Análisis comparativo de tres métodos rápidos de extracción de ADN a partir de flebotomíneos para la vigilancia de patógenos en Colombia

La extracción de ADN el punto de partida para la mayoría de análisis genéticos y evolutivos, por lo que se requiere un extracto de ADN óptimo, sin embargo, la mayoría de métodos de extracción existentes son laboriosos, costosos y/o emplean compuestos tóxicos, por lo que el presente estudio tuvo como...

Full description

Autores:
Pérez Pérez, María Victoria
Tipo de recurso:
Fecha de publicación:
2024
Institución:
Universidad de Córdoba
Repositorio:
Repositorio Institucional Unicórdoba
Idioma:
spa
OAI Identifier:
oai:repositorio.unicordoba.edu.co:ucordoba/8690
Acceso en línea:
https://repositorio.unicordoba.edu.co/handle/ucordoba/8690
Palabra clave:
Métodos de extracción
Flebotomíneos
ADN
Extraction methods
Phlebotomine
DNA
Rights
embargoedAccess
License
https://creativecommons.org/licenses/by-nc-nd/4.0/
id UCORDOBA2_12395e9ecc9a0ddc26d9f093029a2274
oai_identifier_str oai:repositorio.unicordoba.edu.co:ucordoba/8690
network_acronym_str UCORDOBA2
network_name_str Repositorio Institucional Unicórdoba
repository_id_str
dc.title.spa.fl_str_mv Análisis comparativo de tres métodos rápidos de extracción de ADN a partir de flebotomíneos para la vigilancia de patógenos en Colombia
title Análisis comparativo de tres métodos rápidos de extracción de ADN a partir de flebotomíneos para la vigilancia de patógenos en Colombia
spellingShingle Análisis comparativo de tres métodos rápidos de extracción de ADN a partir de flebotomíneos para la vigilancia de patógenos en Colombia
Métodos de extracción
Flebotomíneos
ADN
Extraction methods
Phlebotomine
DNA
title_short Análisis comparativo de tres métodos rápidos de extracción de ADN a partir de flebotomíneos para la vigilancia de patógenos en Colombia
title_full Análisis comparativo de tres métodos rápidos de extracción de ADN a partir de flebotomíneos para la vigilancia de patógenos en Colombia
title_fullStr Análisis comparativo de tres métodos rápidos de extracción de ADN a partir de flebotomíneos para la vigilancia de patógenos en Colombia
title_full_unstemmed Análisis comparativo de tres métodos rápidos de extracción de ADN a partir de flebotomíneos para la vigilancia de patógenos en Colombia
title_sort Análisis comparativo de tres métodos rápidos de extracción de ADN a partir de flebotomíneos para la vigilancia de patógenos en Colombia
dc.creator.fl_str_mv Pérez Pérez, María Victoria
dc.contributor.advisor.none.fl_str_mv Paternina Tuirán, Luis Enrique
Rodríguez Páez, Luis Alfonso
dc.contributor.author.none.fl_str_mv Pérez Pérez, María Victoria
dc.contributor.jury.none.fl_str_mv Lopez Rivero, Arleth Susana
Hoyos López, Richard
dc.subject.proposal.none.fl_str_mv Métodos de extracción
Flebotomíneos
ADN
topic Métodos de extracción
Flebotomíneos
ADN
Extraction methods
Phlebotomine
DNA
dc.subject.keywords.none.fl_str_mv Extraction methods
Phlebotomine
DNA
description La extracción de ADN el punto de partida para la mayoría de análisis genéticos y evolutivos, por lo que se requiere un extracto de ADN óptimo, sin embargo, la mayoría de métodos de extracción existentes son laboriosos, costosos y/o emplean compuestos tóxicos, por lo que el presente estudio tuvo como objetivo evaluar la eficacia de tres métodos rápidos de extracción de ADN para la vigilancia de patógenos en Colombia. Para lo cual, se emplearon flebotomíneos del género Lutzomyia, se procesaron en grupos de (1, 5, 10 y 30 individuos), cada uno de esos grupos de insectos se usó en los distintos métodos rápidos de extracción de ADN: I) Edwards (EOT), II) HotSHOT (HS), y III) Gloor and Engels (GE), empleando como referencia el método de Salting Out. Posteriormente, se evaluó el desempeño de cada protocolo de extracción mediante estimaciones del rendimiento (ng/uL), relaciones de pureza, y cualitativamente por PCR con el fin de determinar el rendimiento de cada protocolo. También se evaluó la estabilidad temporal del ADN durante ocho semanas. El análisis en la evaluación de la concentración y la pureza de los extractos de ADN demuestra que estas variables no están asociadas directamente con el éxito en la amplificación por PCR. En cuanto a la estabilidad temporal, HS y GE permiten la amplificación de un mayor porcentaje de muestras a lo largo del tiempo con respecto a los otros métodos evaluados. Finalmente, HS y GE lograron detectar parásitos tripanosomatídeos, demostrando así su potencial uso como métodos alternativos para la vigilancia de patógenos.
publishDate 2024
dc.date.accessioned.none.fl_str_mv 2024-11-07T16:26:59Z
dc.date.available.none.fl_str_mv 2024-11-07T16:26:59Z
dc.date.issued.none.fl_str_mv 2024-11-06
dc.type.none.fl_str_mv Trabajo de grado - Maestría
dc.type.driver.none.fl_str_mv info:eu-repo/semantics/masterThesis
dc.type.version.none.fl_str_mv info:eu-repo/semantics/acceptedVersion
dc.type.content.none.fl_str_mv Text
dc.type.redcol.none.fl_str_mv http://purl.org/redcol/resource_type/TM
status_str acceptedVersion
dc.identifier.uri.none.fl_str_mv https://repositorio.unicordoba.edu.co/handle/ucordoba/8690
url https://repositorio.unicordoba.edu.co/handle/ucordoba/8690
dc.language.iso.none.fl_str_mv spa
language spa
dc.relation.references.none.fl_str_mv Adeniran, A. A., Fernández‐Santos, N. A., Rodríguez‐Rojas, J. J., Treviño‐Garza, N., Huerta‐Jiménez, H., Mis‐Ávila, P. C., Pérez‐Pech, W. A., Hernández‐Triana, L. M., & Rodríguez‐Pérez, M. A. (2019, 2019/12//). Identification of phlebotomine sand flies (Diptera: Psychodidae) from leishmaniasis endemic areas in southeastern Mexico using DNA barcoding. Ecology and Evolution, 9(23), 13543-13554. https://doi.org/10.1002/ece3.5811
Adler, S., & Theodor, O. (1957). Transmission of Disease Agents by Phlebotomine Sand Flies. Annual Review of Entomology, 2(Volume 2, 1957), 203-226. https://doi.org/https://doi.org/10.1146/annurev.en.02.010157.001223
Aljanabi, S. M., & Martinez, I. (1997, Nov 15). Universal and rapid salt-extraction of high quality genomic DNA for PCR-based techniques. Nucleic Acids Res, 25(22), 4692-4693. https://doi.org/10.1093/nar/25.22.4692
Allen, G. C., Flores-Vergara, M. A., Krasynanski, S., Kumar, S., & Thompson, W. F. (2006). A modified protocol for rapid DNA isolation from plant tissues using cetyltrimethylammonium bromide. Nat Protoc, 1(5), 2320-2325. https://doi.org/10.1038/nprot.2006.384
Alonso, A. (2013). DNA Extraction and Quantification. In (pp. 214-218). https://doi.org/10.1016/B978-0-12-382165-2.00039-8
Asato, Y., Oshiro, M., Myint, C. K., Yamamoto, Y., Kato, H., Marco, J. D., Mimori, T., Gomez, E. A., Hashiguchi, Y., & Uezato, H. (2009, Apr). Phylogenic analysis of the genus Leishmania by cytochrome b gene sequencing. Exp Parasitol, 121(4), 352-361. https://doi.org/10.1016/j.exppara.2008.12.013
Barker, K. (1998). Phenol-chloroform isoamyl alcohol (PCI) DNA extraction. At the Bench, 735
Bejarano, E. E., & Estrada, L. G. (2016). Family psychodidae. Zootaxa, 4122(1), 187-238
Bejarano, E. E., Uribe, S., Rojas, W., & Iván Darío, V. (2019). Presence of Lutzomyia evansi, a vector of American visceral leishmaniasis, in an urban area of the Colombian Caribbean coast. Articulo de revista
Bloom, D. E., & Cadarette, D. (2019). Infectious Disease Threats in the Twenty-First Century: Strengthening the Global Response. Front Immunol, 10, 549. https://doi.org/10.3389/fimmu.2019.00549
Bonsu, D. N. O., Higgins, D., Simon, C., Goodwin, C. S., Henry, J. M., & Austin, J. J. (2023). Quantitative PCR overestimation of DNA in samples contaminated with tin. Journal of Forensic Sciences, 68(4), 1302-1309
Brian, M. (2015). Assessment of Nucleic Acid Purity. Wilmington, MA, USA: Thermo Fisher Scientific
Cai, Y., Wang, X., Zhang, N., Li, J., Gong, P., He, B., & Zhang, X. (2019, Oct). First report of the prevalence and genotype of Trypanosoma spp. in bats in Yunnan Province, Southwestern China. Acta Trop, 198, 105105. https://doi.org/10.1016/j.actatropica.2019.105105
Carrero-Sarmiento, D., & Hoyos-López, R. (2018, Mar 1). Molecular identification and genetic diversity of Lutzomyia gomezi (Diptera: Psychodidae) using DNAbarcodes in Cordoba, Colombia. Trop Biomed, 35(1), 100-110
Casaril, A. E., de Oliveira, L. P., Alonso, D. P., de Oliveira, E. F., Gomes Barrios, S. P., de Oliveira Moura Infran, J., Fernandes, W. S., Oshiro, E. T., Ferreira, A. M. T., Ribolla, P. E. M., & de Oliveira, A. G. (2017, Jun). Standardization of DNA extraction from sand flies: Application to genotyping by next generation sequencing. Exp Parasitol, 177, 66-72. https://doi.org/10.1016/j.exppara.2017.04.010
Chacon-Cortes, D., Haupt, L. M., Lea, R. A., & Griffiths, L. R. (2012). Comparison of genomic DNA extraction techniques from whole blood samples: a time, cost and quality evaluation study. Molecular biology reports, 39, 5961-5966. https://link.springer.com/article/10.1007/s11033-011-1408-8
Chen, H., Rangasamy, M., Tan, S. Y., Wang, H., & Siegfried, B. D. (2010, Aug 13). Evaluation of five methods for total DNA extraction from western corn rootworm beetles. PLoS One, 5(8), e11963. https://doi.org/10.1371/journal.pone.0011963
Chen, T. Y., Vorsino, A. E., Kosinski, K. J., Romero-Weaver, A. L., Buckner, E. A., Chiu, J. C., & Lee, Y. (2021, Apr 15). A Magnetic-Bead-Based Mosquito DNA Extraction Protocol for Next-Generation Sequencing. J Vis Exp(170). https://doi.org/10.3791/62354
Chomel, B. B. (2009, 2009). Zoonoses. Encyclopedia of Microbiology, 820-829. https://doi.org/10.1016/B978-012373944-5.00213-3
Collins, F. H., Mendez, M. A., Rasmussen, M. O., Mehaffey, P. C., Besansky, N. J., & Finnerty, V. (1987, Jul). A ribosomal RNA gene probe differentiates member species of the Anopheles gambiae complex. Am J Trop Med Hyg, 37(1), 37-41. https://doi.org/10.4269/ajtmh.1987.37.37
Cooper, B. S., Vanderpool, D., Conner, W. R., Matute, D. R., & Turelli, M. (2019). Wolbachia acquisition by Drosophila yakuba-clade hosts and transfer of incompatibility loci between distantly related Wolbachia. Genetics, 212(4), 1399-1419
de Almeida Ferreira, S., Leite, R. S., Ituassu, L. T., Almeida, G. G., Souza, D. M., Fujiwara, R. T., de Andrade, A. S., & Melo, M. N. (2012). Canine skin and conjunctival swab samples for the detection and quantification of Leishmania infantum DNA in an endemic urban area in Brazil. PLoS Negl Trop Dis, 6(4), e1596. https://doi.org/10.1371/journal.pntd.0001596
Ditrich‐Schroder, G., Wingfield, M. J., Klein, H., & Slippers, B. (2012). DNA extraction techniques for DNA barcoding of minute gall‐inhabiting wasps. Molecular Ecology Resources, 12(1), 109-115
el Tai, N. O., Osman, O. F., el Fari, M., Presber, W., & Schönian, G. (2000, Sep-Oct). Genetic heterogeneity of ribosomal internal transcribed spacer in clinical samples of Leishmania donovani spotted on filter paper as revealed by single-strand conformation polymorphisms and sequencing. Trans R Soc Trop Med Hyg, 94(5), 575-579. https://doi.org/10.1016/s0035-9203(00)90093-2
Feng, X., Kambic, L., Nishimoto, J. H. K., Reed, F. A., Denton, J. A., Sutton, J. T., & Gantz, V. M. (2021, Aug). Evaluation of Gene Knockouts by CRISPR as Potential Targets for the Genetic Engineering of the Mosquito Culex quinquefasciatus. Crispr j, 4(4), 595-608. https://doi.org/10.1089/crispr.2021.0028
Folmer, O., Black, M., Hoeh, W., Lutz, R., & Vrijenhoek, R. (1994, Oct). DNA primers for amplification of mitochondrial cytochrome c oxidase subunit I from diverse metazoan invertebrates. Mol Mar Biol Biotechnol, 3(5), 294-299
Gloor, G. B., Preston, C. R., Johnson-Schlitz, D. M., Nassif, N. A., Phillis, R. W., Benz, W. K., Robertson, H. M., & Engels, W. R. (1993, Sep). Type I repressors of P element mobility. Genetics, 135(1), 81-95. https://doi.org/10.1093/genetics/135.1.81
Golczer, G., & Arrivillaga, J. (2008, 2008/12/31/). Modificación de un protocolo estándar de extracción de ADN para flebotominos pequeños (Phlebotominae: Lutzomyia). Revista Colombiana de Entomología, 34(2), 199-202. https://doi.org/10.25100/socolen.v34i2.9290
Goldberg, S. (2008). Mechanical/physical methods of cell disruption and tissue homogenization. 2D PAGE: Sample preparation and fractionation, 3-22.
Grace, D., Mutua, F. K., Ochungo, P., Kruska, R., Jones, K., Brierley, L., Lapar, M. L., Said, M. Y., Herrero, M. T., & Phuc, P. (2012). Mapping of poverty and likely zoonoses hotspots.
Gross, L. (2007, 2007/03//). Untapped Bounty: Sampling the Seas to Survey Microbial Biodiversity. PLOS Biology, 5(3), e85. https://doi.org/10.1371/journal.pbio.0050085
Gualda, K. P., Marcussi, L. M., Neitzke-Abreu, H. C., Aristides, S. M., Lonardoni, M. V., Cardoso, R. F., & Silveira, T. G. (2015, Sep-Oct). NEW PRIMERS FOR DETECTION OF Leishmania infantum USING POLYMERASE CHAIN REACTION. Rev Inst Med Trop Sao Paulo, 57(5), 377-383. https://doi.org/10.1590/s0036-46652015000500002
Gutiérrez-López, R., Martínez-de la Puente, J., Gangoso, L., Soriguer, R. C., & Figuerola, J. (2015, Jun). Comparison of manual and semi-automatic DNA extraction protocols for the barcoding characterization of hematophagous louse flies (Diptera: Hippoboscidae). J Vector Ecol, 40(1), 11-15. https://doi.org/10.1111/jvec.12127
Gutierrez, M. A. C., Lopez, R. O. H., Ramos, A. T., Vélez, I. D., Gomez, R. V., Arrivillaga-Henríquez, J., & Uribe, S. (2021, Sep). DNA barcoding of Lutzomyia longipalpis species complex (Diptera: Psychodidae), suggests the existence of 8 candidate species. Acta Trop, 221, 105983. https://doi.org/10.1016/j.actatropica.2021.105983
Hakkour, M., Hmamouch, A., Mahmoud El Alem, M., Bouyahya, A., Balahbib, A., El Khazraji, A., Fellah, H., Sadak, A., & Sebti, F. (2020). Risk Factors Associated with Leishmaniasis in the Most Affected Provinces by Leishmania infantum in Morocco. Interdiscip Perspect Infect Dis, 2020, 6948650. https://doi.org/10.1155/2020/6948650
Halos, L., Jamal, T., Vial, L., Maillard, R., Suau, A., Le Menach, A., Boulouis, H. J., & Vayssier-Taussat, M. (2004, Nov-Dec). Determination of an efficient and reliable method for DNA extraction from ticks. Vet Res, 35(6), 709-713. https://doi.org/10.1051/vetres:2004038
Hu, W., & Lagarias, J. C. (2020a). https://doi.org/10.1101/2020.02.13.948455
Hunter, P. (2007, Mar). Dig this. Biomolecular archaeology provides new insights into past civilizations, cultures and practices. EMBO Rep, 8(3), 215-217. https://doi.org/10.1038/sj.embor.7400923
Jangra, S., & Ghosh, A. (2022). Rapid and zero-cost DNA extraction from soft-bodied insects for routine PCR-based applications. PLoS One, 17(7), e0271312. https://journals.plos.org/plosone/article/file?id=10.1371/journal.pone.0271312&type=printable
Jones, K. E., Patel, N. G., Levy, M. A., Storeygard, A., Balk, D., Gittleman, J. L., & Daszak, P. (2008, Feb 21). Global trends in emerging infectious diseases. Nature, 451(7181), 990-993. https://doi.org/10.1038/nature06536
Kaewmee, S., Mano, C., Phanitchakun, T., Ampol, R., Yasanga, T., Pattanawong, U., Junkum, A., Siriyasatien, P., Bates, P. A., & Jariyapan, N. (2023). Natural infection with Leishmania (Mundinia) martiniquensis supports Culicoides peregrinus (Diptera: Ceratopogonidae) as a potential vector of leishmaniasis and characterization of a Crithidia sp. isolated from the midges. Front Microbiol, 14, 1235254. https://doi.org/10.3389/fmicb.2023.1235254
Kato, H., Uezato, H., Katakura, K., Calvopiña, M., Marco, J. D., Barroso, P. A., Gomez, E. A., Mimori, T., Korenaga, M., Iwata, H., Nonaka, S., & Hashiguchi, Y. (2005, Jan). Detection and identification of Leishmania species within naturally infected sand flies in the andean areas of ecuador by a polymerase chain reaction. Am J Trop Med Hyg, 72(1), 87-93. https://core.ac.uk/download/pdf/70354377
Koetsier, G., & Cantor, E. (2019). A practical guide to analyzing nucleic acid concentration and purity with microvolume spectrophotometers. New England Biolabs Inc, 1-8.
Kong, W. J., Wang, Y., Wang, Q., Han, Y. C., & Hu, Y. J. (2006, Jun 20). Comparison of three methods for isolation of nucleic acids from membranate inner ear tissue of rats. Chin Med J (Engl), 119(12), 986-990
Kuno, G., & Chang, G. J. (2005, Oct). Biological transmission of arboviruses: reexamination of and new insights into components, mechanisms, and unique traits as well as their evolutionary trends. Clin Microbiol Rev, 18(4), 608-637. https://doi.org/10.1128/cmr.18.4.608-637.2005
Lachaud, L., Marchergui-Hammami, S., Chabbert, E., Dereure, J., Dedet, J. P., & Bastien, P. (2002, Jan). Comparison of six PCR methods using peripheral blood for detection of canine visceral leishmaniasis. J Clin Microbiol, 40(1), 210-215. https://doi.org/10.1128/jcm.40.1.210-215.2002
Lainson, R., Shaw, J. J., Ryan, L., Ribeiro, R. S. M., & Silveira, F. T. (1985, 1985/01//). Leishmaniasis in Brazil. XXI. visceral leishmaniasis in the Amazon Region and further observations on the role of Lutzomyia longipalpis (Lutz & Neiva, 1912) as the vector. Transactions of The Royal Society of Tropical Medicine and Hygiene, 79(2), 223-226. https://doi.org/10.1016/0035-9203(85)90340-2
Lambraño Cruz, L. F., Manjarrez Pinzón, G., & Bejarano Martínez, E. E. (2012). Variación temporal de especies de Lutzomyia (Diptera: Psychodidae) en el área urbana de Sincelejo (Colombia). Revista Salud Uninorte, 28(2), 191-200
Leonel, J. A. F., Vioti, G., Alves, M. L., da Silva, D. T., Meneghesso, P. A., Benassi, J. C., Spada, J. C. P., Galvis-Ovallos, F., Soares, R. M., & Oliveira, T. (2020, Nov). DNA extraction from individual Phlebotomine sand flies (Diptera: Psychodidae: Phlebotominae) specimens: Which is the method with better results? Exp Parasitol, 218, 107981. https://doi.org/10.1016/j.exppara.2020.107981
Lindahl, T. (1993, Apr 22). Instability and decay of the primary structure of DNA. Nature, 362(6422), 709-715. https://doi.org/10.1038/362709a0
Long, M. T. (2014, 2014/12/01/). West Nile Virus and Equine Encephalitis Viruses: New Perspectives. Veterinary Clinics of North America: Equine Practice, 30(3), 523-542. https://doi.org/10.1016/j.cveq.2014.08.009 (New Perspectives in Infectious Diseases)
Lucena-Aguilar, G., Sánchez-López, A. M., Barberán-Aceituno, C., Carrillo-Avila, J. A., López-Guerrero, J. A., & Aguilar-Quesada, R. (2016). DNA source selection for downstream applications based on DNA quality indicators analysis. Biopreservation and biobanking, 14(4), 264-270.
Maitre, A., Wu-Chuang, A., Aželytė, J., Palinauskas, V., Mateos-Hernández, L., Obregon, D., Hodžić, A., Valiente Moro, C., Estrada-Peña, A., Paoli, J.-C., Falchi, A., & Cabezas-Cruz, A. (2022, 2022/01/04). Vector microbiota manipulation by host antibodies: the forgotten strategy to develop transmission-blocking vaccines. Parasites & Vectors, 15(1), 4. https://doi.org/10.1186/s13071-021-05122-5
Mann, S., Frasca, K., Scherrer, S., Henao-Martínez, A. F., Newman, S., Ramanan, P., & Suarez, J. A. (2021). A Review of Leishmaniasis: Current Knowledge and Future Directions. Curr Trop Med Rep, 8(2), 121-132. https://doi.org/10.1007/s40475-021-00232-7
Mekonnen, S. A., Gezehagn, A., Berju, A., Haile, B., Dejene, H., Nigatu, S., Molla, W., & Jemberu, W. T. (2021). Health and economic burden of foodborne zoonotic diseases in Amhara region, Ethiopia. PLoS One, 16(12), e0262032. https://doi.org/10.1371/journal.pone.0262032
Michalsky, E. M., Fortes-Dias, C. L., Pimenta, P. F., Secundino, N. F., & Dias, E. S. (2002, Sep-Oct). Assessment of PCR in the detection of Leishmania spp in experimentally infected individual phlebotomine sandflies (Diptera: Psychodidae: Phlebotominae). Rev Inst Med Trop Sao Paulo, 44(5), 255-259. https://doi.org/10.1590/s0036-46652002000500004
Milani, C., Hevia, A., Foroni, E., Duranti, S., Turroni, F., Lugli, G. A., Sanchez, B., Martin, R., Gueimonde, M., van Sinderen, D., Margolles, A., & Ventura, M. (2013). Assessing the fecal microbiota: an optimized ion torrent 16S rRNA gene-based analysis protocol. PLoS One, 8(7), e68739. https://doi.org/10.1371/journal.pone.0068739
Miller, S. A., Dykes, D. D., & Polesky, H. (1988). A simple salting out procedure for extracting DNA from human nucleated cells. Nucleic acids research, 16(3), 1215. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC334765/pdf/nar00145-0424
Montalvo, A. M., Fraga, J., El Safi, S., Gramiccia, M., Jaffe, C. L., Dujardin, J. C., & Van der Auwera, G. (2014, Sep). Direct Leishmania species typing in Old World clinical samples: evaluation of 3 sensitive methods based on the heat-shock protein 70 gene. Diagn Microbiol Infect Dis, 80(1), 35-39. https://doi.org/10.1016/j.diagmicrobio.2014.05.012
Montalvo, A. M., Fraga, J., Monzote, L., Montano, I., De Doncker, S., Dujardin, J. C., & Van der Auwera, G. (2010, Jul). Heat-shock protein 70 PCR-RFLP: a universal simple tool for Leishmania species discrimination in the New and Old World. Parasitology, 137(8), 1159-1168. https://doi.org/10.1017/s0031182010000089
Montesino Pérez, A. M., & Vergara Meza, J. G. (2015). Código de barras de adn aplicado a la identificación de restos de ingestas sanguíneas en especies del género lutzomyia (diptera: psychodidae) en un microfoco periurbano de leishmaniasis cutánea de Sincelejo, Sucre.
Munyua, P., Bitek, A., Osoro, E., Pieracci, E. G., Muema, J., Mwatondo, A., Kungu, M., Nanyingi, M., Gharpure, R., & Njenga, K. (2016). Prioritization of zoonotic diseases in Kenya, 2015. PLoS One, 11(8), e0161576.
Musapa, M., Kumwenda, T., Mkulama, M., Chishimba, S., Norris, D. E., Thuma, P. E., & Mharakurwa, S. (2013, Jan 9). A simple Chelex protocol for DNA extraction from Anopheles spp. J Vis Exp(71). https://doi.org/10.3791/3281
Noyes, H., Stevens, J., Teixeira, M., Phelan, J., & Holz, P. (1999). A nested PCR for the ssrRNA gene detects Trypanosoma binneyi in the platypus and Trypanosoma sp. in wombats and kangaroos in Australia1. International Journal for Parasitology, 29(2), 331-339.
Noyes, H., Stevens, J., Teixeira, M., Phelan, J., & Holz, P. (2000). Corrigendum to''A nested PCR for the ssrRNA gene detects Trypanosoma binneyi in the platypus and Trypanosoma sp. in wombats and kangaroos in Australia''[International Journal for Parasitology 29 (2)(1999) 331-339]. International Journal for Parasitology, 2(30), 228.
Noyes, H. A., Camps, A. P., & Chance, M. L. (1996, Sep). Leishmania herreri (Kinetoplastida; Trypanosomatidae) is more closely related to Endotrypanum (Kinetoplastida; Trypanosomatidae) than to Leishmania. Mol Biochem Parasitol, 80(1), 119-123. https://doi.org/10.1016/0166-6851(96)02679-5
Papatheodorou, S. A., Halvatsiotis, P., & Houhoula, D. (2021). A comparison of different DNA extraction methods and molecular techniques for the detection and identification of foodborne pathogens. AIMS Microbiol, 7(3), 304-319. https://doi.org/10.3934/microbiol.2021019
Pérez-Doria, A., Bejarano, E. E., Sierra, D., & Vélez, I. D. (2008). Molecular Evidence Confirms the Taxonomic Separation of Lutzomyia tihuiliensis from Lutzomyia pia (Diptera: Psychodidae) and the Usefulness of Pleural Pigmentation Patterns in Species Identification. Journal of Medical Entomology, 45(4), 653-659, 657. https://doi.org/10.1603/0022-2585(2008)45[653:MECTTS]2.0.CO;2
Psifidi, A., Dovas, C. I., Bramis, G., Lazou, T., Russel, C. L., Arsenos, G., & Banos, G. (2015). Comparison of eleven methods for genomic DNA extraction suitable for large-scale whole-genome genotyping and long-term DNA banking using blood samples. PLoS One, 10(1), e0115960. https://doi.org/10.1371/journal.pone.0115960
Raja, K. K. B., Bachman, E. A., Fernholz, C. E., Trine, D. S., Hobmeier, R. E., Maki, N. J., Massoglia, T. J., & Werner, T. (2023, Jan 24). The Genetic Mechanisms Underlying the Concerted Expression of the yellow and tan Genes in Complex Patterns on the Abdomen and Wings of Drosophila guttifera. Genes (Basel), 14(2). https://doi.org/10.3390/genes14020304
Ready, P. (2014, 2014/05//). Epidemiology of visceral leishmaniasis. Clinical Epidemiology, 147. https://doi.org/10.2147/CLEP.S44267
Rider, M. A., Byrd, B. D., Keating, J., Wesson, D. M., & Caillouet, K. A. (2012). PCR detection of malaria parasites in desiccated Anopheles mosquitoes is uninhibited by storage time and temperature. Malaria journal, 11, 193. Retrieved 2012/06//, from http://europepmc.org/abstract/MED/22682161
Riemann, K., Adamzik, M., Frauenrath, S., Egensperger, R., Schmid, K. W., Brockmeyer, N. H., & Siffert, W. (2007). Comparison of manual and automated nucleic acid extraction from whole-blood samples. J Clin Lab Anal, 21(4), 244-248. https://doi.org/10.1002/jcla.20174
Rohr, J. R., Barrett, C. B., Civitello, D. J., Craft, M. E., Delius, B., DeLeo, G. A., Hudson, P. J., Jouanard, N., Nguyen, K. H., Ostfeld, R. S., Remais, J. V., Riveau, G., Sokolow, S. H., & Tilman, D. (2019, 2019/06/01). Emerging human infectious diseases and the links to global food production. Nature Sustainability, 2(6), 445-456. https://doi.org/10.1038/s41893-019-0293-3
Rueda-Concha, K. L., Payares-Mercado, A., Guerra-Castillo, J., Melendrez, J., Arroyo-Munive, Y., Martínez-Abad, L., Cochero, S., Bejarano, E. E., & Paternina, L. E. (2022, Dec 1). [Circulación de Leishmania infantum y Trypanosoma cruzi en perros domésticos de áreas urbanas de Sincelejo, región Caribe de Colombia]. Biomedica, 42(4), 633-649. https://doi.org/10.7705/biomedica.6369
Salonen, A., Nikkilä, J., Jalanka-Tuovinen, J., Immonen, O., Rajilić-Stojanović, M., Kekkonen, R. A., Palva, A., & de Vos, W. M. (2010, May). Comparative analysis of fecal DNA extraction methods with phylogenetic microarray: effective recovery of bacterial and archaeal DNA using mechanical cell lysis. J Microbiol Methods, 81(2), 127-134. https://doi.org/10.1016/j.mimet.2010.02.007
Santos, M., Martínez-Pérez, L., Rivero, M., Cortés-Alemán, L., Pérez-Doria, A., & Bejarano-Martínez, E. (2021, 11/24). Detección de Leishmania spp. (Trypanosomatidae) e identificación de ingestas sanguíneas en flebotomíneos de un nuevo foco de leishmaniasis en el Caribe colombiano. Ciencia e Innovación en Salud. https://doi.org/10.17081/innosa.142
Savić, S., Vidić, B., Grgić, Z., Potkonjak, A., & Spasojevic, L. (2014). Emerging Vector-Borne Diseases - Incidence through Vectors. Front Public Health, 2, 267. https://doi.org/10.3389/fpubh.2014.00267
Senne, N. A., Santos, H. A., Araujo, T. R., Paulino, P. G., Mendonca, L. P., Moreira, H. V. S., Camilo, T. A., & da Costa Angelo, I. (2022, Jun). Robust comparative performance of genomic DNA extraction methods from non-engorged phlebotomine sandflies. Med Vet Entomol, 36(2), 203-211. https://doi.org/10.1111/mve.12567
Shaik, M., Shivanna, D. K., Kamate, M., Ab, V., & Tp, K. V. (2016, Nov). Single Lysis-Salting Out Method of Genomic DNA Extraction From Dried Blood Spots. J Clin Lab Anal, 30(6), 1009-1012. https://doi.org/10.1002/jcla.21972
Shwani, A., Zuo, B., Alrubaye, A., Zhao, J., & Rhoads, D. D. (2023). A Simple, Inexpensive Alkaline Method for Bacterial DNA Extraction from Environmental Samples for PCR Surveillance and Microbiome Analyses. Applied Sciences, 14(1), 141.
Sierra, D., Vélez, I. D., & Uribe, S. (2000). Identificación de Lutzomyia spp.(Diptera: Psychodidae) grupo verrucarum por medio de microscopía electrónica de sus huevos. Revista de Biología Tropical, 48(2-3), 615-622
Sleator, R. D. (2010, Jul-Aug). The story of Mycoplasma mycoides JCVI-syn1.0: the forty million dollar microbe. Bioeng Bugs, 1(4), 229-230. https://doi.org/10.4161/bbug.1.4.12465
Spitzer, M., Wildenhain, J., Rappsilber, J., & Tyers, M. (2014, 2014/02/01). BoxPlotR: a web tool for generation of box plots. Nature Methods, 11(2), 121-122. https://doi.org/10.1038/nmeth.2811
Sudia, W. D., & Chamberlain, R. W. (1988, 1988/12//). Battery-operated light trap, an improved model. By W. D. Sudia and R. W. Chamberlain, 1962. Journal of the American Mosquito Control Association, 4(4), 536-538. http://www.ncbi.nlm.nih.gov/pubmed/3066845
Takamiya, N. T., Rogerio, L. A., Torres, C., Leonel, J. A. F., Vioti, G., de Sousa Oliveira, T. M. F., Valeriano, K. C., Porcino, G. N., de Miranda Santos, I. K. F., Costa, C. H. N., Costa, D. L., Ferreira, T. S., Gurgel-Gonçalves, R., da Silva, J. S., Teixeira, F. R., De Almeida, R. P., Ribeiro, J. M. C., & Maruyama, S. R. (2023, Aug 8). Parasite Detection in Visceral Leishmaniasis Samples by Dye-Based qPCR Using New Gene Targets of Leishmania infantum and Crithidia. Trop Med Infect Dis, 8(8). https://doi.org/10.3390/tropicalmed8080405
Takano, A., Goka, K., Une, Y., Shimada, Y., Fujita, H., Shiino, T., Watanabe, H., & Kawabata, H. (2010, Jan). Isolation and characterization of a novel Borrelia group of tick-borne borreliae from imported reptiles and their associated ticks. Environ Microbiol, 12(1), 134-146. https://doi.org/10.1111/j.1462-2920.2009.02054.x
Thiombiano, N. G., Boungou, M., Chabi, B. A. M., Oueda, A., Werb, O., & Schaer, J. (2023, Dec). First investigation of blood parasites of bats in Burkina Faso detects Hepatocystis parasites and infections with diverse Trypanosoma spp. Parasitol Res, 122(12), 3121-3129. https://doi.org/10.1007/s00436-023-08002-2
Topcu, A., Asir, S., & Türkmen, D. (2016, 07/01). DNA Purification by Solid Phase Extraction (SPE) Methods Katı Faz Ayırma Yöntemiyle DNA Saflaştırılması Review Article. Hacettepe Journal of Biology and Chemistry, 44, 259-266. https://doi.org/10.15671/HJBC.20164420568
Truett, G. E., Heeger, P., Mynatt, R. L., Truett, A. A., Walker, J. A., & Warman, M. L. (2000, Jul). Preparation of PCR-quality mouse genomic DNA with hot sodium hydroxide and tris (HotSHOT). Biotechniques, 29(1), 52, 54. https://doi.org/10.2144/00291bm09
Ushijima, Y., Oliver, J. H., Jr., Keirans, J. E., Tsurumi, M., Kawabata, H., Watanabe, H., & Fukunaga, M. (2003, Feb). Mitochondrial sequence variation in Carlos capensis (Neumann), a parasite of seabirds, collected on Torishima Island in Japan. J Parasitol, 89(1), 196-198. https://doi.org/10.1645/0022-3395(2003)089[0196:Msvicc]2.0.Co;2
van Eys, G. J., Schoone, G. J., Kroon, N. C., & Ebeling, S. B. (1992, Mar). Sequence analysis of small subunit ribosomal RNA genes and its use for detection and identification of Leishmania parasites. Mol Biochem Parasitol, 51(1), 133-142. https://doi.org/10.1016/0166-6851(92)90208-2
Vasuki, V., Subramanian, S., Hoti, S. L., & Jambulingam, P. (2012, Dec). Use of a simple DNA extraction method for high-throughput detection of filarial parasite Wuchereria bancrofti in the vector mosquitoes. Parasitol Res, 111(6), 2479-2481. https://doi.org/10.1007/s00436-012-3026-3
Weirather, J. L., Jeronimo, S. M., Gautam, S., Sundar, S., Kang, M., Kurtz, M. A., Haque, R., Schriefer, A., Talhari, S., Carvalho, E. M., Donelson, J. E., & Wilson, M. E. (2011, Nov). Serial quantitative PCR assay for detection, species discrimination, and quantification of Leishmania spp. in human samples. J Clin Microbiol, 49(11), 3892-3904. https://doi.org/10.1128/JCM.r00764-11
WHO. (2020). Vector-borne Diseases. https://www.who.int/news-room/fact-sheets/detail/vector-borne-diseases
Wilfinger, W. W., Mackey, K., & Chomczynski, P. (1997, Mar). Effect of pH and ionic strength on the spectrophotometric assessment of nucleic acid purity. Biotechniques, 22(3), 474-476, 478-481. https://doi.org/10.2144/97223st01
Wilson, A. J., Morgan, E. R., Booth, M., Norman, R., Perkins, S. E., Hauffe, H. C., Mideo, N., Antonovics, J., McCallum, H., & Fenton, A. (2017, 2017/05/05/). What is a vector? Philosophical Transactions of the Royal Society B: Biological Sciences, 372(1719), 20160085. https://doi.org/10.1098/rstb.2016.0085
Wilson, I. G. (1997, Oct). Inhibition and facilitation of nucleic acid amplification. Appl Environ Microbiol, 63(10), 3741-3751. https://doi.org/10.1128/aem.63.10.3741-3751.1997
Young, D. G., & Duran, M. A. (1994). Guide to the Identification and Geographic Distribution of Lutzomyia Sand Flies in Mexico, the West Indies, Central and South America (Diptera:Psychodidae).
Zink, F. A., Tembrock, L. R., Timm, A. E., Farris, R. E., Perera, O. P., & Gilligan, T. M. (2017). A droplet digital PCR (ddPCR) assay to detect Helicoverpa armigera (Lepidoptera: Noctuidae) in bulk trap samples. PLoS One, 12(5), e0178704. https://doi.org/10.1371/journal.pone.0178704
dc.rights.uri.none.fl_str_mv https://creativecommons.org/licenses/by-nc-nd/4.0/
dc.rights.license.none.fl_str_mv Atribución-NoComercial-SinDerivadas 4.0 Internacional (CC BY-NC-ND 4.0)
dc.rights.accessrights.none.fl_str_mv info:eu-repo/semantics/embargoedAccess
dc.rights.coar.none.fl_str_mv http://purl.org/coar/access_right/c_f1cf
rights_invalid_str_mv https://creativecommons.org/licenses/by-nc-nd/4.0/
Atribución-NoComercial-SinDerivadas 4.0 Internacional (CC BY-NC-ND 4.0)
http://purl.org/coar/access_right/c_f1cf
eu_rights_str_mv embargoedAccess
dc.format.mimetype.none.fl_str_mv application/pdf
dc.publisher.none.fl_str_mv Universidad de Córdoba
dc.publisher.faculty.none.fl_str_mv Facultad de Ciencias Básicas
dc.publisher.place.none.fl_str_mv Montería, Córdoba, Colombia
dc.publisher.program.none.fl_str_mv Maestría en Biotecnología
publisher.none.fl_str_mv Universidad de Córdoba
institution Universidad de Córdoba
bitstream.url.fl_str_mv https://repositorio.unicordoba.edu.co/bitstreams/37895402-443c-48a1-9407-10396a223140/download
https://repositorio.unicordoba.edu.co/bitstreams/c53c5f0d-19c3-41ee-8895-3816616987b1/download
https://repositorio.unicordoba.edu.co/bitstreams/f608c591-2995-4f7b-9924-ede37a1d87e6/download
https://repositorio.unicordoba.edu.co/bitstreams/8e60da69-362a-4766-b45b-d3449157412c/download
https://repositorio.unicordoba.edu.co/bitstreams/0de85d7b-fd91-411e-9976-40fbca515a9c/download
https://repositorio.unicordoba.edu.co/bitstreams/b3a8faa0-962a-4473-9f73-7f2971f6c0e1/download
https://repositorio.unicordoba.edu.co/bitstreams/7e77397b-6880-4974-9faa-a6d34dcb6a26/download
bitstream.checksum.fl_str_mv 607edd225433ebc72c6930e83dab35b3
aa8720154f79b5b4c60ac19604cb7447
73a5432e0b76442b22b026844140d683
bfc1f47a0e18d49d42d13d1dc8655368
dc225a5a6e456138fad24e39903a65fe
b52850ab27a5ec81a591dad05565f354
6343dbb2192926f4998c80b744102ff9
bitstream.checksumAlgorithm.fl_str_mv MD5
MD5
MD5
MD5
MD5
MD5
MD5
repository.name.fl_str_mv Repositorio Universidad de Córdoba
repository.mail.fl_str_mv bdigital@metabiblioteca.com
_version_ 1828169819421147136
spelling Paternina Tuirán, Luis Enrique2cad8246-576b-4a73-b024-3fce5a5eefa3-1Rodríguez Páez, Luis Alfonsod886416c-9d86-4dae-b533-d4e692e4fedd-1Pérez Pérez, María Victoria31da7400-43b0-4e60-b4dd-83bed6788332-1Lopez Rivero, Arleth Susanab57c09b7-24c7-4c96-85fa-4cf547baa8f3-1Hoyos López, Richardd12cc16d-9dd4-44ea-a059-d3659ffa1be46002024-11-07T16:26:59Z2024-11-07T16:26:59Z2024-11-06https://repositorio.unicordoba.edu.co/handle/ucordoba/8690La extracción de ADN el punto de partida para la mayoría de análisis genéticos y evolutivos, por lo que se requiere un extracto de ADN óptimo, sin embargo, la mayoría de métodos de extracción existentes son laboriosos, costosos y/o emplean compuestos tóxicos, por lo que el presente estudio tuvo como objetivo evaluar la eficacia de tres métodos rápidos de extracción de ADN para la vigilancia de patógenos en Colombia. Para lo cual, se emplearon flebotomíneos del género Lutzomyia, se procesaron en grupos de (1, 5, 10 y 30 individuos), cada uno de esos grupos de insectos se usó en los distintos métodos rápidos de extracción de ADN: I) Edwards (EOT), II) HotSHOT (HS), y III) Gloor and Engels (GE), empleando como referencia el método de Salting Out. Posteriormente, se evaluó el desempeño de cada protocolo de extracción mediante estimaciones del rendimiento (ng/uL), relaciones de pureza, y cualitativamente por PCR con el fin de determinar el rendimiento de cada protocolo. También se evaluó la estabilidad temporal del ADN durante ocho semanas. El análisis en la evaluación de la concentración y la pureza de los extractos de ADN demuestra que estas variables no están asociadas directamente con el éxito en la amplificación por PCR. En cuanto a la estabilidad temporal, HS y GE permiten la amplificación de un mayor porcentaje de muestras a lo largo del tiempo con respecto a los otros métodos evaluados. Finalmente, HS y GE lograron detectar parásitos tripanosomatídeos, demostrando así su potencial uso como métodos alternativos para la vigilancia de patógenos.DNA extraction is the starting point for most genetic and evolutionary analyses, so an optimal DNA extract is required, however, most existing extraction methods are laborious, expensive and use toxic compounds, so the present study aimed to evaluate the efficacy of three rapid DNA extraction methods for pathogen surveillance in Colombia. For this purpose, phlebotomine sandflies of the genus Lutzomyia were processed in (1, 5, 10 and 30 individuals), each of these groups was used in the different rapid DNA extraction methods: I) Edwards (EOT), II) HotSHOT (HS), and III) Gloor and Engels (GE), using the Salting Out method as a reference. Subsequently, the performance of each extraction protocol was evaluated by yield estimates (ng/uL), purity ratios, and qualitatively by PCR in order to determine the yield of each protocol. Temporal stability of DNA over eight weeks was also evaluated. Analysis in evaluating the concentration and purity of DNA extracts demonstrates that these variables are not directly associated with success in PCR amplification. In terms of temporal stability, HS and GE allow the amplification of a higher percentage of samples over time with respect to the other methods evaluated. Finally, HS and GE were able to detect trypanosomatid parasites, thus demonstrating their potential use as alternative methods for pathogen surveillance.Lista de FigurasLista de TablasLista de AnexosResumenAbstractCapítulo 1 IntroducciónCapítulo 2 ObjetivosObjetivo generalObjetivos específicosCapítulo 3 Marco teórico3.1. Enfermedades zoonóticas3.2. Importancia médica y económica de las enfermedades zoonóticas3.3. Vectores de enfermedades3.4. Enfermedades transmitidas por vectores3.5. Importancia médica de los flebotomíneos3.6. Sistemática molecular de flebotomíneos y vigilancia de patógenos asociados3.7. Métodos de extracción de ADN a partir de insectos vectoresCapítulo 4 Metodología4.1. Captura de flebotomíneos4.2. Procesamiento e identificación taxonómica de los flebotomíneos4.3. Extracción de ADN4.3.1. Extracción de ADN mediante Edwards One-Tube (EOT)4.3.2. Extracción de ADN mediante HotSHOT (HS)4.3.3. Extracción de ADN mediante Gloor & Engels (GE)4.3.4. Extracción de ADN por altas concentraciones de sales (Ref)4.4. Evaluación de la calidad, rendimiento y utilidad de extractos de ADN4.4.1. Calidad y rendimiento de los extractos4.4.2. Valoración en la utilidad de los extractos4.5. Estabilidad temporal e integridad de los ácidos nucleicos4.6. Eficacia del mejor método alternativo para la vigilancia de patógenos4.7. Análisis de costo / beneficio de los métodos de extracción evaluadosCapítulo 5 Resultados5.1. Identificación taxonómica de los flebotomíneos5.2. Evaluación de la calidad, rendimiento y utilidad de los extractos de ADN5.2.1. Calidad y rendimiento de los extractos5.2.2. Valoración en la utilidad de los extractos5.3. Estabilidad temporal e integridad de los ácidos nucleicos5.4. Eficacia del mejor método alternativo para la vigilancia de patógenos5.5. Análisis de costo / beneficio de los métodos de extracción evaluadosCapítulo 6 DiscusiónCapítulo 7 ConclusionesReferenciasAnexosTabla de ContenidoMaestríaMagíster en BiotecnologíaTrabajos de Investigación y/o Extensiónapplication/pdfspaUniversidad de CórdobaFacultad de Ciencias BásicasMontería, Córdoba, ColombiaMaestría en Biotecnologíahttps://creativecommons.org/licenses/by-nc-nd/4.0/Atribución-NoComercial-SinDerivadas 4.0 Internacional (CC BY-NC-ND 4.0)info:eu-repo/semantics/embargoedAccesshttp://purl.org/coar/access_right/c_f1cfAnálisis comparativo de tres métodos rápidos de extracción de ADN a partir de flebotomíneos para la vigilancia de patógenos en ColombiaTrabajo de grado - Maestríainfo:eu-repo/semantics/masterThesisinfo:eu-repo/semantics/acceptedVersionTexthttp://purl.org/redcol/resource_type/TMAdeniran, A. A., Fernández‐Santos, N. A., Rodríguez‐Rojas, J. J., Treviño‐Garza, N., Huerta‐Jiménez, H., Mis‐Ávila, P. C., Pérez‐Pech, W. A., Hernández‐Triana, L. M., & Rodríguez‐Pérez, M. A. (2019, 2019/12//). Identification of phlebotomine sand flies (Diptera: Psychodidae) from leishmaniasis endemic areas in southeastern Mexico using DNA barcoding. Ecology and Evolution, 9(23), 13543-13554. https://doi.org/10.1002/ece3.5811Adler, S., & Theodor, O. (1957). Transmission of Disease Agents by Phlebotomine Sand Flies. Annual Review of Entomology, 2(Volume 2, 1957), 203-226. https://doi.org/https://doi.org/10.1146/annurev.en.02.010157.001223Aljanabi, S. M., & Martinez, I. (1997, Nov 15). Universal and rapid salt-extraction of high quality genomic DNA for PCR-based techniques. Nucleic Acids Res, 25(22), 4692-4693. https://doi.org/10.1093/nar/25.22.4692Allen, G. C., Flores-Vergara, M. A., Krasynanski, S., Kumar, S., & Thompson, W. F. (2006). A modified protocol for rapid DNA isolation from plant tissues using cetyltrimethylammonium bromide. Nat Protoc, 1(5), 2320-2325. https://doi.org/10.1038/nprot.2006.384Alonso, A. (2013). DNA Extraction and Quantification. In (pp. 214-218). https://doi.org/10.1016/B978-0-12-382165-2.00039-8Asato, Y., Oshiro, M., Myint, C. K., Yamamoto, Y., Kato, H., Marco, J. D., Mimori, T., Gomez, E. A., Hashiguchi, Y., & Uezato, H. (2009, Apr). Phylogenic analysis of the genus Leishmania by cytochrome b gene sequencing. Exp Parasitol, 121(4), 352-361. https://doi.org/10.1016/j.exppara.2008.12.013Barker, K. (1998). Phenol-chloroform isoamyl alcohol (PCI) DNA extraction. At the Bench, 735Bejarano, E. E., & Estrada, L. G. (2016). Family psychodidae. Zootaxa, 4122(1), 187-238Bejarano, E. E., Uribe, S., Rojas, W., & Iván Darío, V. (2019). Presence of Lutzomyia evansi, a vector of American visceral leishmaniasis, in an urban area of the Colombian Caribbean coast. Articulo de revistaBloom, D. E., & Cadarette, D. (2019). Infectious Disease Threats in the Twenty-First Century: Strengthening the Global Response. Front Immunol, 10, 549. https://doi.org/10.3389/fimmu.2019.00549Bonsu, D. N. O., Higgins, D., Simon, C., Goodwin, C. S., Henry, J. M., & Austin, J. J. (2023). Quantitative PCR overestimation of DNA in samples contaminated with tin. Journal of Forensic Sciences, 68(4), 1302-1309Brian, M. (2015). Assessment of Nucleic Acid Purity. Wilmington, MA, USA: Thermo Fisher ScientificCai, Y., Wang, X., Zhang, N., Li, J., Gong, P., He, B., & Zhang, X. (2019, Oct). First report of the prevalence and genotype of Trypanosoma spp. in bats in Yunnan Province, Southwestern China. Acta Trop, 198, 105105. https://doi.org/10.1016/j.actatropica.2019.105105Carrero-Sarmiento, D., & Hoyos-López, R. (2018, Mar 1). Molecular identification and genetic diversity of Lutzomyia gomezi (Diptera: Psychodidae) using DNAbarcodes in Cordoba, Colombia. Trop Biomed, 35(1), 100-110Casaril, A. E., de Oliveira, L. P., Alonso, D. P., de Oliveira, E. F., Gomes Barrios, S. P., de Oliveira Moura Infran, J., Fernandes, W. S., Oshiro, E. T., Ferreira, A. M. T., Ribolla, P. E. M., & de Oliveira, A. G. (2017, Jun). Standardization of DNA extraction from sand flies: Application to genotyping by next generation sequencing. Exp Parasitol, 177, 66-72. https://doi.org/10.1016/j.exppara.2017.04.010Chacon-Cortes, D., Haupt, L. M., Lea, R. A., & Griffiths, L. R. (2012). Comparison of genomic DNA extraction techniques from whole blood samples: a time, cost and quality evaluation study. Molecular biology reports, 39, 5961-5966. https://link.springer.com/article/10.1007/s11033-011-1408-8Chen, H., Rangasamy, M., Tan, S. Y., Wang, H., & Siegfried, B. D. (2010, Aug 13). Evaluation of five methods for total DNA extraction from western corn rootworm beetles. PLoS One, 5(8), e11963. https://doi.org/10.1371/journal.pone.0011963Chen, T. Y., Vorsino, A. E., Kosinski, K. J., Romero-Weaver, A. L., Buckner, E. A., Chiu, J. C., & Lee, Y. (2021, Apr 15). A Magnetic-Bead-Based Mosquito DNA Extraction Protocol for Next-Generation Sequencing. J Vis Exp(170). https://doi.org/10.3791/62354Chomel, B. B. (2009, 2009). Zoonoses. Encyclopedia of Microbiology, 820-829. https://doi.org/10.1016/B978-012373944-5.00213-3Collins, F. H., Mendez, M. A., Rasmussen, M. O., Mehaffey, P. C., Besansky, N. J., & Finnerty, V. (1987, Jul). A ribosomal RNA gene probe differentiates member species of the Anopheles gambiae complex. Am J Trop Med Hyg, 37(1), 37-41. https://doi.org/10.4269/ajtmh.1987.37.37Cooper, B. S., Vanderpool, D., Conner, W. R., Matute, D. R., & Turelli, M. (2019). Wolbachia acquisition by Drosophila yakuba-clade hosts and transfer of incompatibility loci between distantly related Wolbachia. Genetics, 212(4), 1399-1419de Almeida Ferreira, S., Leite, R. S., Ituassu, L. T., Almeida, G. G., Souza, D. M., Fujiwara, R. T., de Andrade, A. S., & Melo, M. N. (2012). Canine skin and conjunctival swab samples for the detection and quantification of Leishmania infantum DNA in an endemic urban area in Brazil. PLoS Negl Trop Dis, 6(4), e1596. https://doi.org/10.1371/journal.pntd.0001596Ditrich‐Schroder, G., Wingfield, M. J., Klein, H., & Slippers, B. (2012). DNA extraction techniques for DNA barcoding of minute gall‐inhabiting wasps. Molecular Ecology Resources, 12(1), 109-115el Tai, N. O., Osman, O. F., el Fari, M., Presber, W., & Schönian, G. (2000, Sep-Oct). Genetic heterogeneity of ribosomal internal transcribed spacer in clinical samples of Leishmania donovani spotted on filter paper as revealed by single-strand conformation polymorphisms and sequencing. Trans R Soc Trop Med Hyg, 94(5), 575-579. https://doi.org/10.1016/s0035-9203(00)90093-2Feng, X., Kambic, L., Nishimoto, J. H. K., Reed, F. A., Denton, J. A., Sutton, J. T., & Gantz, V. M. (2021, Aug). Evaluation of Gene Knockouts by CRISPR as Potential Targets for the Genetic Engineering of the Mosquito Culex quinquefasciatus. Crispr j, 4(4), 595-608. https://doi.org/10.1089/crispr.2021.0028Folmer, O., Black, M., Hoeh, W., Lutz, R., & Vrijenhoek, R. (1994, Oct). DNA primers for amplification of mitochondrial cytochrome c oxidase subunit I from diverse metazoan invertebrates. Mol Mar Biol Biotechnol, 3(5), 294-299Gloor, G. B., Preston, C. R., Johnson-Schlitz, D. M., Nassif, N. A., Phillis, R. W., Benz, W. K., Robertson, H. M., & Engels, W. R. (1993, Sep). Type I repressors of P element mobility. Genetics, 135(1), 81-95. https://doi.org/10.1093/genetics/135.1.81Golczer, G., & Arrivillaga, J. (2008, 2008/12/31/). Modificación de un protocolo estándar de extracción de ADN para flebotominos pequeños (Phlebotominae: Lutzomyia). Revista Colombiana de Entomología, 34(2), 199-202. https://doi.org/10.25100/socolen.v34i2.9290Goldberg, S. (2008). Mechanical/physical methods of cell disruption and tissue homogenization. 2D PAGE: Sample preparation and fractionation, 3-22.Grace, D., Mutua, F. K., Ochungo, P., Kruska, R., Jones, K., Brierley, L., Lapar, M. L., Said, M. Y., Herrero, M. T., & Phuc, P. (2012). Mapping of poverty and likely zoonoses hotspots.Gross, L. (2007, 2007/03//). Untapped Bounty: Sampling the Seas to Survey Microbial Biodiversity. PLOS Biology, 5(3), e85. https://doi.org/10.1371/journal.pbio.0050085Gualda, K. P., Marcussi, L. M., Neitzke-Abreu, H. C., Aristides, S. M., Lonardoni, M. V., Cardoso, R. F., & Silveira, T. G. (2015, Sep-Oct). NEW PRIMERS FOR DETECTION OF Leishmania infantum USING POLYMERASE CHAIN REACTION. Rev Inst Med Trop Sao Paulo, 57(5), 377-383. https://doi.org/10.1590/s0036-46652015000500002Gutiérrez-López, R., Martínez-de la Puente, J., Gangoso, L., Soriguer, R. C., & Figuerola, J. (2015, Jun). Comparison of manual and semi-automatic DNA extraction protocols for the barcoding characterization of hematophagous louse flies (Diptera: Hippoboscidae). J Vector Ecol, 40(1), 11-15. https://doi.org/10.1111/jvec.12127Gutierrez, M. A. C., Lopez, R. O. H., Ramos, A. T., Vélez, I. D., Gomez, R. V., Arrivillaga-Henríquez, J., & Uribe, S. (2021, Sep). DNA barcoding of Lutzomyia longipalpis species complex (Diptera: Psychodidae), suggests the existence of 8 candidate species. Acta Trop, 221, 105983. https://doi.org/10.1016/j.actatropica.2021.105983Hakkour, M., Hmamouch, A., Mahmoud El Alem, M., Bouyahya, A., Balahbib, A., El Khazraji, A., Fellah, H., Sadak, A., & Sebti, F. (2020). Risk Factors Associated with Leishmaniasis in the Most Affected Provinces by Leishmania infantum in Morocco. Interdiscip Perspect Infect Dis, 2020, 6948650. https://doi.org/10.1155/2020/6948650Halos, L., Jamal, T., Vial, L., Maillard, R., Suau, A., Le Menach, A., Boulouis, H. J., & Vayssier-Taussat, M. (2004, Nov-Dec). Determination of an efficient and reliable method for DNA extraction from ticks. Vet Res, 35(6), 709-713. https://doi.org/10.1051/vetres:2004038Hu, W., & Lagarias, J. C. (2020a). https://doi.org/10.1101/2020.02.13.948455Hunter, P. (2007, Mar). Dig this. Biomolecular archaeology provides new insights into past civilizations, cultures and practices. EMBO Rep, 8(3), 215-217. https://doi.org/10.1038/sj.embor.7400923Jangra, S., & Ghosh, A. (2022). Rapid and zero-cost DNA extraction from soft-bodied insects for routine PCR-based applications. PLoS One, 17(7), e0271312. https://journals.plos.org/plosone/article/file?id=10.1371/journal.pone.0271312&type=printableJones, K. E., Patel, N. G., Levy, M. A., Storeygard, A., Balk, D., Gittleman, J. L., & Daszak, P. (2008, Feb 21). Global trends in emerging infectious diseases. Nature, 451(7181), 990-993. https://doi.org/10.1038/nature06536Kaewmee, S., Mano, C., Phanitchakun, T., Ampol, R., Yasanga, T., Pattanawong, U., Junkum, A., Siriyasatien, P., Bates, P. A., & Jariyapan, N. (2023). Natural infection with Leishmania (Mundinia) martiniquensis supports Culicoides peregrinus (Diptera: Ceratopogonidae) as a potential vector of leishmaniasis and characterization of a Crithidia sp. isolated from the midges. Front Microbiol, 14, 1235254. https://doi.org/10.3389/fmicb.2023.1235254Kato, H., Uezato, H., Katakura, K., Calvopiña, M., Marco, J. D., Barroso, P. A., Gomez, E. A., Mimori, T., Korenaga, M., Iwata, H., Nonaka, S., & Hashiguchi, Y. (2005, Jan). Detection and identification of Leishmania species within naturally infected sand flies in the andean areas of ecuador by a polymerase chain reaction. Am J Trop Med Hyg, 72(1), 87-93. https://core.ac.uk/download/pdf/70354377Koetsier, G., & Cantor, E. (2019). A practical guide to analyzing nucleic acid concentration and purity with microvolume spectrophotometers. New England Biolabs Inc, 1-8.Kong, W. J., Wang, Y., Wang, Q., Han, Y. C., & Hu, Y. J. (2006, Jun 20). Comparison of three methods for isolation of nucleic acids from membranate inner ear tissue of rats. Chin Med J (Engl), 119(12), 986-990Kuno, G., & Chang, G. J. (2005, Oct). Biological transmission of arboviruses: reexamination of and new insights into components, mechanisms, and unique traits as well as their evolutionary trends. Clin Microbiol Rev, 18(4), 608-637. https://doi.org/10.1128/cmr.18.4.608-637.2005Lachaud, L., Marchergui-Hammami, S., Chabbert, E., Dereure, J., Dedet, J. P., & Bastien, P. (2002, Jan). Comparison of six PCR methods using peripheral blood for detection of canine visceral leishmaniasis. J Clin Microbiol, 40(1), 210-215. https://doi.org/10.1128/jcm.40.1.210-215.2002Lainson, R., Shaw, J. J., Ryan, L., Ribeiro, R. S. M., & Silveira, F. T. (1985, 1985/01//). Leishmaniasis in Brazil. XXI. visceral leishmaniasis in the Amazon Region and further observations on the role of Lutzomyia longipalpis (Lutz & Neiva, 1912) as the vector. Transactions of The Royal Society of Tropical Medicine and Hygiene, 79(2), 223-226. https://doi.org/10.1016/0035-9203(85)90340-2Lambraño Cruz, L. F., Manjarrez Pinzón, G., & Bejarano Martínez, E. E. (2012). Variación temporal de especies de Lutzomyia (Diptera: Psychodidae) en el área urbana de Sincelejo (Colombia). Revista Salud Uninorte, 28(2), 191-200Leonel, J. A. F., Vioti, G., Alves, M. L., da Silva, D. T., Meneghesso, P. A., Benassi, J. C., Spada, J. C. P., Galvis-Ovallos, F., Soares, R. M., & Oliveira, T. (2020, Nov). DNA extraction from individual Phlebotomine sand flies (Diptera: Psychodidae: Phlebotominae) specimens: Which is the method with better results? Exp Parasitol, 218, 107981. https://doi.org/10.1016/j.exppara.2020.107981Lindahl, T. (1993, Apr 22). Instability and decay of the primary structure of DNA. Nature, 362(6422), 709-715. https://doi.org/10.1038/362709a0Long, M. T. (2014, 2014/12/01/). West Nile Virus and Equine Encephalitis Viruses: New Perspectives. Veterinary Clinics of North America: Equine Practice, 30(3), 523-542. https://doi.org/10.1016/j.cveq.2014.08.009 (New Perspectives in Infectious Diseases)Lucena-Aguilar, G., Sánchez-López, A. M., Barberán-Aceituno, C., Carrillo-Avila, J. A., López-Guerrero, J. A., & Aguilar-Quesada, R. (2016). DNA source selection for downstream applications based on DNA quality indicators analysis. Biopreservation and biobanking, 14(4), 264-270.Maitre, A., Wu-Chuang, A., Aželytė, J., Palinauskas, V., Mateos-Hernández, L., Obregon, D., Hodžić, A., Valiente Moro, C., Estrada-Peña, A., Paoli, J.-C., Falchi, A., & Cabezas-Cruz, A. (2022, 2022/01/04). Vector microbiota manipulation by host antibodies: the forgotten strategy to develop transmission-blocking vaccines. Parasites & Vectors, 15(1), 4. https://doi.org/10.1186/s13071-021-05122-5Mann, S., Frasca, K., Scherrer, S., Henao-Martínez, A. F., Newman, S., Ramanan, P., & Suarez, J. A. (2021). A Review of Leishmaniasis: Current Knowledge and Future Directions. Curr Trop Med Rep, 8(2), 121-132. https://doi.org/10.1007/s40475-021-00232-7Mekonnen, S. A., Gezehagn, A., Berju, A., Haile, B., Dejene, H., Nigatu, S., Molla, W., & Jemberu, W. T. (2021). Health and economic burden of foodborne zoonotic diseases in Amhara region, Ethiopia. PLoS One, 16(12), e0262032. https://doi.org/10.1371/journal.pone.0262032Michalsky, E. M., Fortes-Dias, C. L., Pimenta, P. F., Secundino, N. F., & Dias, E. S. (2002, Sep-Oct). Assessment of PCR in the detection of Leishmania spp in experimentally infected individual phlebotomine sandflies (Diptera: Psychodidae: Phlebotominae). Rev Inst Med Trop Sao Paulo, 44(5), 255-259. https://doi.org/10.1590/s0036-46652002000500004Milani, C., Hevia, A., Foroni, E., Duranti, S., Turroni, F., Lugli, G. A., Sanchez, B., Martin, R., Gueimonde, M., van Sinderen, D., Margolles, A., & Ventura, M. (2013). Assessing the fecal microbiota: an optimized ion torrent 16S rRNA gene-based analysis protocol. PLoS One, 8(7), e68739. https://doi.org/10.1371/journal.pone.0068739Miller, S. A., Dykes, D. D., & Polesky, H. (1988). A simple salting out procedure for extracting DNA from human nucleated cells. Nucleic acids research, 16(3), 1215. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC334765/pdf/nar00145-0424Montalvo, A. M., Fraga, J., El Safi, S., Gramiccia, M., Jaffe, C. L., Dujardin, J. C., & Van der Auwera, G. (2014, Sep). Direct Leishmania species typing in Old World clinical samples: evaluation of 3 sensitive methods based on the heat-shock protein 70 gene. Diagn Microbiol Infect Dis, 80(1), 35-39. https://doi.org/10.1016/j.diagmicrobio.2014.05.012Montalvo, A. M., Fraga, J., Monzote, L., Montano, I., De Doncker, S., Dujardin, J. C., & Van der Auwera, G. (2010, Jul). Heat-shock protein 70 PCR-RFLP: a universal simple tool for Leishmania species discrimination in the New and Old World. Parasitology, 137(8), 1159-1168. https://doi.org/10.1017/s0031182010000089Montesino Pérez, A. M., & Vergara Meza, J. G. (2015). Código de barras de adn aplicado a la identificación de restos de ingestas sanguíneas en especies del género lutzomyia (diptera: psychodidae) en un microfoco periurbano de leishmaniasis cutánea de Sincelejo, Sucre.Munyua, P., Bitek, A., Osoro, E., Pieracci, E. G., Muema, J., Mwatondo, A., Kungu, M., Nanyingi, M., Gharpure, R., & Njenga, K. (2016). Prioritization of zoonotic diseases in Kenya, 2015. PLoS One, 11(8), e0161576.Musapa, M., Kumwenda, T., Mkulama, M., Chishimba, S., Norris, D. E., Thuma, P. E., & Mharakurwa, S. (2013, Jan 9). A simple Chelex protocol for DNA extraction from Anopheles spp. J Vis Exp(71). https://doi.org/10.3791/3281Noyes, H., Stevens, J., Teixeira, M., Phelan, J., & Holz, P. (1999). A nested PCR for the ssrRNA gene detects Trypanosoma binneyi in the platypus and Trypanosoma sp. in wombats and kangaroos in Australia1. International Journal for Parasitology, 29(2), 331-339.Noyes, H., Stevens, J., Teixeira, M., Phelan, J., & Holz, P. (2000). Corrigendum to''A nested PCR for the ssrRNA gene detects Trypanosoma binneyi in the platypus and Trypanosoma sp. in wombats and kangaroos in Australia''[International Journal for Parasitology 29 (2)(1999) 331-339]. International Journal for Parasitology, 2(30), 228.Noyes, H. A., Camps, A. P., & Chance, M. L. (1996, Sep). Leishmania herreri (Kinetoplastida; Trypanosomatidae) is more closely related to Endotrypanum (Kinetoplastida; Trypanosomatidae) than to Leishmania. Mol Biochem Parasitol, 80(1), 119-123. https://doi.org/10.1016/0166-6851(96)02679-5Papatheodorou, S. A., Halvatsiotis, P., & Houhoula, D. (2021). A comparison of different DNA extraction methods and molecular techniques for the detection and identification of foodborne pathogens. AIMS Microbiol, 7(3), 304-319. https://doi.org/10.3934/microbiol.2021019Pérez-Doria, A., Bejarano, E. E., Sierra, D., & Vélez, I. D. (2008). Molecular Evidence Confirms the Taxonomic Separation of Lutzomyia tihuiliensis from Lutzomyia pia (Diptera: Psychodidae) and the Usefulness of Pleural Pigmentation Patterns in Species Identification. Journal of Medical Entomology, 45(4), 653-659, 657. https://doi.org/10.1603/0022-2585(2008)45[653:MECTTS]2.0.CO;2Psifidi, A., Dovas, C. I., Bramis, G., Lazou, T., Russel, C. L., Arsenos, G., & Banos, G. (2015). Comparison of eleven methods for genomic DNA extraction suitable for large-scale whole-genome genotyping and long-term DNA banking using blood samples. PLoS One, 10(1), e0115960. https://doi.org/10.1371/journal.pone.0115960Raja, K. K. B., Bachman, E. A., Fernholz, C. E., Trine, D. S., Hobmeier, R. E., Maki, N. J., Massoglia, T. J., & Werner, T. (2023, Jan 24). The Genetic Mechanisms Underlying the Concerted Expression of the yellow and tan Genes in Complex Patterns on the Abdomen and Wings of Drosophila guttifera. Genes (Basel), 14(2). https://doi.org/10.3390/genes14020304Ready, P. (2014, 2014/05//). Epidemiology of visceral leishmaniasis. Clinical Epidemiology, 147. https://doi.org/10.2147/CLEP.S44267Rider, M. A., Byrd, B. D., Keating, J., Wesson, D. M., & Caillouet, K. A. (2012). PCR detection of malaria parasites in desiccated Anopheles mosquitoes is uninhibited by storage time and temperature. Malaria journal, 11, 193. Retrieved 2012/06//, from http://europepmc.org/abstract/MED/22682161Riemann, K., Adamzik, M., Frauenrath, S., Egensperger, R., Schmid, K. W., Brockmeyer, N. H., & Siffert, W. (2007). Comparison of manual and automated nucleic acid extraction from whole-blood samples. J Clin Lab Anal, 21(4), 244-248. https://doi.org/10.1002/jcla.20174Rohr, J. R., Barrett, C. B., Civitello, D. J., Craft, M. E., Delius, B., DeLeo, G. A., Hudson, P. J., Jouanard, N., Nguyen, K. H., Ostfeld, R. S., Remais, J. V., Riveau, G., Sokolow, S. H., & Tilman, D. (2019, 2019/06/01). Emerging human infectious diseases and the links to global food production. Nature Sustainability, 2(6), 445-456. https://doi.org/10.1038/s41893-019-0293-3Rueda-Concha, K. L., Payares-Mercado, A., Guerra-Castillo, J., Melendrez, J., Arroyo-Munive, Y., Martínez-Abad, L., Cochero, S., Bejarano, E. E., & Paternina, L. E. (2022, Dec 1). [Circulación de Leishmania infantum y Trypanosoma cruzi en perros domésticos de áreas urbanas de Sincelejo, región Caribe de Colombia]. Biomedica, 42(4), 633-649. https://doi.org/10.7705/biomedica.6369Salonen, A., Nikkilä, J., Jalanka-Tuovinen, J., Immonen, O., Rajilić-Stojanović, M., Kekkonen, R. A., Palva, A., & de Vos, W. M. (2010, May). Comparative analysis of fecal DNA extraction methods with phylogenetic microarray: effective recovery of bacterial and archaeal DNA using mechanical cell lysis. J Microbiol Methods, 81(2), 127-134. https://doi.org/10.1016/j.mimet.2010.02.007Santos, M., Martínez-Pérez, L., Rivero, M., Cortés-Alemán, L., Pérez-Doria, A., & Bejarano-Martínez, E. (2021, 11/24). Detección de Leishmania spp. (Trypanosomatidae) e identificación de ingestas sanguíneas en flebotomíneos de un nuevo foco de leishmaniasis en el Caribe colombiano. Ciencia e Innovación en Salud. https://doi.org/10.17081/innosa.142Savić, S., Vidić, B., Grgić, Z., Potkonjak, A., & Spasojevic, L. (2014). Emerging Vector-Borne Diseases - Incidence through Vectors. Front Public Health, 2, 267. https://doi.org/10.3389/fpubh.2014.00267Senne, N. A., Santos, H. A., Araujo, T. R., Paulino, P. G., Mendonca, L. P., Moreira, H. V. S., Camilo, T. A., & da Costa Angelo, I. (2022, Jun). Robust comparative performance of genomic DNA extraction methods from non-engorged phlebotomine sandflies. Med Vet Entomol, 36(2), 203-211. https://doi.org/10.1111/mve.12567Shaik, M., Shivanna, D. K., Kamate, M., Ab, V., & Tp, K. V. (2016, Nov). Single Lysis-Salting Out Method of Genomic DNA Extraction From Dried Blood Spots. J Clin Lab Anal, 30(6), 1009-1012. https://doi.org/10.1002/jcla.21972Shwani, A., Zuo, B., Alrubaye, A., Zhao, J., & Rhoads, D. D. (2023). A Simple, Inexpensive Alkaline Method for Bacterial DNA Extraction from Environmental Samples for PCR Surveillance and Microbiome Analyses. Applied Sciences, 14(1), 141.Sierra, D., Vélez, I. D., & Uribe, S. (2000). Identificación de Lutzomyia spp.(Diptera: Psychodidae) grupo verrucarum por medio de microscopía electrónica de sus huevos. Revista de Biología Tropical, 48(2-3), 615-622Sleator, R. D. (2010, Jul-Aug). The story of Mycoplasma mycoides JCVI-syn1.0: the forty million dollar microbe. Bioeng Bugs, 1(4), 229-230. https://doi.org/10.4161/bbug.1.4.12465Spitzer, M., Wildenhain, J., Rappsilber, J., & Tyers, M. (2014, 2014/02/01). BoxPlotR: a web tool for generation of box plots. Nature Methods, 11(2), 121-122. https://doi.org/10.1038/nmeth.2811Sudia, W. D., & Chamberlain, R. W. (1988, 1988/12//). Battery-operated light trap, an improved model. By W. D. Sudia and R. W. Chamberlain, 1962. Journal of the American Mosquito Control Association, 4(4), 536-538. http://www.ncbi.nlm.nih.gov/pubmed/3066845Takamiya, N. T., Rogerio, L. A., Torres, C., Leonel, J. A. F., Vioti, G., de Sousa Oliveira, T. M. F., Valeriano, K. C., Porcino, G. N., de Miranda Santos, I. K. F., Costa, C. H. N., Costa, D. L., Ferreira, T. S., Gurgel-Gonçalves, R., da Silva, J. S., Teixeira, F. R., De Almeida, R. P., Ribeiro, J. M. C., & Maruyama, S. R. (2023, Aug 8). Parasite Detection in Visceral Leishmaniasis Samples by Dye-Based qPCR Using New Gene Targets of Leishmania infantum and Crithidia. Trop Med Infect Dis, 8(8). https://doi.org/10.3390/tropicalmed8080405Takano, A., Goka, K., Une, Y., Shimada, Y., Fujita, H., Shiino, T., Watanabe, H., & Kawabata, H. (2010, Jan). Isolation and characterization of a novel Borrelia group of tick-borne borreliae from imported reptiles and their associated ticks. Environ Microbiol, 12(1), 134-146. https://doi.org/10.1111/j.1462-2920.2009.02054.xThiombiano, N. G., Boungou, M., Chabi, B. A. M., Oueda, A., Werb, O., & Schaer, J. (2023, Dec). First investigation of blood parasites of bats in Burkina Faso detects Hepatocystis parasites and infections with diverse Trypanosoma spp. Parasitol Res, 122(12), 3121-3129. https://doi.org/10.1007/s00436-023-08002-2Topcu, A., Asir, S., & Türkmen, D. (2016, 07/01). DNA Purification by Solid Phase Extraction (SPE) Methods Katı Faz Ayırma Yöntemiyle DNA Saflaştırılması Review Article. Hacettepe Journal of Biology and Chemistry, 44, 259-266. https://doi.org/10.15671/HJBC.20164420568Truett, G. E., Heeger, P., Mynatt, R. L., Truett, A. A., Walker, J. A., & Warman, M. L. (2000, Jul). Preparation of PCR-quality mouse genomic DNA with hot sodium hydroxide and tris (HotSHOT). Biotechniques, 29(1), 52, 54. https://doi.org/10.2144/00291bm09Ushijima, Y., Oliver, J. H., Jr., Keirans, J. E., Tsurumi, M., Kawabata, H., Watanabe, H., & Fukunaga, M. (2003, Feb). Mitochondrial sequence variation in Carlos capensis (Neumann), a parasite of seabirds, collected on Torishima Island in Japan. J Parasitol, 89(1), 196-198. https://doi.org/10.1645/0022-3395(2003)089[0196:Msvicc]2.0.Co;2van Eys, G. J., Schoone, G. J., Kroon, N. C., & Ebeling, S. B. (1992, Mar). Sequence analysis of small subunit ribosomal RNA genes and its use for detection and identification of Leishmania parasites. Mol Biochem Parasitol, 51(1), 133-142. https://doi.org/10.1016/0166-6851(92)90208-2Vasuki, V., Subramanian, S., Hoti, S. L., & Jambulingam, P. (2012, Dec). Use of a simple DNA extraction method for high-throughput detection of filarial parasite Wuchereria bancrofti in the vector mosquitoes. Parasitol Res, 111(6), 2479-2481. https://doi.org/10.1007/s00436-012-3026-3Weirather, J. L., Jeronimo, S. M., Gautam, S., Sundar, S., Kang, M., Kurtz, M. A., Haque, R., Schriefer, A., Talhari, S., Carvalho, E. M., Donelson, J. E., & Wilson, M. E. (2011, Nov). Serial quantitative PCR assay for detection, species discrimination, and quantification of Leishmania spp. in human samples. J Clin Microbiol, 49(11), 3892-3904. https://doi.org/10.1128/JCM.r00764-11WHO. (2020). Vector-borne Diseases. https://www.who.int/news-room/fact-sheets/detail/vector-borne-diseasesWilfinger, W. W., Mackey, K., & Chomczynski, P. (1997, Mar). Effect of pH and ionic strength on the spectrophotometric assessment of nucleic acid purity. Biotechniques, 22(3), 474-476, 478-481. https://doi.org/10.2144/97223st01Wilson, A. J., Morgan, E. R., Booth, M., Norman, R., Perkins, S. E., Hauffe, H. C., Mideo, N., Antonovics, J., McCallum, H., & Fenton, A. (2017, 2017/05/05/). What is a vector? Philosophical Transactions of the Royal Society B: Biological Sciences, 372(1719), 20160085. https://doi.org/10.1098/rstb.2016.0085Wilson, I. G. (1997, Oct). Inhibition and facilitation of nucleic acid amplification. Appl Environ Microbiol, 63(10), 3741-3751. https://doi.org/10.1128/aem.63.10.3741-3751.1997Young, D. G., & Duran, M. A. (1994). Guide to the Identification and Geographic Distribution of Lutzomyia Sand Flies in Mexico, the West Indies, Central and South America (Diptera:Psychodidae).Zink, F. A., Tembrock, L. R., Timm, A. E., Farris, R. E., Perera, O. P., & Gilligan, T. M. (2017). A droplet digital PCR (ddPCR) assay to detect Helicoverpa armigera (Lepidoptera: Noctuidae) in bulk trap samples. PLoS One, 12(5), e0178704. https://doi.org/10.1371/journal.pone.0178704Métodos de extracciónFlebotomíneosADNExtraction methodsPhlebotomineDNAPublicationORIGINALPérez Pérez, María Victoria.pdfPérez Pérez, María Victoria.pdfapplication/pdf1556081https://repositorio.unicordoba.edu.co/bitstreams/37895402-443c-48a1-9407-10396a223140/download607edd225433ebc72c6930e83dab35b3MD51Formato de autorización. Maria V. Perez Perez.pdfFormato de autorización. Maria V. Perez Perez.pdfapplication/pdf607441https://repositorio.unicordoba.edu.co/bitstreams/c53c5f0d-19c3-41ee-8895-3816616987b1/downloadaa8720154f79b5b4c60ac19604cb7447MD55LICENSElicense.txtlicense.txttext/plain; charset=utf-815543https://repositorio.unicordoba.edu.co/bitstreams/f608c591-2995-4f7b-9924-ede37a1d87e6/download73a5432e0b76442b22b026844140d683MD53TEXTPérez Pérez, María Victoria.pdf.txtPérez Pérez, María Victoria.pdf.txtExtracted texttext/plain101599https://repositorio.unicordoba.edu.co/bitstreams/8e60da69-362a-4766-b45b-d3449157412c/downloadbfc1f47a0e18d49d42d13d1dc8655368MD56Formato de autorización. Maria V. Perez Perez.pdf.txtFormato de autorización. Maria V. Perez Perez.pdf.txtExtracted texttext/plain5760https://repositorio.unicordoba.edu.co/bitstreams/0de85d7b-fd91-411e-9976-40fbca515a9c/downloaddc225a5a6e456138fad24e39903a65feMD58THUMBNAILPérez Pérez, María Victoria.pdf.jpgPérez Pérez, María Victoria.pdf.jpgGenerated Thumbnailimage/jpeg5210https://repositorio.unicordoba.edu.co/bitstreams/b3a8faa0-962a-4473-9f73-7f2971f6c0e1/downloadb52850ab27a5ec81a591dad05565f354MD57Formato de autorización. Maria V. Perez Perez.pdf.jpgFormato de autorización. Maria V. Perez Perez.pdf.jpgGenerated Thumbnailimage/jpeg14388https://repositorio.unicordoba.edu.co/bitstreams/7e77397b-6880-4974-9faa-a6d34dcb6a26/download6343dbb2192926f4998c80b744102ff9MD59ucordoba/8690oai:repositorio.unicordoba.edu.co:ucordoba/86902024-11-08 03:00:18.886https://creativecommons.org/licenses/by-nc-nd/4.0/embargohttps://repositorio.unicordoba.edu.coRepositorio Universidad de Córdobabdigital@metabiblioteca.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