Publicación: Biotecnología aplicada a la fitorremediación como herramienta ecológica para el control de contaminantes orgánicos e inorgánicos
dc.audience | ||
dc.contributor.advisor | Páez Meza, Manuel Silvestre | |
dc.contributor.author | Pico Ortiz, Duvan Andrés | |
dc.contributor.educationalvalidator | Páez meza, Manuel Silvestre | |
dc.contributor.jury | Ossa Henao, Diana Marcela | |
dc.contributor.jury | Urango Cárdenas, Iván | |
dc.date.accessioned | 2024-07-10T23:04:06Z | |
dc.date.available | 2024-07-10T23:04:06Z | |
dc.date.available | 2025-07-09 | |
dc.date.issued | 2024-07-09 | |
dc.description.abstract | La biotecnología aplicada a la fitorremediación se posiciona como una estrategia ecoamigable para mitigar la contaminación ambiental derivada de actividades humanas. Este enfoque ofrece soluciones ambientales como la generación de energía renovable y la recuperación de suelos y aguas contaminadas. El objetivo de este trabajo es recopilar y analizar información actualizada sobre la biotecnología en el campo de la fitorremediación, resaltando su importancia como alternativa respetuosa con el medio ambiente para la eliminación de contaminantes. Se exploran diversas técnicas biotecnológicas como la fitoextracción, fitodegradación y fitoestabilización, entre otras, detallando su aplicación en la remediación de contaminantes orgánicos e inorgánicos. Se destaca el impacto positivo de estas técnicas al mejorar la eficiencia mediante la transformación genética y el uso de microorganismos beneficiosos. Además, se analizan y se discuten casos de estudio y aplicaciones en biotecnología ambiental, resaltando su potencial para restaurar ecosistemas contaminados y promover la sostenibilidad ambiental. En resumen, este trabajo ofrece una visión actualizada de la biotecnología en el campo de fitorremediación, subrayando su relevancia como herramienta ecológica para el control de contaminantes y la protección del medio ambiente. | spa |
dc.description.abstract | Biotechnology applied to phytoremediation is positioned as an eco-friendly strategy to mitigate environmental pollution derived from human activities. This approach offers environmental solutions such as the generation of renewable energy and the recovery of contaminated soils and water. The objective of this work is to compile and analyze updated information on biotechnology in the field of phytoremediation, highlighting its importance as an environmentally friendly alternative for the elimination of pollutants. Various biotechnological techniques such as phytoextraction, phytodegradation and phytostabilization, among others, are explored, detailing their application in the remediation of organic and inorganic pollutants. The positive impact of these techniques by improving efficiency through genetic transformation and the use of beneficial microorganisms is highlighted. In addition, case studies and applications in environmental biotechnology are analyzed and discussed, highlighting their potential to restore contaminated ecosystems and promote environmental sustainability. In summary, this work offers an updated view of biotechnology in the field of phytoremediation, highlighting its relevance as an ecological tool for the control of pollutants and the protection of the environment. | eng |
dc.description.degreelevel | Pregrado | |
dc.description.degreename | Químico(a) | |
dc.description.modality | Monografías | |
dc.description.tableofcontents | 1. Introducción...............................11 | spa |
dc.description.tableofcontents | 2. Objetivos......................................................13 | spa |
dc.description.tableofcontents | 2.1 Objetivo general...............................................13 | spa |
dc.description.tableofcontents | 2.1.1 Objetivos específicos..........................13 | spa |
dc.description.tableofcontents | 3. Desarrollo del tema.................................14 | spa |
dc.description.tableofcontents | 3.1 Capitulo l: Contaminación ambiental......................19 | spa |
dc.description.tableofcontents | 3.1.1 Descripción de los efectos nocivos de la contaminación en el medio ambiente........20 | spa |
dc.description.tableofcontents | 3.1.2 Identificación de los diferentes tipos de contaminación ambiental...........24 | spa |
dc.description.tableofcontents | 3.2 Capitulo ll: Biotecnología ambiental y fitorremediación...........30 | spa |
dc.description.tableofcontents | 3.2.1 Biotecnología ambiental.......................30 | spa |
dc.description.tableofcontents | 3.2.1.1 Aplicaciones en la biotecnología ambiental..................32 | spa |
dc.description.tableofcontents | 3.2.1.2 Fitorremediación como herramienta ecológica.....................37 | spa |
dc.description.tableofcontents | 3.3 Capitulo lll: Fitorremediación....................40 | spa |
dc.description.tableofcontents | 3.3.1 Principales contaminantes tratados en la fitorremediación...............42 | spa |
dc.description.tableofcontents | 3.3.1.1 Transporte de contaminantes orgánicos e inorgánicos.............44 | spa |
dc.description.tableofcontents | 3.3.1.2 Mecanismos de la fitorremediación.............45 | spa |
dc.description.tableofcontents | 3.4 Capitulo lV: Biotecnología aplicada a la fitorremediación.......55 | spa |
dc.description.tableofcontents | 3.4.1 Avances de la biotecnología en materia de la ingeniería genética....................55 | spa |
dc.description.tableofcontents | 3.4.1.1 Plantas transgénicas en la fitorremediación...................57 | spa |
dc.description.tableofcontents | 3.4.1.2 Identificación de ventajas y limitaciones en la implementación de esta técnica.........59 | spa |
dc.description.tableofcontents | 3.5 Capitulo V: Estudios de caso...............................65 | spa |
dc.description.tableofcontents | 3.5.1 Casos prácticos donde se aplicó la biotecnología en fitorremediación.............65 | spa |
dc.description.tableofcontents | 4. Conclusiones...............................70 | spa |
dc.description.tableofcontents | 5. Referencias....................................72 | spa |
dc.format.mimetype | application/pdf | |
dc.identifier.instname | Universidad de Córdoba | |
dc.identifier.repourl | https://repositorio.unicordoba.edu.co | |
dc.identifier.uri | https://repositorio.unicordoba.edu.co/handle/ucordoba/8371 | |
dc.language.iso | spa | |
dc.language.iso | eng | |
dc.publisher | Universidad de Córdoba | |
dc.publisher.faculty | Facultad de Ciencias Básicas | |
dc.publisher.place | Montería, Córdoba, Colombia | |
dc.publisher.program | Química | |
dc.relation.references | Abid Ali Ansari, M. Naeem, Sarvajeet Singh Gill, Fahad M. AlZuaibr, Phytoremediation of contaminated waters: An eco-friendly technology based on aquatic macrophytes application, Egyptian Journal of Aquatic Research,Volume 46, Issue 4,2020,Pages 371-376,ISSN 1687-4285, https://doi.org/10.1016/j.ejar.2020.03.002 | |
dc.relation.references | A. Kafle et al. (2022). Phytoremediation: Mechanisms, plant selection and enhancement by natural and synthetic agents. Environmental Advances 8 (2022) 100203. https://doi.org/10.1016/j.envadv.2022.100203 | |
dc.relation.references | A. Pérez-Vega, H. H. Regil García y J. F. Mas (2020) Environmental Degradation from Land-Cover and Use Change Processes from a Spatial Perspective in the State of Guanajuato, Mexico https://doi.org/10.14350/rig.60150 | |
dc.relation.references | Anina James, Eldon R. Rene, Abubakar M. Bilyaminu, Padmanaban Velayudhaperumal Chellam, Advances in amelioration of air pollution using plants and associated microbes: An outlook on phytoremediation and other plant-based technologies,Chemosphere,Volume 358,2024,142182,ISSN 0045-6535, https://doi.org/10.1016/j.chemosphere.2024.142182. | |
dc.relation.references | Aqib Hassan Ali Khan, Amna Kiyani, Cyrus Raza Mirza, Tayyab Ashfaq Butt, Rocío Barros, Basit Ali, Mazhar Iqbal, Sohail Yousaf, Ornamental plants for the phytoremediation of heavy metals: Present knowledge and future perspectives, Environmental Research,Volume 195,2021,110780,ISSN 0013-9351, https://doi.org/10.1016/j.envres.2021.110780. | |
dc.relation.references | Arjun Kafle, Anil Timilsina, Asmita Gautam, Kaushik Adhikari, Anukul Bhattarai, Niroj Aryal,Phytoremediation: Mechanisms, plant selection and enhancement by natural and synthetic agents,Environmental Advances,Volume 8,2022,100203,ISSN 2666-7657, https://doi.org/10.1016/j.envadv.2022.100203. | |
dc.relation.references | Arti Hansda, Prem Chand Kisku, Vipin Kumar, Anshumali,Chapter6 - Plant-microbe association to improve phytoremediation of heavy metal,Editor(s): Kuldeep Bauddh, Ying Ma,Advances in Microbe-assisted Phytoremediation of Polluted Sites,Elsevier,2022,Pages 113-146,ISBN 9780128234433, https://doi.org/10.1016/B978-0-12-823443-3.00004-1. | |
dc.relation.references | Azeez Omoniyi Adeoye, Ismail Abiola Adebayo, Adam Moyosore Afodun, Kamoldeen Abiodun Ajijolakewu,Chapter 12 - Benefits and limitations of phytoremediation: Heavy metal remediation review,Editor(s): Rouf Ahmad Bhat, Fernanda Maria Policarpo Tonelli, Gowhar Hamid Dar, Khalid Hakeem,Phytoremediation,Academic Press,2022,Pages 227-238,ISBN 9780323898744, https://doi.org/10.1016/B978-0-323-89874-4.00002-9. | |
dc.relation.references | Babita Sharma, Twinkle Chaudhary, Pratyoosh Shukla,Chapter 4 - Combinatorial genetic engineering approaches in phytoremediation of pollutants,Editor(s): Pooja Sharma, Ashok Pandey, Yen Wah Tong, Huu Hao Ngo,Current Developments in Biotechnology and Bioengineering,Elsevier,2022,Pages 55-71,ISBN 9780323999076, https://doi.org/10.1016/B978-0-323-99907-6.00001-3. | |
dc.relation.references | Berumen-Rodríguez, Alejandra; Rodriguez Torres, Israel; Díaz de León-Martinez, Lorena; Díaz-Barriga, Fernando; Flores Ramirez, Rogelio. (2022) http://www.scielo.org.ar/pdf/ata/v30n3/1851-3743-ata-30-03-6.pdf | |
dc.relation.references | Binns CW, Lee MK, Maycock B, Torheim LE, Nanishi K, Duong DT. Climate Change, Food Supply, and Dietary Guidelines. Annu Rev Public Health.2021;42:233---55. http://dx.doi.org/ 10.1146/annurev-publhealth-012420-105044 | |
dc.relation.references | Carlos J. (2024) This common plant could save us in the event of a global catastrophehttps://hipertextual.com/2024/02/esta-planta-comun-podria-salvarnos-en-caso-de-una-catastrofe-mundia | |
dc.relation.references | C. Avellaneda-Gómez, J. Roquer, R. Vivanco-Hidalgo,Reconocimiento de lacontaminación atmosférica como factor de riesgo de ictus en las guías de práctica clínica para las enfermedades cerebrovasculares: revisión de la literatura,Neurología,Volume 36, Issue 6, 2021,Pages 480-483,ISSN 0213-4853 ,https://doi.org/10.1016/j.nrl.2020.08.003. (https://www.sciencedirect.com/science/article/pii/S0213485320302656) | |
dc.relation.references | C. Raherison Semjen,Contaminación atmosférica y medioambiental y patología respiratoria,EMC - Tratado de Medicina,Volume 24, Issue 3,2020,Pages 1-9,ISSN 1636-5410, https://doi.org/10.1016/S1636-5410(20)44024-3. | |
dc.relation.references | Caliope Mendarte-Alquisira, Alejandro Alarcón, Ronald Ferrera Cerrato (2021) Fitorremediación: Alternativa biotecnológica para recuperar suelos contaminados con DDT. Una revisión DOI: https://doi.org/10.22201/fesz.23958723e.2021.326 | |
dc.relation.references | Casas Y., Fuquen L., Ramírez D., Gómez A., Avances en biotecnología ambiental: biorremediación de plásticos. Revista I3+, 4(2), 89 - 114 p.p (2022) file:///C:/Users/Usuario/Downloads/Avances+en+biotecnologi%E2%95%A0%C3%BCa_Revista+I3++V4N2.pdf | |
dc.relation.references | Catherine Joulian, Viviana Fonti, Simon Chapron, Christopher G. Bryan, Anne-Gwénaëlle Guezennec,Bioleaching of pyritic coal wastes: bioprospecting and efficiency of selected consortia,Research in Microbiology,Volume 171, Issue 7,2020,Pages 260-270,ISSN 0923-2508, https://doi.org/10.1016/j.resmic.2020.08.002. | |
dc.relation.references | César R. Castro López, Luis M. Castillo Rodríguez (2024) http://orcid.org/0000-0002-0797-7389 http://orcid.org/0000-0002-5806-6112 | |
dc.relation.references | Chicaiza-Ortiz, C. D., Rivadeneira-Arias, V. del C., Herrera-Feijoo, R. J., & Andrade, J. C. (2023, May 10). Biotecnología Ambiental, Aplicaciones y Tendencias. Editorial Grupo AEA. Retrieved from https://www.editorialgrupo aea.com/index.php/EditorialGrupoAEA/catalog/book/25 https://doi.org/10.55813/egaea.l.2022.25 | |
dc.relation.references | Chuanxi Wang , ablogotipo ORCID Le Yue , Bingxu Cheng , Feiran Chen , Xiaoli Zhao ,Zhenyu Wang y Baoshan Xing (2022) Mecanismos de promoción del crecimiento y enriquecimiento de Se en Brassica chinensis L. mediante nanomateriales de selenio: microorganismos beneficiosos de la rizosfera, disponibilidad de nutrientes y fotosíntesis. DOI https://doi.org/10.1039/D1EN00740H | |
dc.relation.references | Chunyan Li, Jie Xing, Qian Xu, Di Cui, Yuqing Liu, Changlong Pang, Ang Li,Biochar and microorganism assisted phytoremediation of severely molybdenum-contaminated soil: Efficacy, mechanisms and the impact of low temperatures,Journal of Cleaner Production,Volume 444,2024,141219,ISSN 0959-6526, https://doi.org/10.1016/j.jclepro.2024.141219. | |
dc.relation.references | Claudia Gafner (2022). Intentional forest fires in times of climate change.https://medioambiente.uexternado.edu.co/incendios-forestales-intencionados-en-tiempos-de-cambio-climatico/ | |
dc.relation.references | Cristian C, Carola B. (2023) Predicción de la Contaminación del Aire Ambiente por SO2 en la Bahía de Quintero, Chile 10.18687/LACCEI2022.1.1.26 | |
dc.relation.references | Cristina N. (2024). Plastic trash litters the waters of a fishing village in Nigeria's Niger Delta. Plastic pollution is just one type of pollution that harms the marine environment. https://www.nationalgeographic.es/medio-ambiente/contaminacion-del-agua | |
dc.relation.references | Daniel Santos Ubaldo, Raúl J. Delgado Macuil, Angélica Romero Rodríguez, Andrés Castro Sierra (2023). Phytoremediation of heavy metals in contaminated environments: a review. https://www.revistafronterabiotecnologica.cibatlaxcala.ipn.mx/volumen/vol26/pdf/vol-26-4.pdf | |
dc.relation.references | David Clofent, Mario Culebras M. Jesús Cruz (2021) Contaminación ambiental y cáncer de pulmón: el poder carcinogénico del aire que respiramos https://doi.org/10.1016/j.arbres.2020.05.031 | |
dc.relation.references | Deepak Kumar Patra, Chinmay Pradhan, Hemanta Kumar Patra, Toxic metal decontamination by phytoremediation approach: Concept, challenges, opportunities and future perspectives, Environmental Technology & Innovation,Volume 18, 2020,100672, ISSN 2352-1864, https://doi.org/10.1016/j.eti.2020.100672. | |
dc.relation.references | Diaz L, Alvares F, Garrido G. (2023) Cultivo y metagenómica como métodos de identificación bacteriana en pacientes con úlceras del pie diabético: una revisión sistemática http://dx.doi.org/10.4067/s0034-98872023000200206 | |
dc.relation.references | Drishya M. George, Annette S. Vincent, Hamish R. Mackey,An overview of anoxygenic phototrophic bacteria and their applications in environmental biotechnology for sustainableResource recovery,Biotechnology Reports,Volume 28,2020,e00563,ISSN 2215017X, https://doi.org/10.1016/j.btre.2020.e00563. | |
dc.relation.references | Enrique González (2022). Traffic pollution https://www.webconsultas.com/belleza-y-bienestar/medioambiente/contaminacion-por-trafico | |
dc.relation.references | Fengwei Yin, Jianbin Li, Yilu Wang, Zhongyi Yang,Biodegradable chelating agents for enhancing phytoremediation: Mechanisms, market feasibility, and future studies,Ecotoxicology and Environmental Safety,Volume 272,2024,116113,ISSN 0147-6513, https://doi.org/10.1016/j.ecoenv.2024.116113. | |
dc.relation.references | Francisco Jablinski Castelhano, Weeberb J. Réquia,Weather impact on ambient air pollution and its association with land use types/activities over 5,572 municipalities Brazil,Heliyon,Volume 10, Issue 11,2024,e31857,ISSN 2405-8440, https://doi.org/10.1016/j.heliyon.2024.e31857. | |
dc.relation.references | Gabriel Antonio Bortoloti, Daniel Baron,Phytoremediation of toxic heavy metals by Brassica plants: A biochemical and physiological approach,Environmental Advances,Volume 8,2022,100204,ISSN 2666-7657, https://doi.org/10.1016/j.envadv.2022.100204. | |
dc.relation.references | Ghulam Mustafa ,wei maa ,Yang Cheng ,Zhe Zhang ,Chen Zhen ,Hammad Saulat ,yang wang ,Ventilador Aiping (2024). Evaluación en agua de embalses/tuberías mediante fluorescencia y eliminación de contaminantes de sabor y olor mediante un proceso de adsorción-coagulación. https://doi.org/10.1016/j.seppur.2024.128050 | |
dc.relation.references | Gong, H., Hu, X., Zhang, J. et al. Efecto de la suplementación con luz roja y azul sobre la eficacia de Noccaea caerulescens para descontaminar metales y aliviar el riesgo de lixiviación. Environ Geochem Health 46 , 48 (2024). https://doi.org/10.1007/s10653-023-01837-9 | |
dc.relation.references | Gregorio J. (2022) ONU: Sobreexplotación de las tierras amenaza con degradar una superficie del tamaño de Sudamérica en menos de tres décadas. https://agraria.pe/noticias/onu-sobreexplotacion-de-las-tierras-amenaza-con-degradar-una-27773 | |
dc.relation.references | Guangyu Chi, Yuting Fang, Bin Zhu, Nan Guo, Xin Chen, Intercropping with Brassica juncea L. enhances maize yield and promotes phytoremediation of cadmium-contaminated soil by changing rhizosphere properties, Journal of Hazardous Materials,Volume 461,2024,132727,ISSN 0304-3894, https://doi.org/10.1016/j.jhazmat.2023.132727. (https://www.sciencedirect.com/science/article/pii/S0304389423020113) | |
dc.relation.references | Guidi Nissim, W.; Castiglione, S.; Guarino, F.; Pastore, MC; Labra, M. Más allá de la limpieza: servicios ecosistémicos relacionados con la fitorremediación. Plantas 2023 , 12 , 1031. https://doi.org/10.3390/plants12051031 | |
dc.relation.references | Haribansha Timalsina, Tunisha Gyawali, Swastik Ghimire, Shukra Raj Paudel,Potentialapplication of enhanced phytoremediation for heavy metals treatment in Nepal,Chemosphere,Volume 306,2022,135581,ISSN 0045-6535, https://doi.org/10.1016/j.chemosphere.2022.135581 | |
dc.relation.references | Hassay Lizeth Medina-Díaz, Irene Acosta, Martín Muñoz, Francisco Javier López Bellido, José Villaseñor, Javier Llanos, Luis Rodríguez, Francisco Jesús Fernández-Morales,A classical modelling of abandoned mine tailings' bioleaching by an autochthonous microbial culture,Journal of Environmental Management,Volume 323,2022,116251,ISSN 0301-4797, https://doi.org/10.1016/j.jenvman.2022.116251. | |
dc.relation.references | Hernández, Maybis & Hernández, Osman. (2022). Fitorremediación de suelos contaminados por metales pesados: una revisión. Revista Ciencia y Tecnología El Higo. 12. 15-28. 10.5377/elhigo.v12i2.15197. DOI: 10.5377/elhigo.v12i2.15197 | |
dc.relation.references | Hernández-Macedo ML, López JA, Barrios Eguiluz KI, Salazar-Banda GR. (2020). Environmental Biotechnology: Challenges and perspectives in applying combined technologies to enhance remediation and renewable energy generation. I Congreso Internacional de Biotecnología e innovación (ICBi), Revista peruana de biología número especial 27(1): 043 - 048 (marzo 2020). doi: http://dx.doi. org/10.15381/rpb.v27i1.17578 | |
dc.relation.references | Hu, H., Li, X., Wu, S., Yang, C., (2020). Sustainable livestock wastewater treatment via phytoremediation: Current status and future perspectives. https://doi.org/10.1016/j.biortech.2020.123809 | |
dc.relation.references | Ighalo, J. O., Yap, P.-S., Iwuozor, K. O., Aniagor, C. O., Liu, T., Dulta, K., Iwuchukwu, F. U., & Rangabhashiyam, S. (2022). Adsorption of persistent organic pollutants (POPs) from the aqueous environment by nano-adsorbents: A review. Environmental Research, 212. Scopus. https://doi.org/10.1016/j.envres.2022.113123 | |
dc.relation.references | Ihsan Ullah, Yasir Anwar, Muhammad Faisal Siddiqui, Nadiah Alsulami, Raza Ullah,Phytoremediation of Arsenic (As) in rice plants, mediated by Bacillus subtilis strain IU31 through antioxidant responses and phytohormones synthesis,Environmental Pollution,Volume 355,2024,124207,ISSN 0269-7491,https://doi.org/10.1016/j.envpol.2024.124207. (https://www.sciencedirect.com/science/article/pii/S0269749124009217) | |
dc.relation.references | J.C. Figueroa-Estrada, R. Aguilar-López, R. Rodríguez-Vázquez, M.I. Neria-González,Bioleaching for the extraction of metals from sulfide ores using a newchemolithoautotrophic bacterium,Hydrometallurgy,Volume 197,2020,105445,ISSN 0304-386X, https://doi.org/10.1016/j.hydromet.2020.105445. | |
dc.relation.references | Jianying Cai, Xuan Wang, Yanpeng Cai, Chenxi Wei, Zhenmei Liao, Chunhui Li, Qiang Liu,An integrated framework consisting of spatiotemporal evolution and driving force analyses for early warning management of water quality,Journal of Cleaner Production,Volume 462,2024,142628,ISSN 0959-6526, https://doi.org/10.1016/j.jclepro.2024.142628. | |
dc.relation.references | Jitchanok Montreemuk, Thomas Neal Stewart, Benjaphorn Prapagdee,Bacterial-assisted phytoremediation of heavy metals: Concepts, current knowledge, and future directions,Environmental Technology & Innovation,Volume 33,2024,103488,ISSN 2352-1864,https://doi.org/10.1016/j.eti.2023.103488. (https://www.sciencedirect.com/science/article/pii/S2352186423004844) | |
dc.relation.references | Jordi Sunyer, Ioar Rivas (2022) Air pollution and health, 20 years later https://doi.org/10.1016/j.medcli.2022.04.006 | |
dc.relation.references | Juan Antonio Ortega-García ,Indra Martínez-Hernández ,Elena Boldó ,Alberto Cárceles Álvarez ,Carmen Solano-Navarro ,Rebeca Ramis .,Estefanía Aguilar-Ros ,Manuel Sánchez-Solis ,Fernando López-Hernández (2020) Contaminación del aire urbano y ingresos hospitalarios por asma y enfermedad respiratoria aguda en la ciudad de Murcia (España) https://doi.org/10.1016/j.anpedi.2020.01.012 | |
dc.relation.references | Junye Wang , Mojtaba Aghajani Delavar (2023) Techno-economic analysis of phytoremediation: A strategic rethinking https://doi.org/10.1016/j.scitotenv.2023.165949 | |
dc.relation.references | KS Sandhu , A. Shiv , G. Kaur , MR Meena , AK Raja , K. Vengavasi , AK Mall , S. Kumar , PK Singh , J. Singh , G. Hemaprabha , AD Pathak , G. Krishnappa , S. Kumar Enfoque integrado en selección genómica para acelerar la ganancia genética en caña de azúcar DOI: 10.3390/plantas11162139 https://www.scopus.com/record/display.uri?eid=2-s2.0-85137320089&origin=inward&txGid=0c836a97000cf32f1a7c518c2b846952 | |
dc.relation.references | L. Campos, , M.M. Chimeno Vinas ˜ b, J. Carretero Gómezc, L. Santos d, A. Cabrera Rayo e,P.R. Valdezf, Ricardo Gómez-Huelgas g y en nombre de las sociedades, colegios y asociaciones de Medicina Interna de los países de habla hispana y lusa (2024). Recomendaciones de los servicios de Medicina Interna hispano-lusos en la lucha contra el cambio climático y la degradación ambiental https://doi.org/10.1016/j.rce.2024.01.002 | |
dc.relation.references | Leidy Rendón-Castrillón, Margarita Ramírez-Carmona, Carlos Ocampo-López, Federico González-López, Beatriz Cuartas-Uribe, José Antonio Mendoza-Roca,Efficient bioremediation of indigo-dye contaminated textile wastewater using native microorganisms and combined bioaugmentation-biostimulation techniques,Chemosphere,Volume 353,2024,141538,ISSN 0045-6535, https://doi.org/10.1016/j.chemosphere.2024.141538. | |
dc.relation.references | Leticia de Jesús Velázquez-Chávez, Ixchel Abby Ortiz-Sánchez, Jorge Armando Chávez-Simental, Gerardo Antonio Pámanes-Carrasco, Artemio Carrillo-Parra, Martín Emilio Pereda-Solís (2022) Influencia de la contaminación del agua y el suelo en el desarrollo agrícola nacional e internacional https://doi.org/10.22201/fesz.23958723e.2022.482 | |
dc.relation.references | Li Chen, Jingzi Beiyuan, Weifang Hu, Zhiqing Zhang, Chenjiao Duan, Qingliang Cui, Xiaozhen Zhu, Haoran He, Xuguang Huang, Linchuan Fang,Phytoremediation of potentially toxic elements (PTEs) contaminated soils using alfalfa (Medicago sativa comprehensive review,Chemosphere,Volume 293,2022,133577,ISSN 0045 6535,https://doi.org/10.1016/j.chemosphere.2022.133577. (https://www.sciencedirect.com/science/article/pii/S0045653522000662) | |
dc.relation.references | Manzoor M, Gul I, Manzoor A, Kamboh UR, Hina K, Kallerhoff J, Arshad M (2020) Disponibilidad de plomo y fitoextracción en la rizosfera de especies de Pelargonium . Ciencia. Contaminación. Res, Medio Ambiente. https://doi.org/10.1007/s11356-020-08226-0 | |
dc.relation.references | María Celina Zabaloy (2021) Una sola salud: la salud del suelo y su vínculo con la salud humana https://doi.org/10.1016/j.ram.2021.11.001 | |
dc.relation.references | María Gavrilescu (2022) Mejora de la fitorremediación de suelos contaminados con metales pesados https://doi.org/10.1016/j.copbio.2021.10.024 | |
dc.relation.references | Md. Merajul Islam, Neha Saxena, Deepa Sharma,Phytoremediation as a green and sustainable prospective method for heavy metal contamination: a review,RSC Sustainability,Volume 2, Issue 5,2024,Pages 1269-1288,ISSN 2753-8125, https://doi.org/10.1039/d3su00440f. | |
dc.relation.references | Meng Wang, Shibao Chen, Xingyong Jia, Li Chen,Chapter 1 - Concept and types of bioremediation,Editor(s): Mirza Hasanuzzaman, Majeti Narasimha Vara Prasad,Handbook of Bioremediation,Academic Press,2021,Pages 3-8,ISBN 9780128193822, https://doi.org/10.1016/B978-0-12-819382-2.00001-6 | |
dc.relation.references | Monika Trojanowska,Reclamation of polluted land in urban renewal projects. Literature review of suitable plants for phytoremediation,Environmental Challenges,Volume 13,2023,100749,ISSN 2667-0100, https://doi.org/10.1016/j.envc.2023.100749. | |
dc.relation.references | Mughair Abdul Aziz, Khaled Masmoudi,Molecular Breakthroughs in Modern Plant Breeding Techniques,Horticultural Plant Journal,2024,,ISSN 2468-0141, https://doi.org/10.1016/j.hpj.2024.01.004. | |
dc.relation.references | Muhammad Umair Yasin, Zulqarnain Haider, Raheel Munir, Usman Zulfiqar, Muhammad Rehman, Muhammad Haseeb Javaid, Irshan Ahmad, Chen Nana, Muhammad Sulaman Saeed, Bahar Ali, Yinbo Gan,The synergistic potential of biochar and nanoparticles in phytoremediation and enhancing cadmium tolerance in plants,Chemosphere,Volume 354,2024,141672,ISSN 0045-6535, https://doi.org/10.1016/j.chemosphere.2024.141672. | |
dc.relation.references | Nandni Sharma, Gaurav Sharma, Sandeep Kour, Bhupinder Singh Chadha, Puja Ohri,Unravelling the role of plant growth promoting rhizobacteria in boosting plant growth and phytoremediation of heavy metals,Applied Soil Ecology,Volume 199,2024,105416,ISSN 0929-1393, https://doi.org/10.1016/j.apsoil.2024.105416. | |
dc.relation.references | Neaman, Alexander. (2022). Fitoextracción de metales desde suelos contaminados: Una idea utópica. Idesia (Arica), 40(4), 2-5. https://dx.doi.org/10.4067/S0718-34292022000400002 | |
dc.relation.references | Nedjimi, B. Fitorremediación: una tecnología ambiental sostenible para la descontaminación de metales pesados. Aplica SN Ciencia. 3 , 286 (2021). https://doi.org/10.1007/s42452-021-04301-4 | |
dc.relation.references | OLIVEIRA, V.M., ANDREOTE, F.D., CORTELO, P.C., CASTRO-GAMBOA, I., COSTA-LOTUFO, L.V.,POLIZELI, M.L.T.M., THIEMANN, O.H., SETUBAL, J.C. Microorganisms: the secret agents of the biosphere,and their key roles in biotechnology. Biota Neotropica 22(spe): e20221343. https://doi.org/10.1590/1676-0611- BN-2022-1343 | |
dc.relation.references | Omena Bernard Ojuederie, David Okeh Igwe, Jacob Olagbenro Popoola,Chapter 7 - Transgenic plant-mediated phytoremediation: Applications, challenges, and prospects,Editor(s): Vimal Pandey,Assisted Phytoremediation,Elsevier,2022,Pages 179-202,ISBN 9780128228937, https://doi.org/10.1016/B978-0-12-822893-7.00009-4. | |
dc.relation.references | Pabón, S. E., Benitez, R., Sarria-Villa R. A., Gallo, J. A. Contaminación del agua por metales pesados, métodos de análisis y tecnologías de remoción. Una revisión, Entre Ciencia e Ingeniería, vol. 14, no. 27, pp. 9-18, enero-junio 2020. DOI: https://doi.org/xxxxxxxxx. | |
dc.relation.references | Paricaguan B, Muñoz J, Gaince F, Sáenz L. (2023) CONTAMINACIÓN AMBIENTAL POR METALES PESADOS: REFORMULACIÓN DE UNA PINTURA ESMALTE TIPO ALQUÍDICO CONTAMINADA CON ALTAS CONCENTRACIONES DE PLOMO (Pb) Doi 10.5281/zenodo.8273620 | |
dc.relation.references | Parveen Kanwar, Usha Mina, Indu Shekhar Thakur, Shaili Srivastava, Heavy metal phytoremediation by the novel prospect of microbes, nanotechnology, and genetic engineering for recovery and rehabilitation of landfill site, Bioresource Technology Reports, Volume 23,2023, 101518, ISSN 2589-014X https://doi.org/10.1016/j.biteb.2023.101518. | |
dc.relation.references | Prabhat Kumar Rai, Ki-Hyun Kim, Sang Soo Lee, Jin-Hong Lee, Molecular mechanisms in phytoremediation of environmental contaminants and prospects of engineered transgenic plants/microbes, Science of The Total Environment, Volume 705,2020,135858,ISSN 0048-9697, https://doi.org/10.1016/j.scitotenv.2019.135858. | |
dc.relation.references | Qingyang Shi, Parminder Kaur, Jay Gan,Harnessing the potential of phytoremediation for mitigating the risk of emerging contaminants,Current Opinion in Environmental Science & Health,Volume 32,2023,100448,ISSN 2468-5844, https://doi.org/10.1016/j.coesh.2023.100448 | |
dc.relation.references | Qomarudin Helmy, Edwan Kardena, Enhancing field-scale bioremediation of weathered petroleum oil-contaminated soil with biocompost as a bulking agent, Case Studies in Chemical and Environmental Engineering,Volume 9,2024,100735,ISSN 2666-0164, https://doi.org/10.1016/j.cscee.2024.100735. | |
dc.relation.references | R.F. Al-Thani, B.T. Yasseen. (2020). Phytoremediation of polluted soils and waters by native Qatari plants: Future perspectives. Environmental Pollution 259 (2020) 113694 https://doi.org/10.1016/j.envpol.2019.113694 | |
dc.relation.references | Rai PK, Kim K-H, Lee SS, Lee J-H (2020) Molecular mechanisms in phytoremediation of environmental contaminants and prospects of engineered transgenic plants/microbes. Sci Total Environ 705:135858. https://doi.org/10.1016/j.scitotenv.2019.135858 | |
dc.relation.references | Rebecca A.L. Roe, Geoff R. MacFarlane,The potential of saltmarsh halophytes for phytoremediation of metals and persistent organic pollutants: An Australian perspective,Marine Pollution Bulletin,Volume 180,2022,113811,ISSN 0025-326X, https://doi.org/10.1016/j.marpolbul.2022.113811. (https://www.sciencedirect.com/science/article/pii/S0025326X22004933) | |
dc.relation.references | Remtavares (2020). Cyanobacterial biosensors, a future solution for in situ monitoring of water quality (2020), April 6). El Agua -. https://www.madrimasd.org/blogs/remtavares/2020/04/06/133814 | |
dc.relation.references | Rivera-Urbalejo, América, Vazquez-Sandoval, Daniel, Fernández-Vázquez, José Luis, Rosete-Enríquez, María, Cesa-Luna, Catherine, Morales-García, Y. Elizabeth, Muñoz-Rojas, Jesús, & Quintero-Hernández, Verónica. (2021). APORTES Y DIFICULTADES DE LA METAGENÓMICA DE SUELOS Y SU IMPACTO EN LA AGRICULTURA.. Acta Biológica Colombiana , 26 (3), 449-461. Publicación electrónica del 27 de enero de 2022. https://doi.org/10.15446/abc.v26n3.85760 | |
dc.relation.references | Rivilla, H. (2022). El potencial de la fitorremediación como tecnología medioambiental. MasScience. https://www.masscience.com/el-potencial-de-la-fitorremediacion-como-tecnologia-medioambiental/ | |
dc.relation.references | Rocha, CS, Rocha, DC, Kochi, LY et al. Fitorremediación mediante plantas ornamentales: una alternativa bella y ecológica. Environ Sci Pollut Res 29 , 3336–3354 (2022). https://doi.org/10.1007/s11356-021-17307-7 | |
dc.relation.references | Rodolfo Villenaa, , Magdalena Bastíasc (2020). Priorización de nuevas vacunas e innovación al servicio de estrategias de vacunaciónPriorización de nuevas vacunas e innovación relacionada con la inmunización. ScienceDirect Volumen 31, Número 3 https://doi.org/10.1016/j.rmclc.2020.03.006 | |
dc.relation.references | Rodríguez, Apolonia & Zárate-Villarroe, Sandra & Bastida, Agatha. (2022). Biodiversidad bacteriana presente en suelos contaminados con hidrocarburos para realizar biorremediación. Revista de Ciencias Ambientales. 56. 178-208. 10.15359/rca.56-1.9 DOI: https://doi.org/10.15359/rca.56-1.9 | |
dc.relation.references | Roy, M., Pandey, V., (2020). Role of microbes in grass-based phytoremediation. In: Phytoremediation Potential of Perennial Grasses. Pages 303-336. https://doi.org/10.1016/B978-0-12-817732-7.00015-8 | |
dc.relation.references | Rui Ma, Zhiyuan Tian, Yan Zhao, Yihang Wu, Yin Liang,Response of soil quality degradation to cultivation and soil erosion: A case study in a Mollisol region of Northeast China,Soil and Tillage Research,Volume 242,2024,106159,ISSN 0167-1987,https://doi.org/10.1016/j.still.2024.106159. (https://www.sciencedirect.com/science/article/pii/S0167198724001600) | |
dc.relation.references | Saravanan, A., Jeevananthama, S., Anantha, V., Kumar, P., Yaashikaa, P., Mathan, C., 2020. Rhizoremediation – A promising tool for the removal of soil contaminants: A review. https://doi.org/10.1016/j.jece.2019.103543 | |
dc.relation.references | Shakeel Ahmad Bhat a,Omar Bashirb ,Syed Anam Ul Haqc,Tawhid Amin d,Asif Rafiq e,Mudasir Ali a,Juliana Heloisa Pinê Américo-Pinheiro f g,Farooq Sher (2022) https://ezproxyucor.unicordoba.edu.co:2129/10.1016/j.chemosphere.2022.134788 | |
dc.relation.references | Shweta Jha,4 - Progress, prospects, and challenges of genetic engineering in phytoremediation,Editor(s): Vimal Chandra Pandey, Vijai Singh,Bioremediation of Pollutants,Elsevier,2020,Pages 57-123,ISBN 9780128190258, https://doi.org/10.1016/B978-0-12-819025-8.00004-1. | |
dc.relation.references | Singh, H., Pant, G. Fitorremediación: enfoque ecológico basado en bajos insumos para un medio ambiente sostenible. Appl Water Sci 13 , 85 (2023). https://doi.org/10.1007/s13201-023-01898-2 | |
dc.relation.references | Siti Rozaimah Sheikh Abdullah, Israa Abdulwahab Al-Baldawi, Asia Fadhile Almansoory, Ipung Fitri Purwanti, Nadya Hussin Al-Sbani, Siti Shilatul Najwa Sharuddin, Plant-assisted remediation of hydrocarbons in water and soil: Application, mechanisms, challenges and opportunities,Chemosphere,Volume 247,2020,125932,ISSN 0045-6535, https://doi.org/10.1016/j.chemosphere.2020.125932. | |
dc.relation.references | Songlin Zhang, Xueting Yin, Muhammad Arif, Shanshan Chen, Maohua Ma, Kai Zhu, Qiao Chen, Shengjun Wu, Changxiao Li,Strategy matters: Phytoremediation potential of native halophytes is jointly associated with their distinct salt tolerances,Journal of Cleaner Production, Volume 425,2023,139060,ISSN 0959-6526, https://doi.org/10.1016/j.jclepro.2023.139060. | |
dc.relation.references | Su, R.; Wang, Y.; Huang, S.; Chen, R.; Wang, J. Solicitud de restauración ecológica de suelos contaminados: fitorremediación. En t. J. Medio Ambiente. Res. Salud Pública 2022, 19, 13124. https://doi.org/10.3390/ijerph192013124 | |
dc.relation.references | Varsha Mudgal,Milán Raninga,Dhaval Patel,Dipak Ankolia,Anurag Mudgal (2023) Una revisión sobre Fitorremediación: método sostenible para la eliminación de metales pesados https://doi.org/10.1016/j.matpr.2022.11.261 | |
dc.relation.references | Vega, Y. y Callejas, M. (2020). Compuestos inorgánicos en el ambiente. Secuencia de enseñanza y aprendizaje (SEA) para desarrollar pensamiento crítico en su aprendizaje. Tecné, Episteme y Didaxis: TED,48, 181-202. https://doi.org/10.17227/ted.num48-10926 | |
dc.relation.references | Velasco Quiñonez, J. ., Morales Achilie, P. ., Castro Klinger, E. ., & Cruel Angulo, J. . (2022). La contaminación ambiental como compromiso social: una reflexión interdisciplinaria. Sapienza: Revista Internacional de Estudios Interdisciplinarios , 3 (2), 387–401. https://doi.org/10.51798/sijis.v3i2.346 | |
dc.relation.references | Vera, A., & Moreira, T. (2021). Entorno familiar de personas con discapacidad: una intervención desde el Trabajo Social.Revista Scientific, 6(21), 21-39, e-ISSN: 2542-2987. Recuperado de: https://doi.org/10.29394/Scientific.issn.2542-2987.2021.6.21.1.21-39 | |
dc.relation.references | Vijendra Shah, Achlesh Daverey, Phytoremediation: A multidisciplinary approach to clean up heavy metal contaminated soil,Environmental Technology & Innovation,Volume 18,2020,100774,ISSN 2352-1864, https://doi.org/10.1016/j.eti.2020.100774. | |
dc.relation.references | Vizuete-García, Ricardo Abel, Pascual-Barrera, Alina Eugenia, Taco-Taco, Carlos Wilfrido, & Morales-Padilla, María Monserrath. (2020). Biorremediación de suelos contaminados con hidrocarburos a base de bacterias utilizadas como bioproductos. Revista Lasallista de Investigación , 17 (1), 177-187. Publicación electrónica del 31 de enero de 2021. https://doi.org/10.22507/rli.v17n1a19 | |
dc.relation.references | Weicong Wang a , Shuangqi Wu a , Xueqing Sui a , Shuiping Cheng (2024) Phytoremediation of contaminated sediment combined with biochar: Feasibility, challenges and perspectives https://doi.org/10.1016/j.jhazmat.2023.133135 | |
dc.relation.references | Wetle, R., Bensko, B., Johnson, K., Sweat, K., Cahill, T., 2020. Uptake of uranium into desert plants in an abandoned uranium mine and its implications for phytostabilization strategies. https://doi.org/10.1016/j.jenvrad.2020.106293 | |
dc.relation.references | Wildlife vía, (2020) Degradation has caused more damage than deforestation in Amazonia. https://www.semana.com/impacto/articulo/amazonia-la-degradacion-ha-causado-mas-dano-que-la-deforestacion/55814/ | |
dc.relation.references | Xu Chen, Chaoyu Sun, Qian Zhang, Xinyi Jiang, Chenjing Liu, Hai Lin, Bing Li,Selected rhizobacteria facilitated phytoremediation of barren and heavy metal contaminated gold mine tailings by Festuca arundinacea,Chemosphere,Volume 337,2023,139297,ISSN 0045-6535, https://doi.org/10.1016/j.chemosphere.2023.139297. | |
dc.relation.references | Yan A, Wang Y, Tan SN, Mohd Yusof ML, Ghosh S and Chen Z. (2020). Phytoremediation: A Promising Approach for Revegetation of Heavy Metal-Polluted Land. Front. Plant Sci. 11:359. doi: 10.3389/fpls.2020.00359 https://www.frontiersin.org/articles/10.3389/fpls.2020.00359/full | |
dc.relation.references | Yang B, Liang Y, Xiao Y, Fang J (2020) Perspectiva de la fitorremediación combinada con otros enfoques para la remediación de suelos contaminados con metales pesados. Environ Sci Pollut Res 27:16069–16085 | |
dc.relation.references | Zezhi Peng, Bin Zhang, Diwei Wang, Xinyi Niu, Jian Sun, Hongmei Xu, Junji Cao,Zhenxing Shen,Application of machine learning in atmospheric pollution research: Astate-of-art review,Science of The Total Environment,Volume 910,2024,168588,ISSN 0048-9697, https://doi.org/10.1016/j.scitotenv.2023.168588 | |
dc.rights | Copyright Universidad de Córdoba, 2024 | |
dc.rights.accessrights | info:eu-repo/semantics/embargoedAccess | |
dc.rights.coar | http://purl.org/coar/access_right/c_f1cf | |
dc.rights.license | Atribución-NoComercial-SinDerivadas 4.0 Internacional (CC BY-NC-ND 4.0) | |
dc.rights.uri | https://creativecommons.org/licenses/by-nc-nd/4.0/ | |
dc.subject.keywords | Biotechnology | |
dc.subject.keywords | Phytoremediation | |
dc.subject.keywords | Microorganisms | |
dc.subject.keywords | Environmental pollution | |
dc.subject.proposal | Biotecnología | |
dc.subject.proposal | Fitorremediación | |
dc.subject.proposal | Microorganismos | |
dc.subject.proposal | Contaminación ambiental | |
dc.title | Biotecnología aplicada a la fitorremediación como herramienta ecológica para el control de contaminantes orgánicos e inorgánicos | spa |
dc.type | Trabajo de grado - Pregrado | |
dc.type.coar | http://purl.org/coar/resource_type/c_7a1f | |
dc.type.coarversion | http://purl.org/coar/version/c_ab4af688f83e57aa | |
dc.type.content | Text | |
dc.type.driver | info:eu-repo/semantics/bachelorThesis | |
dc.type.version | info:eu-repo/semantics/acceptedVersion | |
dspace.entity.type | Publication |
Archivos
Bloque de licencias
1 - 1 de 1
No hay miniatura disponible
- Nombre:
- license.txt
- Tamaño:
- 15.18 KB
- Formato:
- Item-specific license agreed upon to submission
- Descripción: