Mostrar el registro sencillo del ítem
Evaluación de la antigenicidad de péptidos derivados de la proteína pv12 de Plasmodium Vivax en muestras obtenidas de individuos de zonas endémicas de Colombia
dc.contributor.advisor | Lopez santana, Carolina | |
dc.contributor.advisor | Hernández, Edith | |
dc.contributor.author | Rodriguez Casas, Leidy Estefania | |
dc.contributor.author | Jaimes Blanco, Renzo Steven | |
dc.date.accessioned | 2021-11-10T20:41:32Z | |
dc.date.available | 2021-11-10T20:41:32Z | |
dc.date.issued | 2018-05-31 | |
dc.identifier.uri | https://repositorio.unicolmayor.edu.co/handle/unicolmayor/3639 | |
dc.description.abstract | La malaria es una enfermedad que afecta poblaciones en todo el mundo, y se presenta en áreas geográficamente adecuadas para la supervivencia del mosquito transmisor del género Anopheles. Este vector es el encargado de trasmitir el parasito intracelular del género Plasmodium, el cual presenta 5 especies clínicamente relevantes en el ser humano. Plasmodium vivax es la segunda especie más relevante, ya que presenta mayor incidencia y mortalidad a nivel mundial después de Plasmodium falciparum. Cabe resaltar que esta especie por sus características fisiológicas, no dispone de un cultivo continuo in vitro, por lo cual los avances en investigaciones son muy limitados. En este estudio se evalúo la antigenicidad de péptidos identificados como epitopes T, derivados de la proteína Pv12 de P. vivax en pacientes tipificados para HLADRB1*, mediante ensayos de linfoproliferación y cuantificación de citoquinas, además se evaluó la reactividad de epitopes B por medio de inmunoensayos. Los resultados permitieron evidenciar la respuesta antigenica de células mononucleares de sangre periférica (PBMCs) de los individuos que habían cursado la enfermedad, esta estimulación se evidencio en mayor medida por los péptidos 39113 y 39117, presentando una visible linfoproliferacion y altos niveles de IL-6 e IL-10, encaminando asi un perfil inmune por la vía Th2, por malaria causada por P.vivax, por otra parte, no se identifico diferencias significativas con relación al reconocimiento de epitopes B. | spa |
dc.description.tableofcontents | RESUMEN. 12 INTRODUCCIÓN. 13 1. MARCO TEÓRICO 15 1.1 MALARIA 16 1.1.1 Transmisión. 16 1.1.2 Características clínicas. 17 1.2 MALARIA EN EL MUNDO. 17 1.2.1 Distribución mundial de la malaria 18 1.3 MALARIA EN COLOMBIA 21 1.4 CICLO BIOLÓGICO DE LA MALARIA CAUSADA POR P. vivax 24 1.4.1 Fase asexual 24 1.4.1.1 Fase exoeritrocitaria (hepática) 24 1.4.1.2 Fase eritrocitaria 27 1.4.2 Fase sexual 30 1.5 PATOGÉNESIS 32 1.6 RESPUESTA INMUNE EN MALARIA 34 1.7 PROTEINA Pv12 35 1.8 ANTIGENICIDAD 36 2. OBJETIVO 37 2.1 GENERAL 37 2.2 ESPECIFICOS 37 3. ANTECEDENTES 38 4. METODOLOGIA 40 4.1.1 Tipo de estudio 40 4.1.2 Población de estudio 40 4.1.3 Muestra 40 5. PROCEDIMIENTOS 40 5.1 OBTENCIÓN DE LAS MUESTRAS 40 5.2 SELECCIÓN DE PÉPTIDOS 41 5.3 OBTENCIÓN DE CÉLULAS MONONUCLEARES 42 5.4 ENSAYO DE LINFOPROLIFERACIÓN PARA EPITOPES T 43 5.5 EVALUACIÓN DEL PERFIL DE CITOQUINAS POR CYTOMETRIC BEAD RRAY (CBA) 44 5.6 ELISA PARA DETERMINACION DE REACTIVIDAD DE EPÍTOPES B 44 5.7 ANÁLISIS ESTADÍSTICO DESCRIPTIVO 45 6. RESULTADOS 46 6.1 MUESTRAS EVALUADAS EN EL ESTUDIO 46 6.2 SELECCION DE PÉPTIDOS 47 6.3 ENSAYO DE LINFOPROLIFERACIÓN 48 6.4 CUANTIFICACIÓN DE CITOQUINAS POR CBA 51 6.5 REACTIVIDAD DE LOS EPÍTOPES B 58 7. DISCUSIÓN 61 8. CONCLUSIONES 65 9. BIBLIOGRAFIA 66 | spa |
dc.format.extent | 72p. | spa |
dc.format.mimetype | application/pdf | spa |
dc.language.iso | spa | spa |
dc.publisher | Universidad Colegio Mayor de Cundinamarca | spa |
dc.rights | Universidad Colegio Mayor de Cundinamarca, 2018 | spa |
dc.rights.uri | https://creativecommons.org/licenses/by-nc-sa/4.0/ | spa |
dc.title | Evaluación de la antigenicidad de péptidos derivados de la proteína pv12 de Plasmodium Vivax en muestras obtenidas de individuos de zonas endémicas de Colombia | spa |
dc.type | Trabajo de grado - Pregrado | spa |
dc.contributor.corporatename | Universidad Colegio Mayor de Cundinamarca | spa |
dc.description.degreelevel | Pregrado | spa |
dc.description.degreename | Bacteriólogo(a) y Laboratorista Clínico | spa |
dc.publisher.faculty | Facultad de Ciencias de la Salud | spa |
dc.publisher.place | Bogotá D.C | spa |
dc.publisher.program | Bacteriología y Laboratorio Clínico | spa |
dc.relation.references | Social Mdsyp. Malaria memorias(1). Federacion Medica Colombiana, 2012- 2013 | spa |
dc.relation.references | Chan DM, Director-General, Organization WH. WORLD 3. MALARIAREPORT 2017 (2). world health organization. 2017. | spa |
dc.relation.references | NS. Gestion para la vigilancia entomologica y control de la transmision en malaria(3). Guia entomologica de malaria. 2009-2010 | spa |
dc.relation.references | Luis Eduardo Rodriguez, Hernando Curtidor, Mauricio Urquiza, Gladys Cifuentes, Claudia Reyes, and, Manuel Elkin Patarroyo, Intimate Molecular Interactions of P. falciparum Merozoite Proteins Involved in Invasion of Red Blood Cells and Their Implications for Vaccine Design(4). CHEMICAL REVIEWS. 2008. | spa |
dc.relation.references | Michalakis Y, Renaud F. Correction. Canadian Medical Association Journal [Internet]. 2009 [cited 5 January 2018];180(10):1038-1038. | spa |
dc.relation.references | INS. Guia para la atencion clinica integral del paciente con Malaria (5). Guia clinica malaria. 2009-2010. | spa |
dc.relation.references | Power HJ. History of Malaria(9). encyclopedia of life sciences. 2001. | spa |
dc.relation.references | S. Thaithong’* NS, N. Seugom*, D. Buun and G. H. Beale’. Electrophoretic variants of enzymes of isolates of P. falciparum, P. malariae and P. vivax from Thailand(10). 1989. | spa |
dc.relation.references | SHARMA* PRaYD. molecular cloning and serological characterization of a new p.vivax recombinant antigen which contain alipoprotein b-100like sequences (11). biochemicaland biophysical research communications. 1992. | spa |
dc.relation.references | Arindam Dhar SG, Yagma D. Sharma. Alu Elements in P. vivax antigen gene(12). Febs letters 1998 | spa |
dc.relation.references | Li J, Ito D, Chen JH, Lu F, Cheng Y, Wang B, et al. Pv12, a 6-Cys antigen of Plasmodium vivax, is localized to the merozoite rhoptry. Parasitology international. 2012;61(3):443-9. | spa |
dc.relation.references | Moreno-Perez DA, Areiza-Rojas R, Florez-Buitrago X, Silva Y, Patarroyo ME, Patarroyo MA. The GPI-anchored 6-Cys protein Pv12 is present in detergentresistant microdomains of Plasmodium vivax blood stage schizonts. Protist. 2013;164(1):37-48 | spa |
dc.relation.references | Chan DM, Director-General, Organization WH. WORLD 3. MALARIA REPORT 2015 (2). world health organization. 2015. | spa |
dc.relation.references | Boletín epidemiológico semanal [Internet]. Minsalud.gov.co. 2017 [cited 5 January 2018]. | spa |
dc.relation.references | Spence L, Mendoza E, Louro A. Mechanisms of invasion from sporozoite of Plasmodium into the mosquito vector Anopheles. Bionatura. 2016;1(3):1-3. | spa |
dc.relation.references | Michalakis Y, Renaud F. Evolution in vector control. Nature. 2009;462(7271):298-300 | spa |
dc.relation.references | Cowman AF, Healer J, Marapana D, Marsh K. Malaria: Biology and Disease. Cell. 2016;167(3):610-24. | spa |
dc.relation.references | Beeson JG, Drew DR, Boyle MJ, Feng G, Fowkes FJ, Richards JS. Merozoite surface proteins in red blood cell invasion, immunity and vaccines against malaria. FEMS microbiology reviews. 2016;40(3):343-72. | spa |
dc.relation.references | Wang Q, Fujioka H, Nussenzweig V. Exit of Plasmodium Sporozoites from Oocysts Is an Active Process That Involves the Circumsporozoite Protein. PLoS Pathogens. 2005;1(1):72-79 | spa |
dc.relation.references | Pumarola, A. 1995. Microbiología y Parasitología Médica. 2da Edición. Editorial Salvat. Capítulo (76): 832-843 | spa |
dc.relation.references | Llop, A. 2001. Microbiología y Parasitología Médica. Editorial de Ciencias Médicas. Tomo III, Capítulo 88:152-167 | spa |
dc.relation.references | Malleret B, Renia L, Russell B. The unhealthy attraction of Plasmodium vivax to reticulocytes expressing transferrin receptor 1 (CD71). International journal for parasitology. 2017;47(7):379-83 | spa |
dc.relation.references | Li J, Han ET. Dissection of the Plasmodium vivax reticulocyte binding-like proteins (PvRBPs). Biochemical and biophysical research communications. 2012;426(1):1-6 | spa |
dc.relation.references | Franca CT, He WQ, Gruszczyk J, Lim NT, Lin E, Kiniboro B, et al. Plasmodium vivax Reticulocyte Binding Proteins Are Key Targets of Naturally Acquired Immunity in Young Papua New Guinean Children. PLoS neglected tropical diseases. 2016;10(9):e0005014 | spa |
dc.relation.references | Kano FS, Souza-Silva FA, Torres LM, Lima BA, Sousa TN, Alves JR, et al. The Presence, Persistence and Functional Properties of Plasmodium vivax Duffy Binding Protein II Antibodies Are Influenced by HLA Class II Allelic Variants. PLoS neglected tropical diseases. 2016;10(12):e0005177 | spa |
dc.relation.references | Iyer L. NUS scientists discover how anti-malaria drug works - Biotechin.Asia [Internet]. Biotechin.Asia. 2018 [cited 9 January 2018]. Available from: https://biotechin.asia/2015/12/23/nus-scientists-discover-how-anti-malaria-drugartemisinin-works/ | spa |
dc.relation.references | Dessens J, Beetsma A, Dimopoulos G, Wengelnik K, Crisanti A, Kafatos F et al. CTRP is essential for mosquito infection by malaria ookinetes. The EMBO Journal. 1999;18(22):6221-6227 | spa |
dc.relation.references | ughes A. Malaria Parasites: Genomes and Molecular Biology. Infection, Genetics and Evolution. 2004;4(4):322-326. | spa |
dc.relation.references | Adini A, Krugliak M, Ginsburg H, Li L, Lavie L, Warburg A. Transglutaminase in Plasmodium parasites: activity and putative role in oocysts and blood stages. Molecular and Biochemical Parasitology. 2001;117(2):161-168 | spa |
dc.relation.references | Aly A, Vaughan A, Kappe S. Malaria Parasite Development in the Mosquito and Infection of the Mammalian Host. Annual Review of Microbiology. 2009;63(1):199-221 | spa |
dc.relation.references | Sinden R. Molecular interactions betweenPlasmodiumand its insect vectors. Cellular Microbiology. 2002;4(11):713-717. | spa |
dc.relation.references | Anstey NM, Douglas NM, Poespoprodjo JR, Price RN. Plasmodium vivax: clinical spectrum, risk factors and pathogenesis. Advances in parasitology. 2012;80:151-201. | spa |
dc.relation.references | Louis H. Miller* DIB, Kevin Marsh & Ogobara K. Doumbo. The pathogenic basis of malaria(32). Nature. 2002;450. | spa |
dc.relation.references | Cowden IACaWB. Why is the Pathology of Falciparum Worse than that of Vivax Malaria? (33). Focus. 1999;15. | spa |
dc.relation.references | Fritsche G, Larcher C, Schennach H, Weiss G. Regulatory Interactions between Iron and Nitric Oxide Metabolism for Immune Defense against Plasmodium falciparum Infection. The Journal of Infectious Diseases. 2001;183(9):1388-1394 | spa |
dc.relation.references | Kumar R, Saravu K. Severe vivax malaria: a prospective exploration at a tertiary healthcare centre in Southwestern India. Pathogens and global health. 2017;111(3):148-60. | spa |
dc.relation.references | Julius Clemence Hafalla1, Olivier Silvie2,3,4, Kai Matuschewski2. Cell biology and immunology of malaria (54). Inmunological reviews. 2011. | spa |
dc.relation.references | Chan JA, Stanisic DI, Duffy MF, Robinson LJ, Lin E, Kazura JW, et al. Patterns of protective associations differ for antibodies to P.falciparum-infected erythrocytes and merozoites in immunity against malaria in children. European journal of immunology. 2017 | spa |
dc.relation.references | Jun-Hu Chen, Jae-Wan Jung, Yue Wang, Kwon-Soo Ha, Feng Lu, Chae Seung Lim,| Satoru Takeo,⊥ Takafumi Tsuboi,and Eun-Taek Han*, Immunoproteomics Profiling of Blood Stage Plasmodium vivax Infection by HighThroughput Screening Assays(37). Journal of Proteome Research 2010. | spa |
dc.relation.references | Rtodriguez. JF, Ospina. DG, Patarroyo MA. Low genetic diversity and funtional constraint in loci encoding Plasmodium vivax P12 and P38 proteins in the Coombian populations (38). Malaria Journal. 2014. | spa |
dc.relation.references | Kindt T, Goldsby R, Osborne B. Inmunología de Kuby (6a. ed.). 2nd ed. Distrito Federal: McGraw-Hill Interamericana; 2007 | spa |
dc.relation.references | Ferreira A, Afani S, Lanza B, Aguillón J, Sepúlveda C. Inmunología básica y clínica. Ed. Mediterráneo, Santiago, Chile. 2005 | spa |
dc.relation.references | Parolín ML, Carnese FR. DISTRIBUCION ALELICA DEL LOCUS HLA-DRB1 EN POBLACIONES NATIVAS AMERICANAS. EVALUACION DE AFINIDADES EVOLUTIVAS INTRA E INTERCONTINENTALES(61r). Revista Argentina de Antropología Biológica. 2007. | spa |
dc.relation.references | Martinez P, Lopez C, Saravia C, Vanegas M, Patarroyo MA. Evaluation of the antigenicity of universal epitopes from PvDBPII in individuals exposed to Plasmodium vivax malaria. Microbes and infection. 2010;12(14-15):1188-97. | spa |
dc.relation.references | Sebina I, Fogg LG, James KR, Soon MSF, Akter J, Thomas BS, et al. IL-6 promotes CD4+ T-cell and B-cell activation during Plasmodium infection. Parasite Immunology. 2017:e12455. | spa |
dc.relation.references | Kato M, Suzuki H, Murakami M, Akama M, Matsukawa S, Hashimoto Y. Elevated plasma levels of interleukin-6, interleukin-8, and granulocyte colonystimulating factor during and after major abdominal surgery. Journal of Clinical Anesthesia. 1997;9(4):293-298. | spa |
dc.relation.references | Troye-Blomberg. M, Andersson. G, Stoczkowska. M, Shabo. R, Romero. P, Patarroyo. ME, et al. Production of Il-2 and IFN-gamma by T cells from malaria patients in response to Plasmodium faciparum erythrocyte antigens in vitro(59). The Journal of Inmmunology. 1985. | spa |
dc.relation.references | Sojka D, Bruniquel D, Schwartz R, Singh N. IL-2 Secretion by CD4+ T Cells In Vivo Is Rapid, Transient, and Influenced by TCR-Specific Competition. The Journal of Immunology. 2004;172(10):6136-6143. | spa |
dc.relation.references | Perez-Mazliah D, Langhorne J. CD4 T-cell subsets in malaria: TH1/TH2 revisited. Frontiers in immunology. 2014;5:671. | spa |
dc.relation.references | Chootong P, Ntumngia FB, VanBuskirk KM, Xainli J, Cole-Tobian JL, Campbell CO, et al. Mapping epitopes of the Plasmodium vivax Duffy binding protein with naturally acquired inhibitory antibodies. Infection and immunity. 2010;78(3):1089- 95 | spa |
dc.relation.references | Soares LA, Evangelista J, Orlandi PP, Almeida ME, de Sousa LP, Chaves Y, et al. Genetic diversity of MSP1 Block 2 of Plasmodium vivax isolates from Manaus (central Brazilian Amazon). Journal of immunology research. 2014;2014:671050 | spa |
dc.relation.references | Fonseca JA, Cabrera-Mora M, Singh B, Oliveira-Ferreira J, da Costa LimaJunior J, Calvo-Calle JM, et al. A chimeric protein-based malaria vaccine candidate induces robust T cell responses against Plasmodium vivax MSP119. Scientific reports. 2016;6:34527. | spa |
dc.relation.references | James R. Alaro AP, Kazutoyo Miura,Ababacar Diouf, Ana M. Lopez, Evelina Angov, Carole A. Long and James M. Burns Jr. . A Chimeric Plasmodium falciparum Merozoite Surface Protein Vaccine Induces Antibodies High Titers of Parasite Growth Inhibitory(64). Journals ASMorg. 2013. | spa |
dc.rights.accessrights | info:eu-repo/semantics/closedAccess | spa |
dc.rights.creativecommons | Atribución-NoComercial-CompartirIgual 4.0 Internacional (CC BY-NC-SA 4.0) | spa |
dc.subject.lemb | Enfermedad | |
dc.subject.lemb | Anopheles | |
dc.subject.lemb | Investigación | |
dc.subject.lemb | Células Mononucleares | |
dc.subject.proposal | Malaria | spa |
dc.subject.proposal | Plasmodium vivax | spa |
dc.subject.proposal | Proteína Pv12 | spa |
dc.subject.proposal | Polimorfismo | spa |
dc.subject.proposal | Péptidos sintéticos | spa |
dc.subject.proposal | Linfoproliferacion | spa |
dc.subject.proposal | Epitopes | spa |
dc.type.coar | http://purl.org/coar/resource_type/c_7a1f | spa |
dc.type.coarversion | http://purl.org/coar/version/c_970fb48d4fbd8a85 | spa |
dc.type.content | Text | spa |
dc.type.driver | info:eu-repo/semantics/bachelorThesis | spa |
dc.type.redcol | https://purl.org/redcol/resource_type/TP | spa |
dc.type.version | info:eu-repo/semantics/publishedVersion | spa |
dc.rights.coar | http://purl.org/coar/access_right/c_14cb | spa |