Bacterias multirresistentes en ecosistemas aislados, ¿existe alternativa terapéutica?

Introducción:La resistencia bacteriana genera un grave problema de salud debido al uso indiscriminado de antibióticos, esto ha causado la propagación de bacterias que codifican para la resistenciaObjetivo:Describir los diferentes genes que codifican para la resistencia bacteriana, metales pesados y...

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Published in:Journal of Hazardous Materials
Main Authors: López, Diana Paola, Tibaduiza Ballesteros, Valentina, Angarita Merchán, Maritza
Other Authors: Universidad de Boyacà
Format: Article in Journal/Newspaper
Language:Spanish
Published: Centro Provincial de Información de Ciencias Médicas de Mayabeque. 2021
Subjects:
Online Access:http://revcmhabana.sld.cu/index.php/rcmh/article/view/1622
id ftjmedimay:oai:www.medimay.sld.cu:article/1622
record_format openpolar
institution Open Polar
collection MediMay (Universidad Virtual de Salud) (E-Journal)
op_collection_id ftjmedimay
language Spanish
topic antibacterianos
farmacorresistencia bacteriana
genes bacterianos
metales pesados
regiones antárticas
océano
spellingShingle antibacterianos
farmacorresistencia bacteriana
genes bacterianos
metales pesados
regiones antárticas
océano
López, Diana Paola
Tibaduiza Ballesteros, Valentina
Angarita Merchán, Maritza
Bacterias multirresistentes en ecosistemas aislados, ¿existe alternativa terapéutica?
topic_facet antibacterianos
farmacorresistencia bacteriana
genes bacterianos
metales pesados
regiones antárticas
océano
description Introducción:La resistencia bacteriana genera un grave problema de salud debido al uso indiscriminado de antibióticos, esto ha causado la propagación de bacterias que codifican para la resistenciaObjetivo:Describir los diferentes genes que codifican para la resistencia bacteriana, metales pesados y la nueva alternativa terapéutica para las bacterias multirresistentes Métodos: Se realizó una búsqueda de información en artículos en español, inglés y portugués relacionados con resistencia bacteriana en las bases de datos, Science Direct, Redalyc; Google Scholar, NCBI; Pubmed, Pro-quest Dialnet y Lilacs.Conclusiones: Se han descrito genes que codifican para farmacorresistencia a betalactámicos, macrólidos, aminoglucósidos, glicopéptido, se ha definido otro tipo de resistencia bacteriana hacia otros compuestos como a los metales pesados, se crean antibióticos para combatir bacterias multirresistentes, el cefiderocol, que actúa en la síntesis de las bacterias Gram negativas.
author2 Universidad de Boyacà
format Article in Journal/Newspaper
author López, Diana Paola
Tibaduiza Ballesteros, Valentina
Angarita Merchán, Maritza
author_facet López, Diana Paola
Tibaduiza Ballesteros, Valentina
Angarita Merchán, Maritza
author_sort López, Diana Paola
title Bacterias multirresistentes en ecosistemas aislados, ¿existe alternativa terapéutica?
title_short Bacterias multirresistentes en ecosistemas aislados, ¿existe alternativa terapéutica?
title_full Bacterias multirresistentes en ecosistemas aislados, ¿existe alternativa terapéutica?
title_fullStr Bacterias multirresistentes en ecosistemas aislados, ¿existe alternativa terapéutica?
title_full_unstemmed Bacterias multirresistentes en ecosistemas aislados, ¿existe alternativa terapéutica?
title_sort bacterias multirresistentes en ecosistemas aislados, ¿existe alternativa terapéutica?
publisher Centro Provincial de Información de Ciencias Médicas de Mayabeque.
publishDate 2021
url http://revcmhabana.sld.cu/index.php/rcmh/article/view/1622
long_lat ENVELOPE(159.500,159.500,-77.883,-77.883)
ENVELOPE(-59.650,-59.650,-62.417,-62.417)
geographic Crean
Inglés
geographic_facet Crean
Inglés
genre Advances in Polar Science
Antarctic Science
Arctic
Polar Science
Polar Science
genre_facet Advances in Polar Science
Antarctic Science
Arctic
Polar Science
Polar Science
op_source Medimay; Vol. 28, No. 2 (2021); 259-272
2520-9078
op_relation http://revcmhabana.sld.cu/index.php/rcmh/article/view/1622/pdf_319
Dirección Nacional del antártico Instituto antártico argentino. Programa Antártico Argentino Plan Anual Antártico 2018-2019 [Internet]. Argentina: Dirección nacional del Antártico Instituto antártico argentino; 2019 [citado 21 Nov 2021]. Disponible en: https://cancilleria.gob.ar/userfiles/ut/paa_2018_2019_0.pdf
Brat K, Sedlacek I, Sevcikova A, Merta Z, Laska K, Sevcik P. Imported anthropogenic bacteria may survive the Antarctic winter and introduce new genes into local bacterial communities. Pol Polar Res [Internet]. 2016 [citado 21 Nov 2021];37(1):89–104. Disponible en: https://journals.pan.pl/Content/99624/PDF/10183_Volume37_Issue1_05_paper.pdf?handler=pdf
Michaud L, Giudice A, Mysara M, Monsieurs P, Raffa C, Leys N, et al. Snow surface microbiome on the high antarctic plateau (DOME C). PLoS ONE [Internet]. 2014 [citado 21 Nov 2021];9(8):1–12. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4125213/
Calisto N, Gómez C, Muñoz P. Resistencia a antibióticos en bacterias recolectadas en agua de mar en las proximidades de bases antárticas. An Inst Patagon [Internet]. 2019 [citado 21 Nov 2021];46(3):29-39. Disponible en: https://scielo.conicyt.cl/scielo.php?script=sci_arttext&pid=S0718-686X2018000300029#:~:text=La%20presencia%20de%20resistencia%20a,con%20la%20proximidades%20del%20emisario.
Hatosy S, Martiny A. The Ocean as a Global Reservoir of Antibiotic Resistance Genes. Appl Environ Microbiol [Internet]. 2015 [citado 21 Nov 2021];81(21):7593-99. Disponible en: https://aem.asm.org/content/aem/81/21/7593.full-text.pdf
Rabbia V, Bello H, Jiménez S, Quezada M, Domínguez M, Vergara L, et al. Antibiotic resistance in Escherichia coli strains isolated from Antarctic bird feces, water from inside a wastewater treatment plant, and seawater samples collected in the Antarctic Treaty area. Polar Sci [Internet]. 2016 [citado 21 Nov 2021];(2):123–31. Disponible en: https://reader.elsevier.com/reader/sd/pii/S1873965216300160?token=D2D8979C0C8A89D6FAE803C0568489D08007638036AE963E7734440500B2A0B7366BAD941BBFCB752FDE5426B3D53653&originRegion=us-east-1&originCreation=20210423131249
Power L, Samuel A, Smith J, Stark S, Gillings R, Gordon M. Escherichia coli out in the cold: Dissemination of human-derived bacteria into the Antarctic microbiome. Environ Pollut [Internet]. 2016 [citado 21 Nov 2021];215:58–65. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S0269749116302792
Hernández F, Calısto N, Gómez C, Gómez M, Ferrer J, González G, et al. Occurrence of antibiotics and bacterial resistance in wastewater and sea water from the Antarctic. J Hazard Mater[Internet]. 2019 [citado 21 Nov 2021];363:447–56. Disponible en: https://doi.org/10.1016/j.jhazmat.2018.07.027
Hernández J, González D. Anthropogenic antibiotic resistance genes mobilization to the polar regions. Infect Ecol Epidemiol [Internet]. 2016 [citado 21 Nov 2021];6(1):32112. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5149653/pdf/IEE-6-32112.pdf
Tan L, Li L, Ashbolt N, Wang X, Cui Y, Zhu X, et al. Arctic antibiotic resistance gene contamination, a result of anthropogenic activities and natural origin. Sci Total Environ [Internet]. 2018 [citado 21 Nov 2021];21:1176–84.Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S0048969717328127?via%3Dihub
Laganà P, Caruso G, Corsi I, Bergami E, Venuti V, Majolino D, et al. Do plastics serve as a possible vector for the spread of antibiotic resistance? First insights from bacteria associated to a polystyrene piece from King George Island (Antarctica). Int J Hyg Envir Heal [Internet]. 2019 [citado 21 Nov 2021];222(1):89–100. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S1438463918304255
Cerdà M, Moré E, Ayats T, Aguilera M, Muñoz S, Antilles N, et al. Do humans spread zoonotic enteric bacteria in Antarctica? Sci Total Environ [Internet]. 2019 [citado 21 Nov 2021];654:190–6. Disponible en: https://repositori.irta.cat/bitstream/handle/20.500.12327/668/Cerd%C3%A0-Cu%C3%A9llar_Do%20Humans_2019.pdf?sequence=1&isAllowed=y
Espejo W, Sandoval M, Celis J, López J, Riquelme F. Posibles implicancias ambientales debidio a la resistencia a Metales Pesados en bacterias aisladas de excretas del pingüino de Humboldt. Interciencia [Internet]. 2017 [citado 21 Nov 2021];42(5):324–30. Disponible en: https://www.redalyc.org/pdf/339/33952810010.pdf
Oromí J. Resistencia bacteriana a los antibióticos. Med Integral [Internet].2014 [citado 21 Nov 2021];36(10):367–405. Disponible en: https://www.elsevier.es/es-revista-medicina-integral-63-pdf-10022180
Acevedo R, Severiche C, Jaimes J. Bacterias resistentes a antibióticos en ecosistemas acuáticos. Rev P+L [Internet]. 2016 [citado 21 Nov 2021];10(2):160–72. Disponible en: http://www.scielo.org.co/pdf/pml/v10n2/v10n2a15.pdf
Kazmierczak K, Tsuji M, Wise G, Hackel M, Yamano Y, Echols R, et al. In vitro activity of cefiderocol, a siderophore cephalosporin, against a recent collection of clinically relevant carbapenem-non-susceptible Gram-negative bacilli, including serine carbapenemase- and metallo-β-lactamase-producing isolates (SIDERO-WT-2014). Int J Antimicrob Agents [Internet]. 2019 [citado 21 Nov 2021];53(2):177–84 .Disponible en: https://www.sciencedirect.com/science/article/pii/S0924857918302991?via%3Dihub
Okubo T, Ae R, Noda J, Iizuka Y, Usui M, Tamura Y. Detection of the sul2–strA–strB gene cluster in an ice core from Dome Fuji Station, East Antarctica. J Glob Anti microb Resist [Internet]. 2019 [citado 21 Nov 2021];17(1):72-8. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S2213716518302212
Pérez-Cano HJ, Robles-Contreras A. Aspectos básicos de los mecanismos de resistencia bacteriana. Rev Med MD [Internet]. 2013 [citado 21 Nov 2021];4.5(3):186-91. Disponible en: https://www.medigraphic.com/pdfs/revmed/md-2013/md133i.pdf
Van Goethem W, Pierneef R, Bezuidt I, Van De Peer Y, Cowan A, Makhalanyane P. A reservoir of “historical” antibiotic resistance genes in remote pristine Antarctic soils. Microbiome [Internet]. 2018 [citado 21 Nov 2021];6(40):1–12. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5824556/
McCann M, Christgen B, Roberts A, Su Q, Arnold E, Gray D, et al. Understanding drivers of antibiotic resistance genes in High Arctic soil ecosystems. Environ Int [Internet]. 2019 [citado 21 Nov 2021];125:497–504. Disponible en: https://reader.elsevier.com/reader/sd/pii/S016041201832587X?token=670EA7B0F7CE269CC616F7007964ABB40AD77AF24F35790E1AC7511082962BDC85B1415A62060BE6959D7E64127B08DA
Rahman H, Sakamoto Q, Kitamura I, Nonaka L, Suzuki S. Diversity of tetracycline-resistant bacteria and resistance gene tet(M) in fecal microbial community of Adélie penguin in Antarctica. Polar Biol [Internet]. 2015 [citado 21 Nov 2021];38(10):1775–81. Disponible en: https://www.readcube.com/articles/10.1007/s00300-015-1732-x
Retamal P, Llanos S, Moreno L, López J, Vianna J, Hernández J, Medina G, Castañeda F, Fresno M, González D. Isolation of drug resistant Salmonella enterica serovar enteritidis strains in gentoo penguins from Antarctica [Internet]. Santiago, Chile: Universidad de Chile; 2017 [citado 20 Ago 2021]. Disponible en: http://repositorio.uchile.cl/handle/2250/148543 http://repositorio.uchile.cl/bitstream/handle/2250/148543/Isolation-of-drug-resistant-Salmonella-enterica.pdf?sequence=1&isAllowed=y
Santestevan A, de Angelis Zvoboda D, Prichula J, Pereira R, Wachholz R, Cardoso A, et al. Antimicrobial resistance and virulence factor gene profiles of Enterococcus spp. isolates from wild Arctocephalus australis (South American fur seal) and Arctocephalus tropicalis (Subantarctic fur seal). World J Microbiol Biotechnol [Internet]. 2015 [citado 21 Nov 2021];31(12):1935–46. Disponible en: https://link.springer.com/article/10.1007/s11274-015-1938-7
Pantüček R, Sedláček I, Indráková A, Vrbovská V, Mašlaňová I, Kovařovic V, et al. Staphylococcus edaphicus sp. nov., isolated in Antarctica, harbors the mecC gene and genomic islands with a suspected role in adaptation to extreme environments. Appl Environ Microbiol [Internet]. 2018 [citado 21 Nov 2021];84(2):e01746-17. Disponible en: https://aem.asm.org/content/aem/84/2/e01746-17.full.pdf
Wang F, Stedtfeld D, Kim S, Chai B, Yang L, Stedtfeld M, et al. Influence of soil characteristics and proximity to antarctic research stations on abundance of antibiotic resistance genes in soils. Environ Sci Technol [Internet]. 2016 [citado 21 Nov 2021];50(23):12621–29. Disponible en: https://pubs.acs.org/doi/pdf/10.1021/acs.est.6b02863
Antelo V, Romero H, Batista S. Detection of integron integrase genes on King George Island, Antarctica. Advances in Polar Science [Internet]. 2015 [citado 21 Nov 2021];26(1):30–7. Disponible en: http://www.aps-polar.org/paper/2015/26/01/A20150104/full
Stark S, Corbett A, Dunshea G, Johnstone G, King C, Mondon A, et al. The environmental impact of sewage and wastewater outfalls in Antarctica: An example from Davis station, East Antarctica Water Res [Internet]. 2016 [citado 21 Nov 2021];105:602-14. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S0043135416307035?via%3Dihub
Rodriguez S, Chamorro S, Marti E, Huerta B, Gros M, Sànchez A, et al. Occurrence of antibiotics and antibiotic resistance genes in hospital and urban wastewaters and their impact on the receiving river. Water Res [Internet]. 2015 [citado 21 Nov 2021];69(1):234–42. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S004313541400791X
Vindel A, Cercenado E. Staphylococcus aureus resistentes a la meticilina portadores del gen mecC: ¿un problema emergente? Enferm Infecc Microbiol Clin [Internet]. 2016 [citado 21 Nov 2021];34(5):277–79. Disponible en: https://www.elsevier.es/es-revista-enfermedades-infecciosas-microbiologia-clinica-28-pdf-S0213005X16000513
López D, Torres I, Prada F. Genes de resistencia en bacilos Gram negativos: Impacto en la salud pública en Colombia. Univ Salud [Internet]. 2016 [citado 21 Nov 2021];18(1):190–202. Disponible en: http://www.scielo.org.co/pdf/reus/v18n1/v18n1a18.pdf
Pakzad I, Zayyen M, Taherikalani M, Boustanshenas M, Lari R. Contribution of AcrAB efflux pump to ciprofloxacin resistance in Klebsiella pneumoniae isolated from burn patients. GMS Hygiene and Infection Control [Internet]. 2013 [citado 21 Nov 2021];8(2):1–6. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3850228/pdf/HIC-08-15.pdf
Troncoso C, Pavez M, Santos A, Salazar R, Barrientos L. Implicancias Estructurales y Fisiológicas de la Célula Bacteriana en los Mecanismos de Resistencia Antibiótica. Int J Morphol [Internet]. 2018 [citado 21 Nov 2021];35(4):1214–23. Disponible en: https://scielo.conicyt.cl/pdf/ijmorphol/v35n4/0717-9502-ijmorphol-35-04-01214.pdf
Na G, Zhang W, Zhou S, Gao H, Lu Z, Wu X, et al. Sulfonamide antibiotics in the Northern Yellow Sea are related to resistant bacteria: Implications for antibiotic resistance genes. Mar Pollut Bull [Internet]. 2014 [citado 21 Nov 2021];84(1-2):70-5. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S0025326X14003178?via%3Dihub
Sellera P, Fernandes R, Moura Q, Souza A, Cerdeira L & Lincopan N. Draft genome sequence of Enterobacter cloacae ST520 harbouring blaKPC-2, blaCTX-M-15 and blaOXA-17 isolated from coastal waters of the South Atlantic Ocean. J Glob Antimicrob Resist [Internet]. 2017 [citado 21 Nov 2021];10:279–80. https://www.sciencedirect.com/science/article/abs/pii/S2213716517301455?via%3Dihub
Jaktaji R, Ebadi R. Study the expression of marA gene in ciprofloxacin and tetracycline resistant mutants of Esherichia coli. Iran J Pharm Sci [Internet]. 2013 [citado 21 Nov 2021];12(4):923–8. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3920692/pdf/ijpr-12-923.pdf
Salgado I, Carballo M, Martínez A, Cruz M, Durán C. Interacción de aislados bacterianos rizosféricos con metales de importancia ambiental. Tecnol Cienc Agua [Internet]. 2012 [citado 21 Nov 2021];3(3): 83-95. Disponible en: http://www.scielo.org.mx/pdf/tca/v3n3/v3n3a6.pdf
González M, Urtubia R, Del Campo K, Lavín P, Wong C, Cárdenas A., et al. Antibiotic and metal resistance of cultivable bacteria in the Antarctic sea urchin. Antarct Sci [Internet]. 2016 [citado 21 Nov 2021];28(4):261-8. Disponible en: https://www.cambridge.org/core/journals/antarctic-science/article/abs/antibiotic-and-metal-resistance-of-cultivable-bacteria-in-the-antarctic-sea-urchin/C4386D8F81EC557B3DBB6C54CF6EE6D2
Mangano S, Michaud L, Caruso C, Lo Giudice A. Metal and antibiotic resistance in psychrotrophic bacteria associated with the Antarctic sponge Hemigellius pilosus (Kirkpatrick, 1907). Polar Biol [Internet]. 2014 [citado 21 Nov 2021];8(1):227–35. Disponible en: https://link.springer.com/article/10.1007/s00300-013-1426-1
Rodríguez Rojas F, Díaz Vásquez W, Undabarrena A, Muñoz Díaz P, Arenas F, Vásquez C. Mercury-mediated cross-resistance to tellurite in Pseudomonas spp. isolated from the Chilean Antarctic territory. Metallomics [Internet]. 2016 [citado 21 Nov 2021];8(1):108-17. Dsiponible en: https://pubs.rsc.org/en/content/articlelanding/2016/mt/c5mt00256g#!divAbstract
Romaniuk K, Ciok A, Decewicz P, Uhrynowski W, Budzik K, Nieckarz M, et al. Insight into heavy metal resistome of soil psychrotolerant bacteria originating from King George Island (Antarctica). Polar Biol [Internet]. 2018 [citado 21 Nov 2021];41(7):1319–33. Disponible en: https://link.springer.com/content/pdf/10.1007/s00300-018-2287-4.pdf
Cho Y, Cho A, Hong G, Choi G, Kim S. Draft Genome Sequence of Arthrobacter oryzae TNBS02, a Bacterium Containing Heavy Metal Resistance Genes, Isolated from Soil of Antarctica. Microbiol. Resour Announc [Internet]. 2019 [citado 21 Nov 2021];8(4):01–18. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6346191/pdf/MRA.01501-18.pdf
Rodríguez F, Tapia P, Castro E, Undabarrena A, Muñoz P, Arenas M, et al. Draft Genome Sequence of a Multi-Metal Resistant Bacterium Pseudomonas putida ATH-43 Isolated from Greenwich Island, Antarctica. Front Microbiol [Internet]. 2016 [citado 21 Nov 2021];7:1–5. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5099816/pdf/fmicb-07-01777.pdf
Zhang G, Yang Y, Wang L. Alterery throbacter aurantiacus sp. nov., isolated from deep-sea sediment. ANTON LEEUW INT J G [Internet]. 2016 [citado 21 Nov 2021];64(1):116–21. Disponible en: https://link.springer.com/article/10.1007/s10482-016-0726-1
Wu H, Cheng H, Zhou P, Huo Y, Wang S, Xu X. Complete genome sequence of the heavy metal resistant bacterium Altererythrobacter atlanticus 26DY36T, isolated from deep-sea sediment of the North Atlantic Mid-ocean ridge. Mar Genomics [Internet]. 2015 [citado 21 Nov 2021];24(3):289-92. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S1874778715300374
Vallejo M, Ledesma P, Ibañez C, Aguirre L, Parada R, Vallejo B, et al. Resistencia a metales pesados, antibióticos y factores de virulencia en cepas de Enterococcus aisladas en la provincia del Chubut, Argentina. Rev Soc Ven Microbiol [Internet]. 2016 [citado 21 Nov 2021];36(1):16–22. Disponible en: http://ve.scielo.org/pdf/rsvm/v36n1/art05.pdf
Samanta A, Bera P, Khatun M, Sinha C, Pal P, Lalee A & Mandal A. An investigation on heavy metal tolerance and antibiotic resistance properties of bacterial strain Bacillus sp. isolated from municipal waste. J Microbiol Biotechn. 2012[citado 21 Nov 2021];2(1):178-189. Disponible en: https://www.researchgate.net/publication/258885867_An_investigation_on_heavy_metal_tolerance_and_antibiotic_resistance_properties_of_bacterial_strain_Bacillus_sp_isolated_from_municipal_waste/link/00b495295b1c54a851000000/download
Ito A, Nishikawa T, Matsumoto S, Yoshizawa H, Sato T, Nakamura R, et al. Siderophore cephalosporin cefiderocol utilizes ferric iron transporter systems for antibacterial activity against Pseudomonas aeruginosa. Antimicrob Agents Chemother [Internet]. 2016 [citado 21 Nov 2021];60(12):7396-401. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5119021/pdf/zac7396.pdf
Ito A, Sato T, Ota M, Takemura M, Nishikawa T, Toba S, et al. In vitro antibacterial properties of cefiderocol, a novel siderophore cephalosporin, against gram-negative bacteria. Antimicrob Agents Chemother[Internet]. 2018 [citado 21 Nov 2021];62(1):4–17. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5740388/pdf/e01454-17.pdf
Wright H, Bonomo A, Paterson L. New agents for the treatment of infections with Gram-negative bacteria: restoring the miracle or false dawn?. Clin Microbiol Infect [Internet]. 2017 [citado 21 Nov 2021];23(10):704–12. Disponible en: https://www.clinicalmicrobiologyandinfection.com/article/S1198-743X(17)30495-0/fulltext
op_rights Copyright (c) 2021 Diana Paola López Velandia,Valentina Tibaduiza Ballesteros,Maritza Angarita Merchán
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spelling ftjmedimay:oai:www.medimay.sld.cu:article/1622 2023-05-15T13:05:29+02:00 Bacterias multirresistentes en ecosistemas aislados, ¿existe alternativa terapéutica? López, Diana Paola Tibaduiza Ballesteros, Valentina Angarita Merchán, Maritza Universidad de Boyacà 2021-06-30 application/pdf http://revcmhabana.sld.cu/index.php/rcmh/article/view/1622 spa spa Centro Provincial de Información de Ciencias Médicas de Mayabeque. http://revcmhabana.sld.cu/index.php/rcmh/article/view/1622/pdf_319 Dirección Nacional del antártico Instituto antártico argentino. Programa Antártico Argentino Plan Anual Antártico 2018-2019 [Internet]. Argentina: Dirección nacional del Antártico Instituto antártico argentino; 2019 [citado 21 Nov 2021]. Disponible en: https://cancilleria.gob.ar/userfiles/ut/paa_2018_2019_0.pdf Brat K, Sedlacek I, Sevcikova A, Merta Z, Laska K, Sevcik P. Imported anthropogenic bacteria may survive the Antarctic winter and introduce new genes into local bacterial communities. Pol Polar Res [Internet]. 2016 [citado 21 Nov 2021];37(1):89–104. Disponible en: https://journals.pan.pl/Content/99624/PDF/10183_Volume37_Issue1_05_paper.pdf?handler=pdf Michaud L, Giudice A, Mysara M, Monsieurs P, Raffa C, Leys N, et al. Snow surface microbiome on the high antarctic plateau (DOME C). PLoS ONE [Internet]. 2014 [citado 21 Nov 2021];9(8):1–12. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4125213/ Calisto N, Gómez C, Muñoz P. Resistencia a antibióticos en bacterias recolectadas en agua de mar en las proximidades de bases antárticas. An Inst Patagon [Internet]. 2019 [citado 21 Nov 2021];46(3):29-39. Disponible en: https://scielo.conicyt.cl/scielo.php?script=sci_arttext&pid=S0718-686X2018000300029#:~:text=La%20presencia%20de%20resistencia%20a,con%20la%20proximidades%20del%20emisario. Hatosy S, Martiny A. The Ocean as a Global Reservoir of Antibiotic Resistance Genes. Appl Environ Microbiol [Internet]. 2015 [citado 21 Nov 2021];81(21):7593-99. Disponible en: https://aem.asm.org/content/aem/81/21/7593.full-text.pdf Rabbia V, Bello H, Jiménez S, Quezada M, Domínguez M, Vergara L, et al. Antibiotic resistance in Escherichia coli strains isolated from Antarctic bird feces, water from inside a wastewater treatment plant, and seawater samples collected in the Antarctic Treaty area. Polar Sci [Internet]. 2016 [citado 21 Nov 2021];(2):123–31. Disponible en: https://reader.elsevier.com/reader/sd/pii/S1873965216300160?token=D2D8979C0C8A89D6FAE803C0568489D08007638036AE963E7734440500B2A0B7366BAD941BBFCB752FDE5426B3D53653&originRegion=us-east-1&originCreation=20210423131249 Power L, Samuel A, Smith J, Stark S, Gillings R, Gordon M. Escherichia coli out in the cold: Dissemination of human-derived bacteria into the Antarctic microbiome. Environ Pollut [Internet]. 2016 [citado 21 Nov 2021];215:58–65. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S0269749116302792 Hernández F, Calısto N, Gómez C, Gómez M, Ferrer J, González G, et al. Occurrence of antibiotics and bacterial resistance in wastewater and sea water from the Antarctic. J Hazard Mater[Internet]. 2019 [citado 21 Nov 2021];363:447–56. Disponible en: https://doi.org/10.1016/j.jhazmat.2018.07.027 Hernández J, González D. Anthropogenic antibiotic resistance genes mobilization to the polar regions. Infect Ecol Epidemiol [Internet]. 2016 [citado 21 Nov 2021];6(1):32112. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5149653/pdf/IEE-6-32112.pdf Tan L, Li L, Ashbolt N, Wang X, Cui Y, Zhu X, et al. Arctic antibiotic resistance gene contamination, a result of anthropogenic activities and natural origin. Sci Total Environ [Internet]. 2018 [citado 21 Nov 2021];21:1176–84.Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S0048969717328127?via%3Dihub Laganà P, Caruso G, Corsi I, Bergami E, Venuti V, Majolino D, et al. Do plastics serve as a possible vector for the spread of antibiotic resistance? First insights from bacteria associated to a polystyrene piece from King George Island (Antarctica). Int J Hyg Envir Heal [Internet]. 2019 [citado 21 Nov 2021];222(1):89–100. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S1438463918304255 Cerdà M, Moré E, Ayats T, Aguilera M, Muñoz S, Antilles N, et al. Do humans spread zoonotic enteric bacteria in Antarctica? Sci Total Environ [Internet]. 2019 [citado 21 Nov 2021];654:190–6. Disponible en: https://repositori.irta.cat/bitstream/handle/20.500.12327/668/Cerd%C3%A0-Cu%C3%A9llar_Do%20Humans_2019.pdf?sequence=1&isAllowed=y Espejo W, Sandoval M, Celis J, López J, Riquelme F. Posibles implicancias ambientales debidio a la resistencia a Metales Pesados en bacterias aisladas de excretas del pingüino de Humboldt. Interciencia [Internet]. 2017 [citado 21 Nov 2021];42(5):324–30. Disponible en: https://www.redalyc.org/pdf/339/33952810010.pdf Oromí J. Resistencia bacteriana a los antibióticos. Med Integral [Internet].2014 [citado 21 Nov 2021];36(10):367–405. Disponible en: https://www.elsevier.es/es-revista-medicina-integral-63-pdf-10022180 Acevedo R, Severiche C, Jaimes J. Bacterias resistentes a antibióticos en ecosistemas acuáticos. Rev P+L [Internet]. 2016 [citado 21 Nov 2021];10(2):160–72. Disponible en: http://www.scielo.org.co/pdf/pml/v10n2/v10n2a15.pdf Kazmierczak K, Tsuji M, Wise G, Hackel M, Yamano Y, Echols R, et al. In vitro activity of cefiderocol, a siderophore cephalosporin, against a recent collection of clinically relevant carbapenem-non-susceptible Gram-negative bacilli, including serine carbapenemase- and metallo-β-lactamase-producing isolates (SIDERO-WT-2014). Int J Antimicrob Agents [Internet]. 2019 [citado 21 Nov 2021];53(2):177–84 .Disponible en: https://www.sciencedirect.com/science/article/pii/S0924857918302991?via%3Dihub Okubo T, Ae R, Noda J, Iizuka Y, Usui M, Tamura Y. Detection of the sul2–strA–strB gene cluster in an ice core from Dome Fuji Station, East Antarctica. J Glob Anti microb Resist [Internet]. 2019 [citado 21 Nov 2021];17(1):72-8. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S2213716518302212 Pérez-Cano HJ, Robles-Contreras A. Aspectos básicos de los mecanismos de resistencia bacteriana. Rev Med MD [Internet]. 2013 [citado 21 Nov 2021];4.5(3):186-91. Disponible en: https://www.medigraphic.com/pdfs/revmed/md-2013/md133i.pdf Van Goethem W, Pierneef R, Bezuidt I, Van De Peer Y, Cowan A, Makhalanyane P. A reservoir of “historical” antibiotic resistance genes in remote pristine Antarctic soils. Microbiome [Internet]. 2018 [citado 21 Nov 2021];6(40):1–12. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5824556/ McCann M, Christgen B, Roberts A, Su Q, Arnold E, Gray D, et al. Understanding drivers of antibiotic resistance genes in High Arctic soil ecosystems. Environ Int [Internet]. 2019 [citado 21 Nov 2021];125:497–504. Disponible en: https://reader.elsevier.com/reader/sd/pii/S016041201832587X?token=670EA7B0F7CE269CC616F7007964ABB40AD77AF24F35790E1AC7511082962BDC85B1415A62060BE6959D7E64127B08DA Rahman H, Sakamoto Q, Kitamura I, Nonaka L, Suzuki S. Diversity of tetracycline-resistant bacteria and resistance gene tet(M) in fecal microbial community of Adélie penguin in Antarctica. Polar Biol [Internet]. 2015 [citado 21 Nov 2021];38(10):1775–81. Disponible en: https://www.readcube.com/articles/10.1007/s00300-015-1732-x Retamal P, Llanos S, Moreno L, López J, Vianna J, Hernández J, Medina G, Castañeda F, Fresno M, González D. Isolation of drug resistant Salmonella enterica serovar enteritidis strains in gentoo penguins from Antarctica [Internet]. Santiago, Chile: Universidad de Chile; 2017 [citado 20 Ago 2021]. Disponible en: http://repositorio.uchile.cl/handle/2250/148543 http://repositorio.uchile.cl/bitstream/handle/2250/148543/Isolation-of-drug-resistant-Salmonella-enterica.pdf?sequence=1&isAllowed=y Santestevan A, de Angelis Zvoboda D, Prichula J, Pereira R, Wachholz R, Cardoso A, et al. Antimicrobial resistance and virulence factor gene profiles of Enterococcus spp. isolates from wild Arctocephalus australis (South American fur seal) and Arctocephalus tropicalis (Subantarctic fur seal). World J Microbiol Biotechnol [Internet]. 2015 [citado 21 Nov 2021];31(12):1935–46. Disponible en: https://link.springer.com/article/10.1007/s11274-015-1938-7 Pantüček R, Sedláček I, Indráková A, Vrbovská V, Mašlaňová I, Kovařovic V, et al. Staphylococcus edaphicus sp. nov., isolated in Antarctica, harbors the mecC gene and genomic islands with a suspected role in adaptation to extreme environments. Appl Environ Microbiol [Internet]. 2018 [citado 21 Nov 2021];84(2):e01746-17. Disponible en: https://aem.asm.org/content/aem/84/2/e01746-17.full.pdf Wang F, Stedtfeld D, Kim S, Chai B, Yang L, Stedtfeld M, et al. Influence of soil characteristics and proximity to antarctic research stations on abundance of antibiotic resistance genes in soils. Environ Sci Technol [Internet]. 2016 [citado 21 Nov 2021];50(23):12621–29. Disponible en: https://pubs.acs.org/doi/pdf/10.1021/acs.est.6b02863 Antelo V, Romero H, Batista S. Detection of integron integrase genes on King George Island, Antarctica. Advances in Polar Science [Internet]. 2015 [citado 21 Nov 2021];26(1):30–7. Disponible en: http://www.aps-polar.org/paper/2015/26/01/A20150104/full Stark S, Corbett A, Dunshea G, Johnstone G, King C, Mondon A, et al. The environmental impact of sewage and wastewater outfalls in Antarctica: An example from Davis station, East Antarctica Water Res [Internet]. 2016 [citado 21 Nov 2021];105:602-14. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S0043135416307035?via%3Dihub Rodriguez S, Chamorro S, Marti E, Huerta B, Gros M, Sànchez A, et al. Occurrence of antibiotics and antibiotic resistance genes in hospital and urban wastewaters and their impact on the receiving river. Water Res [Internet]. 2015 [citado 21 Nov 2021];69(1):234–42. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S004313541400791X Vindel A, Cercenado E. Staphylococcus aureus resistentes a la meticilina portadores del gen mecC: ¿un problema emergente? Enferm Infecc Microbiol Clin [Internet]. 2016 [citado 21 Nov 2021];34(5):277–79. Disponible en: https://www.elsevier.es/es-revista-enfermedades-infecciosas-microbiologia-clinica-28-pdf-S0213005X16000513 López D, Torres I, Prada F. Genes de resistencia en bacilos Gram negativos: Impacto en la salud pública en Colombia. Univ Salud [Internet]. 2016 [citado 21 Nov 2021];18(1):190–202. Disponible en: http://www.scielo.org.co/pdf/reus/v18n1/v18n1a18.pdf Pakzad I, Zayyen M, Taherikalani M, Boustanshenas M, Lari R. Contribution of AcrAB efflux pump to ciprofloxacin resistance in Klebsiella pneumoniae isolated from burn patients. GMS Hygiene and Infection Control [Internet]. 2013 [citado 21 Nov 2021];8(2):1–6. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3850228/pdf/HIC-08-15.pdf Troncoso C, Pavez M, Santos A, Salazar R, Barrientos L. Implicancias Estructurales y Fisiológicas de la Célula Bacteriana en los Mecanismos de Resistencia Antibiótica. Int J Morphol [Internet]. 2018 [citado 21 Nov 2021];35(4):1214–23. Disponible en: https://scielo.conicyt.cl/pdf/ijmorphol/v35n4/0717-9502-ijmorphol-35-04-01214.pdf Na G, Zhang W, Zhou S, Gao H, Lu Z, Wu X, et al. Sulfonamide antibiotics in the Northern Yellow Sea are related to resistant bacteria: Implications for antibiotic resistance genes. Mar Pollut Bull [Internet]. 2014 [citado 21 Nov 2021];84(1-2):70-5. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S0025326X14003178?via%3Dihub Sellera P, Fernandes R, Moura Q, Souza A, Cerdeira L & Lincopan N. Draft genome sequence of Enterobacter cloacae ST520 harbouring blaKPC-2, blaCTX-M-15 and blaOXA-17 isolated from coastal waters of the South Atlantic Ocean. J Glob Antimicrob Resist [Internet]. 2017 [citado 21 Nov 2021];10:279–80. https://www.sciencedirect.com/science/article/abs/pii/S2213716517301455?via%3Dihub Jaktaji R, Ebadi R. Study the expression of marA gene in ciprofloxacin and tetracycline resistant mutants of Esherichia coli. Iran J Pharm Sci [Internet]. 2013 [citado 21 Nov 2021];12(4):923–8. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3920692/pdf/ijpr-12-923.pdf Salgado I, Carballo M, Martínez A, Cruz M, Durán C. Interacción de aislados bacterianos rizosféricos con metales de importancia ambiental. Tecnol Cienc Agua [Internet]. 2012 [citado 21 Nov 2021];3(3): 83-95. Disponible en: http://www.scielo.org.mx/pdf/tca/v3n3/v3n3a6.pdf González M, Urtubia R, Del Campo K, Lavín P, Wong C, Cárdenas A., et al. Antibiotic and metal resistance of cultivable bacteria in the Antarctic sea urchin. Antarct Sci [Internet]. 2016 [citado 21 Nov 2021];28(4):261-8. Disponible en: https://www.cambridge.org/core/journals/antarctic-science/article/abs/antibiotic-and-metal-resistance-of-cultivable-bacteria-in-the-antarctic-sea-urchin/C4386D8F81EC557B3DBB6C54CF6EE6D2 Mangano S, Michaud L, Caruso C, Lo Giudice A. Metal and antibiotic resistance in psychrotrophic bacteria associated with the Antarctic sponge Hemigellius pilosus (Kirkpatrick, 1907). Polar Biol [Internet]. 2014 [citado 21 Nov 2021];8(1):227–35. Disponible en: https://link.springer.com/article/10.1007/s00300-013-1426-1 Rodríguez Rojas F, Díaz Vásquez W, Undabarrena A, Muñoz Díaz P, Arenas F, Vásquez C. Mercury-mediated cross-resistance to tellurite in Pseudomonas spp. isolated from the Chilean Antarctic territory. Metallomics [Internet]. 2016 [citado 21 Nov 2021];8(1):108-17. Dsiponible en: https://pubs.rsc.org/en/content/articlelanding/2016/mt/c5mt00256g#!divAbstract Romaniuk K, Ciok A, Decewicz P, Uhrynowski W, Budzik K, Nieckarz M, et al. Insight into heavy metal resistome of soil psychrotolerant bacteria originating from King George Island (Antarctica). Polar Biol [Internet]. 2018 [citado 21 Nov 2021];41(7):1319–33. Disponible en: https://link.springer.com/content/pdf/10.1007/s00300-018-2287-4.pdf Cho Y, Cho A, Hong G, Choi G, Kim S. Draft Genome Sequence of Arthrobacter oryzae TNBS02, a Bacterium Containing Heavy Metal Resistance Genes, Isolated from Soil of Antarctica. Microbiol. Resour Announc [Internet]. 2019 [citado 21 Nov 2021];8(4):01–18. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6346191/pdf/MRA.01501-18.pdf Rodríguez F, Tapia P, Castro E, Undabarrena A, Muñoz P, Arenas M, et al. Draft Genome Sequence of a Multi-Metal Resistant Bacterium Pseudomonas putida ATH-43 Isolated from Greenwich Island, Antarctica. Front Microbiol [Internet]. 2016 [citado 21 Nov 2021];7:1–5. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5099816/pdf/fmicb-07-01777.pdf Zhang G, Yang Y, Wang L. Alterery throbacter aurantiacus sp. nov., isolated from deep-sea sediment. ANTON LEEUW INT J G [Internet]. 2016 [citado 21 Nov 2021];64(1):116–21. Disponible en: https://link.springer.com/article/10.1007/s10482-016-0726-1 Wu H, Cheng H, Zhou P, Huo Y, Wang S, Xu X. Complete genome sequence of the heavy metal resistant bacterium Altererythrobacter atlanticus 26DY36T, isolated from deep-sea sediment of the North Atlantic Mid-ocean ridge. Mar Genomics [Internet]. 2015 [citado 21 Nov 2021];24(3):289-92. Disponible en: https://www.sciencedirect.com/science/article/abs/pii/S1874778715300374 Vallejo M, Ledesma P, Ibañez C, Aguirre L, Parada R, Vallejo B, et al. Resistencia a metales pesados, antibióticos y factores de virulencia en cepas de Enterococcus aisladas en la provincia del Chubut, Argentina. Rev Soc Ven Microbiol [Internet]. 2016 [citado 21 Nov 2021];36(1):16–22. Disponible en: http://ve.scielo.org/pdf/rsvm/v36n1/art05.pdf Samanta A, Bera P, Khatun M, Sinha C, Pal P, Lalee A & Mandal A. An investigation on heavy metal tolerance and antibiotic resistance properties of bacterial strain Bacillus sp. isolated from municipal waste. J Microbiol Biotechn. 2012[citado 21 Nov 2021];2(1):178-189. Disponible en: https://www.researchgate.net/publication/258885867_An_investigation_on_heavy_metal_tolerance_and_antibiotic_resistance_properties_of_bacterial_strain_Bacillus_sp_isolated_from_municipal_waste/link/00b495295b1c54a851000000/download Ito A, Nishikawa T, Matsumoto S, Yoshizawa H, Sato T, Nakamura R, et al. Siderophore cephalosporin cefiderocol utilizes ferric iron transporter systems for antibacterial activity against Pseudomonas aeruginosa. Antimicrob Agents Chemother [Internet]. 2016 [citado 21 Nov 2021];60(12):7396-401. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5119021/pdf/zac7396.pdf Ito A, Sato T, Ota M, Takemura M, Nishikawa T, Toba S, et al. In vitro antibacterial properties of cefiderocol, a novel siderophore cephalosporin, against gram-negative bacteria. Antimicrob Agents Chemother[Internet]. 2018 [citado 21 Nov 2021];62(1):4–17. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5740388/pdf/e01454-17.pdf Wright H, Bonomo A, Paterson L. New agents for the treatment of infections with Gram-negative bacteria: restoring the miracle or false dawn?. Clin Microbiol Infect [Internet]. 2017 [citado 21 Nov 2021];23(10):704–12. Disponible en: https://www.clinicalmicrobiologyandinfection.com/article/S1198-743X(17)30495-0/fulltext Copyright (c) 2021 Diana Paola López Velandia,Valentina Tibaduiza Ballesteros,Maritza Angarita Merchán http://creativecommons.org/licenses/by-nc/4.0 CC-BY-NC Medimay; Vol. 28, No. 2 (2021); 259-272 2520-9078 antibacterianos farmacorresistencia bacteriana genes bacterianos metales pesados regiones antárticas océano info:eu-repo/semantics/article info:eu-repo/semantics/publishedVersion Artículo revisado por pares, artículo evaluado 2021 ftjmedimay https://doi.org/10.1016/j.jhazmat.2018.07.027 2022-06-04T19:50:49Z Introducción:La resistencia bacteriana genera un grave problema de salud debido al uso indiscriminado de antibióticos, esto ha causado la propagación de bacterias que codifican para la resistenciaObjetivo:Describir los diferentes genes que codifican para la resistencia bacteriana, metales pesados y la nueva alternativa terapéutica para las bacterias multirresistentes Métodos: Se realizó una búsqueda de información en artículos en español, inglés y portugués relacionados con resistencia bacteriana en las bases de datos, Science Direct, Redalyc; Google Scholar, NCBI; Pubmed, Pro-quest Dialnet y Lilacs.Conclusiones: Se han descrito genes que codifican para farmacorresistencia a betalactámicos, macrólidos, aminoglucósidos, glicopéptido, se ha definido otro tipo de resistencia bacteriana hacia otros compuestos como a los metales pesados, se crean antibióticos para combatir bacterias multirresistentes, el cefiderocol, que actúa en la síntesis de las bacterias Gram negativas. Article in Journal/Newspaper Advances in Polar Science Antarctic Science Arctic Polar Science Polar Science MediMay (Universidad Virtual de Salud) (E-Journal) Crean ENVELOPE(159.500,159.500,-77.883,-77.883) Inglés ENVELOPE(-59.650,-59.650,-62.417,-62.417) Journal of Hazardous Materials 363 447 456