbuscular mycorrhizal fungi alleviate the heavy metal toxicity on sunflower (Helianthus annuus L.) plants cultivated on a heavily contaminated field soil at a WEEE-recycling site. Science of the Total Environment, 628, 282-290.spa
dc.relation.referencesSchneider, J., Bundschuh, J., & do Nascimento, C. W. A. (2016). Arbuscular mycorrhizal fungiassisted phytoremediation of a lead-contaminated site. Science of The Total Environment, 572, 86-97.spa
dc.relation.referencesMolina, D. C., Liporace, F., & Quevedo, C. (2019). Development of bioremediation strategies based on the improvement of biomass production from isolated strains in hydrocarbon contaminated soils and their application in bioremediation technologies. Brazilian Journal of Development, 5(7), 10708- 10727.spa
dc.relation.referencesLeura Vicencio, A. K., Carrizales Yañez, L., & Razo Soto, I. (2017). Mercury pollution assessment of mining wastes and soils from former silver amalgamation area in north-central mexico. Revista internacional de contaminación ambiental, 33(4), 655-669.spa
dc.relation.referencesZhu, H., Gao, Y., & Li, D. (2019). Germination and growth of grass species in soil contaminated by drill cuttings. Western North American Naturalist, 79(1), 49-55.spa
dc.relation.referencesPesántez, Castro. (2016). Potencial de cepas de Trichoderma spp. para la biorremediación de suelos contaminados con petróleo. Revista Biotecnología Vegetal, 16(4), 9.spa
dc.relation.referencesOlivares A, Chávez M.C.A., González R. 2017, Ricinus communis L., y Pseudomonas sp. Para la remediación de suelos contaminados con residuos de mina. Revista Agroproductividad, 10(4),10spa
dc.relation.referencesRajkumar, M. y Freitas, H. (2008). Influencia de bacterias promotoras del crecimiento de plantas resistentes a metales sobre el crecimiento de Ricinus communis en suelos contaminados con metales pesados. Chemosphere, 71 (5), 834-842.spa
dc.relation.referencesKee, J. C., Gonzales, M. J., Ponce, O., Ramírez, L., León, V., Torres, A., & Loayza-Muro, R. (2018). Accumulation of heavy metals in native Andean plants: potential tools for soil phytoremediation in Ancash (Perú). Environmental Science and Pollution Research, 25(34), 33957-33966.spa
dc.relation.referencesMensah, A. K. (2015). Role of revegetation in restoring fertility of degraded mined soils in Ghana: A review. International journal of biodiversity and conservation, 7(2), 57-80.spa
dc.relation.referencesAlmeida, M. D., Lacerda, L. D., Bastos, W. R., & Herrmann, J. C. (2005). Mercury loss from soils following conversion from forest to pasture in Rondônia, Western Amazon, Brazil. Environmental pollution, 137(2), 179-186.spa
dc.relation.referencesMartínez-Trinidad, S., Hernández Silva, G., Ramírez Islas, M. E., Martínez Reyes, J., Solorio Munguía, G., Solís Valdez, S., & García Martínez, R. (2013). Total, mercury in terrestrial systems (air-soil-plant-water) at the mining region of San Joaquín, Queretaro, Mexico. Geofísica internacional, 52(1), 43-58.spa
dc.relation.referencesChen, M., Xu, P., Zeng, G., Yang, C., Huang, D., & Zhang, J. (2015). Bioremediation of soils contaminated with polycyclic aromatic hydrocarbons, petroleum, pesticides, chlorophenols and heavy metals by composting: applications, microbes and future research needs. Biotechnology advances, 33(6), 745-755.spa
dc.relation.referencesIbarra Castillo, D., Ruiz Corral, J. A., González Eguiarte, D. R., Flores Garnica, J. G., & Díaz Padilla, G. (2009). Distribución espacial del pH de los suelos agrícolas de Zapopan, Jalisco, México. Agricultura técnica en México, 35(3), 267-276.spa
dc.relation.referencesLeudo, A. M., Cruz, Y., Montoya-Ruiz, C., Delgado, M. D. P., & Saldarriaga, J. F. (2020). Mercuryphytoremediation with lolium perenne-mycorrhizae in contaminated soils. Sustainability, 12(9), 3795.spa
dc.relation.referencesIbarra C., Ruiz C., González E., Flores G. y Díaz P.; pH spatial distribution in agricultural soils of zapopan, jalisco, mexico; Agricultura Técnica en México; Vol. 35; Núm.3; 2009; p. 267-276spa
dc.relation.referencesVásquez P., Macías V. y Menjivar F.; Formas de hierro y aluminio en suelos con diferentes usos en la zona norte del departamento del Magdalena, Colombia; 1 Universidad del Magdalena; Acta Agronómica. 63 (4) 2014, p 352-360spa
dc.relation.referencesFiqri, A., Utomo, W. H., & Handayanto, E. (2016). Effect of arbuscular mycorrhizal fungi on the potential of three wild plant species for phytoextraction of mercury from small-scale gold mine tailings. Journal of Degraded and Mining Lands Management, 3(3), 551.spa
dc.relation.urihttp://hdl.handle.net/20.500.12749/14905
dc.rights.accessrightsinfo:eu-repo/semantics/openAccessspa
dc.rights.creativecommonsAtribución-NoComercial-SinDerivadas 2.5 Colombia*
dc.rights.localAbierto (Texto Completo)spa
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/2.5/co/*
dc.sourceMontes, N. A., Quintero, H. & Vásquez, A. M. (2021). Biorremediación de suelos contaminados con mercurio en el Bajo Cauca Antioqueño. Recuperado de: http://hdl.handle.net/20.500.12749/22819
dc.subject.keywordsCongressesspa
dc.subject.keywordsConferencesspa
dc.subject.keywordsSeminarsspa
dc.subject.keywordsBioremediationspa
dc.subject.keywordsPollutionspa
dc.subject.keywordsFloorspa
dc.subject.keywordsMicroorganismsspa
dc.subject.keywordsInvestigationspa
dc.subject.keywordsMercuryspa
dc.subject.lembBiorremediaciónspa
dc.subject.lembContaminaciónspa
dc.subject.lembSuelospa
dc.subject.lembMicroorganismosspa
dc.subject.lembInvestigaciónspa
dc.subject.proposalCongresosspa
dc.subject.proposalConferenciasspa
dc.subject.proposalSeminariosspa
dc.subject.proposalMercuriospa
dc.titleBiorremediación de suelos contaminados con mercurio en el Bajo Cauca Antioqueñospa
dc.title.translatedBioremediation of soils contaminated with mercury in Bajo Cauca Antioquiaspa
dc.type.coarhttp://purl.org/coar/resource_type/c_f744
dc.type.coarversionhttp://purl.org/coar/version/c_ab4af688f83e57aaspa
dc.type.driverinfo:eu-repo/semantics/conferenceProceedings
dc.type.hasversioninfo:eu-repo/semantics/acceptedVersion
dc.type.localMemoria de eventosspa
dc.type.redcolhttp://purl.org/redcol/resource_type/EC_AC

Archivos

Bloque original

Mostrando 1 - 1 de 1
Cargando...
Miniatura
Nombre:
2021_Articulo_Quintero_Hector.pdf
Tamaño:
455.18 KB
Formato:
Adobe Portable Document Format
Descripción:
Artículo

Bloque de licencias

Mostrando 1 - 1 de 1
Cargando...
Miniatura
Nombre:
license.txt
Tamaño:
829 B
Formato:
Item-specific license agreed upon to submission
Descripción: