Diversidad genética de poblaciones y detección de selección en la nueva era de la genómica

dc.audienceTécnico
dc.audienceProfesional
dc.coverageCentro de Investigación Tibaitatá
dc.coverageColombia
dc.creatorAmaral Gomes Barbosa Fonseca, Andreia de Jesus
dc.date2022-01-13T20:26:19Z
dc.date2022-01-13T20:26:19Z
dc.date2021-12-30
dc.date2021
dc.date.accessioned2026-06-27T04:48:50Z
dc.descriptionSe dan a conocer las diferentes formas de selección natural y artificial; así como la evolución molecular y la detección de valores atípicos en el genoma y las tecnologías genómicas de nueva generación y su aplicación .
dc.formatapplication/pdf
dc.formatapplication/pdf
dc.identifierhttp://hdl.handle.net/20.500.12324/36999
dc.identifierreponame:Biblioteca Digital Agropecuaria de Colombia
dc.identifierrepourl:https://repository.agrosavia.co
dc.identifierinstname:Corporación colombiana de investigación agropecuaria AGROSAVIA
dc.identifier.urihttp://hdl.handle.net/123456789/36874
dc.languagespa
dc.publisherCorporación colombiana de investigación agropecuaria - AGROSAVIA
dc.relation107
dc.relation123
dc.relationAmaral, A. J., Ferretti, L., Megens, H.-J-, Crooijmans, R., Nie, H., Ramos-Onsins, S. E., Pérez-Enciso, M., Schook, L. B., & Groenen, M. A. M. (2011). Genome-Wide Footprints of Pig Domestication and Selection Revealed through Massive Parallel Sequencing of Pooled DNA. PLoS One, 6(4), e14782. http://dx.plos.org/10.1371/ journal.pone.0014782
dc.relationAmaral, A. J., Megens, H.-J., Kerstens, H. H. D., Heuven, H. C. M., Dibbits, B., Crooijmans, R., Den Dunnen, J., & Groenen, M. A. M. (2009). Application of Massive Parallel Sequencing to Whole Genome SNP Discovery in the Porcine Genome. BMC Genomics, 10, 374. https://doi.org/10.1186/1471-2164-10-374
dc.relationAwadalla, P., & Hobolth, A. (2009). Lecture Notes from Module 6: Coalescent Theory. Summer Institute of Statistical Genetics [Notas de clase]. University of Liège.
dc.relationChoi, J.-W., Choi, B.-H., Lee, S.-H., Lee, S.-S., Kim, H.-C., Yu, D., Chung, W.-H., Lee, K.-T., Chai, H.-H., Cho, G.-M., & Lim, D. (2015). Whole-Genome Resequencing Analysis of Hanwoo and Yanbian Cattle to Identify Genome-Wide SNPs and Signatures of Selection. Molecules and Cells, 38(5), 466-473. https://doi. org/10.14348/molcells.2015.0019
dc.relationDarwin, Ch. (1859). On the origin of species by means of natural selection, or preservation of favoured races in the struggle for life. John Murray.
dc.relationDavey, J. W., Hohenlohe, P. A., Etter, P. D., Boone, J. Q., Catchen, J. M., & Blaxter, M. L. (2011). Genome-wide genetic marker discovery and genotyping Using nextgeneration sequencing. Nature Reviews Genetics, 12(7), 499-510. https://doi. org/10.1038/nrg3012
dc.relationDriscoll, C. A, Macdonald, D. W., & Stephen, J. (2009). From wild animals to domestic pets, an evolutionary view of domestication. Proceedings of the National Academy of Sciences, 106(1), 9971-9978. https://doi.org/10.1073/pnas.0901586106.
dc.relationHamilton, M. B. (2009). Population genetics. Wiley-Balckwell.
dc.relationHoban, S., Bruford, M., D’Urban Jackson, J., Lopes-Fernandes, M., Heuertz, M., Hohenlohe, P. A., Paz-Vinas, I., Sjögren-Gulve, P., Segelbacher, G., Vernesi, C., Aitken, S., Bertola, L. D., Bloomer, P., Breed, M., Rodríguez-Correa, H., Funk, W. C., Gruber, C. E., Hunter, M. E., Jaffe, R., Liggins, L. … Laikre, L. (2020). Genetic diversity targets and indicators in the CBD post-2020 Global Biodiversity Framework must be improved. Biological Conservation, 248, 108654. https://doi. org/https://doi.org/10.1016/j.biocon.2020.108654
dc.relationKemper, K. E., Saxton, S. J., Bolormaa, S., Hayes, B. J., & Goddard, M. E. (2014). Selection for Complex Traits Leaves Little or no Classic Signatures of Selection. BMC Genomics, 15(1), 246. https://doi.org/10.1186/1471-2164-15-246
dc.relationKerstens, H. H. D., Crooijmans, R., Veenendaal, A., Dibbits, B. W., Chin-A-Woeng, T. F. C., Den Dunnen, J., & Groenen, M. A. M. (2009). Large scale single nucleotide polymorphism discovery in unsequenced genomes using second generation high throughput sequencing technology: Applied to Turkey. BMC Genomics, 10(1), 479. https://doi.org/10.1186/1471-2164-10-479
dc.relationKimura, M. (1983). The neutral theory of molecular evolution. Cambridge University Press. https://doi.org/10.1017/CBO9780511623486
dc.relationNatural selection. (s. f.). Biology Dictionary. https://biologydictionary.net/ natural-selection/
dc.relationRamos, A. M., Crooijmans, R., Affara, N. A., Amaral, A. J., Archibald, A. L., Beever, J. E., Bendixen, C., Churcher, C., Clark, R., Dehais, P., Hansen, M. S., Hedegaard, J., Hu, Z.-L., Kerstens, H. H., Law, A. S., Megens, H.-J., Milan, D., Nonneman, D. J., Rohrer, G. A., Rothschild, M. F., Smith, T. P. L. … Groenen, N. A. M. (2009). Design of a High Density SNP Genotyping Assay in the Pig Using SNPs Identified and Characterized by Next Generation Sequencing Technology. PLoS One, 4(8), 1-13. https://doi.org/https://doi.org/10.1371/journal.pone.0006524
dc.relationRoots, C. (2007). Domestication. Greenwood Publishing Group.
dc.relationSabeti, P. C., Reich, D. E., Higgins, J. M., Haninah, Z. P. L., Richter, D. J., Schaffner, S. F., Gabriel, S. B., Platko, J. V., Patterson, N. J., McDonald, G. J., Ackerman, H. C., Campbell, S. J., Altshuler, D., Cooper, R., Kwiatkowski, D., Ward, R., & Lander, E. S. (2002). Detecting Recent Positive Selection in the Human Genome from Haplotype Structure. Nature, 419(6909), 832-837. https://doi.org/10.1038/ nature01140
dc.relationStern, A. J., & Nielsen, R. (2019). Detecting natural selection. En D. J. Baldin, I. Moltke, & J. Marioni (Eds.), Handbook of Statistical Genomics (pp. 397-40). Wiley. https:// doi.org/10.1002/9781119487845.ch14.
dc.relationTajima, F. (1989). Statistical Method for Testing the Neutral Mutation Hypothesis by DNA Polymorphism. Genetics, 123(3), 585-595. https://pubmed.ncbi.nlm.nih. gov/2513255
dc.relationVan Tassell, C. P., Smith, T. P. L., Matukumalli, L. K., Taylor, J. F., Schnabel, R. D., Taylor Lawley, C., Haudenschild, C. D., Moore, S. S., Warren, W. C., & Sonstegard, T. S. (2008). SNP discovery and allele frequency estimation by deep sequencing of reduced representation libraries. Nature Methods, 5(3), 247-252. https://doi. org/10.1038/nmeth.1185
dc.relationWatterson, G. A. (1975). On the number of segregating sites in genetical models without recombination. Theoretical Population Biology, 7(2), 256-276.
dc.relationWright, S. (1984). Evolution and the Genetics of Populations, (Vol. 2). University of Chicago Press.
dc.relation[Recursos zoogenéticos: Conservación, caracterización y gestión de su biodiversidad](http://hdl.handle.net/20.500.12324/36975)
dc.rightsAttribution-NonCommercial-NoDerivatives 4.0 International
dc.rightshttp://creativecommons.org/licenses/by-nc-nd/4.0/
dc.subjectGenética y mejoramiento animal - L10
dc.subjectGenética animal
dc.subjectMarcadores genéticos
dc.subjectVariación genética
dc.subjectSelección natural
dc.subjectGanadería y especies menores
dc.subjecthttp://aims.fao.org/aos/agrovoc/c_49986
dc.subjecthttp://aims.fao.org/aos/agrovoc/c_24030
dc.subjecthttp://aims.fao.org/aos/agrovoc/c_15975
dc.subjecthttp://aims.fao.org/aos/agrovoc/c_32698
dc.thumbnailhttps://repository.agrosavia.co/bitstreams/ce114971-1e43-4ef8-8053-afd8f8bb4d47/download
dc.titleDiversidad genética de poblaciones y detección de selección en la nueva era de la genómica
dc.typeCapítulo

Archivos

Colecciones