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Invisible patterns: Changes in floral UV pigmentation along an elevational gradient in the Colombian Andes

dc.contributor.advisorSánchez Andrade, Adriana
dc.creatorMárquez Molina, Camilo
dc.creator.degreeBiólogo
dc.creator.degreeLevelPregrado
dc.date.accessioned2024-04-03T15:16:14Z
dc.date.available2024-04-03T15:16:14Z
dc.date.created2024-02-27
dc.date.embargoEndinfo:eu-repo/date/embargoEnd/2026-04-04
dc.descriptionLa pigmentación floral ha sido moldeada por presiones bióticas y abióticas. Los pigmentos que absorben radiación UV (pigmentos UV) cumplen un rol dual en las plantas, pues presentan señales visuales a sus polinizadores y protegen las estructuras reproductivas de la radiación UV y temperatura. Se caracterizaron los patrones de pigmentación UV en la flora de páramo, utilizando un gradiente altitudinal de aprox. 600 en el PNN Cocuy, y se evaluó cómo se relacionan la radiación UV y temperatura con la pigmentación UV. Se realizó un muestreo de inflorescencias de plantas de la familia Asteraceae en el gradiente y se estimaron las concentraciones de pigmentos mediante fotografía UV y espectrofotometría. Adicionalmente, mediciones de irradiancia UV y temperatura a lo largo del gradiente permitieron determinar que a mayor altitud se presenta mayor irradiancia UV y menores temperaturas. La mayoría de especies muestreadas tienen estructuras reproductivas contrastantes, ya que presentan flores de disco que absorben radiación UV, y polen que refleja la radiación UV; este patrón corresponde a una señal visual para los polinizadores. La altitud afectó significativamente a los pigmentos en plantas cuyas inflorescencias apuntan hacia el sol (Monticalia, Baccharis, Werneria), quienes priorizan la protección frente al estrés abiótico; mientras que no tuvo efectos sobre inflorescencias que no reciben radiación directa del sol (Culcitium, Espeletia), quienes priorizan mantener la señal visual a sus polinizadores. Este es el primer estudio en caracterizar la pigmentación UV en la flora de los páramos.
dc.description.abstractFloral pigmentation is shaped by both biotic and abiotic pressures. UV absorbing pigments serve a dual role in plants, they display visual cues to pollinators and protect reproductive structures from UV radiation and temperature stress. Since climate change could be altering the conditions that determine flower pigmentation, and páramos are one of the most vulnerable ecosystems, we characterized floral UV pigmentation in the páramo’s flora along an elevation gradient of ca. 600 m in Cocuy National Park. We also tested how changes in UV radiation and temperature are related to floral UV pigmentation. We sampled inflorescences of the plant family Asteraceae along the gradient, and by UV photography and spectrophotometry, we determined the UV pigmentation patterns and UV-absorbing pigment concentrations. Additionally, we also measured UV irradiance and temperature along the gradient and determined that the highest elevations have lower temperatures and higher UV irradiance. Most of the species have contrasting reproductive structures with UV-absorbing disc florets and UV-reflective pollen, which acts as a visual cue to pollinators. The UV-absorbing pigments of species with inflorescences facing the sun (from the genera Monticalia, Baccharis, Werneria) were significantly affected by elevation, while species with inflorescences that do not receive direct radiation were not significantly affected by elevation (Culcitium and Espeletia). In addition, species that do not change UV pigment concentrations may prioritize pollination against abiotic stress, while species that change pigment concentrations prioritize protection from abiotic stress. This is the first study to characterize UV pigmentation in the páramo’s flora.
dc.description.sponsorshipFondo para la Financiación de Trabajos de Grado - Facultad de Ciencias Naturales, Universidad del Rosario
dc.format.extent29 pp
dc.format.mimetypeapplication/pdf
dc.identifier.doihttps://doi.org/10.48713/10336_42393
dc.identifier.urihttps://repository.urosario.edu.co/handle/10336/42393
dc.language.isospa
dc.publisherUniversidad del Rosario
dc.publisher.departmentFacultad de Ciencias Naturales
dc.publisher.programBiología
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dc.source.bibliographicCitationKoski, Mathew H.; MacQueen, Drew; Ashman, Tia-Lynn (2020) Floral Pigmentation Has Responded Rapidly to Global Change in Ozone and Temperature. En: Current Biology. Vol. 30; No. 22; pp. 4425 - 4431.e3; 0960-9822; Consultado en: 2022/09/25/15:48:11. Disponible en: http://www.sciencedirect.com/science/article/pii/S0960982220312677. Disponible en: 10.1016/j.cub.2020.08.077.
dc.source.bibliographicCitationKoski, Matthew H.; Ashman, Tia-Lynn (2016) Macroevolutionary patterns of ultraviolet floral pigmentation explained by geography and associated bioclimatic factors. En: New Phytologist. Vol. 211; No. 2; pp. 708 - 718; 1469-8137; Consultado en: 2022/09/25/15:48:21. Disponible en: https://onlinelibrary.wiley.com/doi/abs/10.1111/nph.13921. Disponible en: 10.1111/nph.13921.
dc.source.bibliographicCitationTodesco, Marco; Bercovich, Natalia; Kim, Amy; Imerovski, Ivana; Owens, Gregory L; Dorado Ruiz, Óscar; Holalu, Srinidhi V; Madilao, Lufiani L; Jahani, Mojtaba; Légaré, Jean-Sébastien; Blackman, Benjamin K; Rieseberg, Loren H; Ross-Ibarra, Jeffrey; Kleine-Vehn, Jürgen; Baldwin, Ian T (2022) Genetic basis and dual adaptive role of floral pigmentation in sunflowers. En: eLife. Vol. 11; pp. e72072 2050-084X; Consultado en: 2022/12/27/14:09:30. Disponible en: https://doi.org/10.7554/eLife.72072. Disponible en: 10.7554/eLife.72072.
dc.source.bibliographicCitationBrock, Marcus T.; Lucas, Lauren K.; Anderson, Nickolas A.; Rubin, Matthew J.; Cody Markelz, R. J.; Covington, Michael F.; Devisetty, Upendra K.; Chapple, Clint; Maloof, Julin N.; Weinig, Cynthia (2016) Genetic architecture, biochemical underpinnings and ecological impact of floral UV patterning. En: Molecular Ecology. Vol. 25; No. 5; pp. 1122 - 1140; 1365-294X; Consultado en: 2023/01/23/16:09:10. Disponible en: https://onlinelibrary.wiley.com/doi/abs/10.1111/mec.13542. Disponible en: 10.1111/mec.13542.
dc.source.bibliographicCitationAltshuler, Douglas L. (2003) Flower Color, Hummingbird Pollination, and Habitat Irradiance in Four Neotropical Forests1. En: Biotropica. Vol. 35; No. 3; pp. 344 - 355; 1744-7429; Consultado en: 2023/02/11/19:31:54. Disponible en: https://onlinelibrary.wiley.com/doi/abs/10.1111/j.1744-7429.2003.tb00588.x. Disponible en: 10.1111/j.1744-7429.2003.tb00588.x.
dc.source.bibliographicCitationTunes, Priscila; Camargo, Maria Gabriela Gutierrez; Guimarães, Elza (2021) Floral UV Features of Plant Species From a Neotropical Savanna. En: Frontiers in Plant Science. Vol. 12; 1664-462X; Consultado en: 2023/02/23/17:31:17. Disponible en: https://www.frontiersin.org/articles/10.3389/fpls.2021.618028.
dc.source.bibliographicCitationPiri, E.; Babaeian, M.; Tavassoli, A.; Esmaeilian, Y. (2011) Effects of UV irradiation on plants. En: African Journal of Microbiology Research. Vol. 5; No. 14; pp. 1710 - 1716; 1996-0808; Consultado en: 2023/04/10/14:34:53. Disponible en: https://www.researchgate.net/publication/228841823_Effects_of_UV_irradiation_on_plants.
dc.source.bibliographicCitationTai, King-Chun; Shrestha, Mani; Dyer, Adrian G.; Yang, En-Cheng; Wang, Chun-Neng (2020) Floral Color Diversity: How Are Signals Shaped by Elevational Gradient on the Tropical–Subtropical Mountainous Island of Taiwan?. En: Frontiers in Plant Science. Vol. 11; 1664-462X; Consultado en: 2023/04/21/18:14:09. Disponible en: https://www.frontiersin.org/articles/10.3389/fpls.2020.582784.
dc.source.bibliographicCitationSchiestl, Florian P.; Johnson, Steven D. (2013) Pollinator-mediated evolution of floral signals. En: Trends in Ecology & Evolution. Vol. 28; No. 5; pp. 307 - 315; 0169-5347; Consultado en: 2023/05/25/11:46:58. Disponible en: https://www.sciencedirect.com/science/article/pii/S0169534713000360. Disponible en: 10.1016/j.tree.2013.01.019.
dc.source.bibliographicCitationNarbona, Eduardo; del Valle, José Carlos; Arista, Montserrat; Buide, María Luisa; Ortiz, Pedro Luis (2021) Major Flower Pigments Originate Different Colour Signals to Pollinators. En: Frontiers in Ecology and Evolution. Vol. 9; 2296-701X; Consultado en: 2023/05/26/12:40:19. Disponible en: https://www.frontiersin.org/articles/10.3389/fevo.2021.743850.
dc.source.bibliographicCitationFerreyra, María Lorena Falcone; Serra, Paloma; Casati, Paula (2021) Recent advances on the roles of flavonoids as plant protective molecules after UV and high light exposure. En: Physiologia Plantarum. Vol. 173; No. 3; pp. 736 - 749; 1399-3054; Consultado en: 2023/05/31/12:26:19. Disponible en: https://onlinelibrary.wiley.com/doi/abs/10.1111/ppl.13543. Disponible en: 10.1111/ppl.13543.
dc.source.bibliographicCitationvan der Kooi, Casper J; Kevan, Peter G; Koski, Matthew H (2019) The thermal ecology of flowers. En: Annals of Botany. Vol. 124; No. 3; pp. 343 - 353; 0305-7364; Consultado en: 2023/06/05/17:53:01. Disponible en: https://doi.org/10.1093/aob/mcz073. Disponible en: 10.1093/aob/mcz073.
dc.source.bibliographicCitationR Core Team (2022) R: A language and environment for statistical computing. Vienna, Austria Consultado en: 2023/06/06/04:03:09. Disponible en: https://www.r-project.org/.
dc.source.bibliographicCitationGray, Michelle; Stansberry, Marcus J.; Lynn, Joshua S.; Williams, Charles F.; White, Thomas E.; Whitney, Kenneth D. (2018) Consistent shifts in pollinator-relevant floral coloration along Rocky Mountain elevation gradients. En: Journal of Ecology. Vol. 106; No. 5; pp. 1910 - 1924; 1365-2745; Consultado en: 2023/11/19/02:57:08. Disponible en: https://onlinelibrary.wiley.com/doi/abs/10.1111/1365-2745.12948. Disponible en: 10.1111/1365-2745.12948.
dc.source.bibliographicCitationChittka, L. (1996) Does bee color vision predate the evolution of flower color?. En: Naturwissenschaften. Vol. 83; No. 3; pp. 136 - 138; 1432-1904; Consultado en: 2023/11/30/10:37:48. Disponible en: https://doi.org/10.1007/BF01142181. Disponible en: 10.1007/BF01142181.
dc.source.bibliographicCitationTzanova, Milena; Atanasov, Vasil; Yaneva, Zvezdelina; Ivanova, Donika; Dinev, Toncho (2020) Selectivity of Current Extraction Techniques for Flavonoids from Plant Materials. En: Processes. Vol. 8; No. 10; pp. 1222 2227-9717; Consultado en: 2023/12/04/03:03:50. Disponible en: https://www.mdpi.com/2227-9717/8/10/1222. Disponible en: 10.3390/pr8101222.
dc.source.bibliographicCitationGrabherr, Georg; Gottfried, Michael; Pauli, Harald (2000) GLORIA: A Global Observation Research Initiative in Alpine Environments. En: Mountain Research and Development. Vol. 20; No. 2; pp. 190 - 191; 0276-4741, 1994-7151; Consultado en: 2023/12/24/13:54:38. Disponible en: https://bioone.org/journals/mountain-research-and-development/volume-20/issue-2/0276-4741_2000_020_0190_GAGORI_2.0.CO_2/GLORIA-A-Global-Observation-Research-Initiative-in-Alpine-Environments/10.1659/0276-4741(2000)020[0190:GAGORI]2.0.CO;2.full. Disponible en: 10.1659/0276-4741(2000)020[0190:GAGORI]2.0.CO;2.
dc.source.bibliographicCitationRuiz Carrascal, Daniel; Arroyave, Maria del Pilar; Gutierrez-Lagoueyte, Maria; Zapata, Paula (2011) Increased climatic stress on high-Andean ecosystems in the Cordillera Central of Colombia. pp. 182 - 191;
dc.source.bibliographicCitationEguiguren-Velepucha, Paúl Alexander; Chamba, Juan Armando Maita; Aguirre Mendoza, Nikolay Arturo; Ojeda-Luna, Tatiana Lizbeth; Samaniego-Rojas, Natalia Soledad; Furniss, Michael J.; Howe, Carol; Aguirre Mendoza, Zhofre Huberto (2016) Tropical ecosystems vulnerability to climate change in southern Ecuador. En: Tropical Conservation Science. Vol. 9; No. 4; pp. 1940082916668007 1940-0829; Consultado en: 2023/12/24/17:43:42. Disponible en: https://doi.org/10.1177/1940082916668007. Disponible en: 10.1177/1940082916668007.
dc.source.bibliographicCitationBlanco, L Muñoz (2005) Plan de Manejo 2005-2009 Parque Nacional Natural El Cocuy. : Ministerio de Ambiente, Vivienda y Desarrollo Terrirorial, Parques Nacionales Naturales de Colombia;
dc.source.bibliographicCitationWaskom, Michael L. (2021) seaborn: statistical data visualization. En: Journal of Open Source Software. Vol. 6; No. 60; pp. 3021 2475-9066; Consultado en: 2024/01/16/19:35:25. Disponible en: https://joss.theoj.org/papers/10.21105/joss.03021. Disponible en: 10.21105/joss.03021.
dc.source.bibliographicCitationHunter, John D. (2007) Matplotlib: A 2D Graphics Environment. En: Computing in Science & Engineering. Vol. 9; No. 3; pp. 90 - 95; 1558-366X; Consultado en: 2024/01/16/19:35:40. Disponible en: https://ieeexplore.ieee.org/document/4160265. Disponible en: 10.1109/MCSE.2007.55.
dc.source.bibliographicCitationPiazena, H. (1996) The effect of altitude upon the solar UV-B and UV-A irradiance in the tropical Chilean Andes. En: Solar Energy. Vol. 57; No. 2; pp. 133 - 140; 0038-092X; Consultado en: 2024/01/16/20:01:21. Disponible en: https://www.sciencedirect.com/science/article/pii/S0038092X96000497. Disponible en: 10.1016/S0038-092X(96)00049-7.
dc.source.bibliographicCitationCresso, Matilda; Clerici, Nicola; Sanchez, Adriana; Jaramillo, Fernando (2020) Future Climate Change Renders Unsuitable Conditions for Paramo Ecosystems in Colombia. En: Sustainability. Vol. 12; No. 20; pp. 8373 2071-1050; Consultado en: 2024/01/16/22:04:06. Disponible en: https://www.mdpi.com/2071-1050/12/20/8373. Disponible en: 10.3390/su12208373.
dc.source.bibliographicCitationRada, Fermin; Azócar, Aura; García-Núñez, Carlos (2019) Plant functional diversity in tropical Andean páramos. En: Plant Ecology & Diversity. Vol. 12; No. 6; pp. 539 - 553; 1755-0874; Consultado en: 2024/01/16/22:13:21. Disponible en: https://doi.org/10.1080/17550874.2019.1674396. Disponible en: 10.1080/17550874.2019.1674396.
dc.source.bibliographicCitationHofstede, Robert; Calles, Juan; López, Víctor; Polanco, Rocío; Torres, Fidel; Ulloa, Janett; Vásquez, Adriana; Cerra, Marcos (2014) Los páramos andinos. ¿Qué sabemos? Estado del conocimiento sobre el impacto del cambio climático en el ecosistema páramo. : UICN, Quito, Ecuador; 978-9978-9932-9-3;
dc.source.bibliographicCitationMadriñán, Santiago; Cortés, Andrés; Richardson, James (2013) Páramo is the world's fastest evolving and coolest biodiversity hotspot. En: Frontiers in Genetics. Vol. 4; 1664-8021; Consultado en: 2024/01/21/22:03:53. Disponible en: https://www.frontiersin.org/articles/10.3389/fgene.2013.00192.
dc.source.bibliographicCitationWickham, Hadley; Averick, Mara; Bryan, Jennifer; Chang, Winston; McGowan, Lucy D'Agostino; François, Romain; Grolemund, Garrett; Hayes, Alex; Henry, Lionel; Hester, Jim; Kuhn, Max; Pedersen, Thomas Lin; Miller, Evan; Bache, Stephan Milton; Müller, Kirill; Ooms, Jeroen; Robinson, David; Seidel, Dana Paige; Spinu, Vitalie; Takahashi, Kohske; Vaughan, Davis; Wilke, Claus; Woo, Kara; Yutani, Hiroaki (2019) Welcome to the Tidyverse. En: Journal of Open Source Software. Vol. 4; No. 43; pp. 1686 2475-9066; Consultado en: 2024/01/22/00:13:56. Disponible en: https://joss.theoj.org/papers/10.21105/joss.01686. Disponible en: 10.21105/joss.01686.
dc.source.bibliographicCitationLüdecke, Daniel; Ben-Shachar, Mattan S.; Patil, Indrajeet; Waggoner, Philip; Makowski, Dominique (2021) performance: An R Package for Assessment, Comparison and Testing of Statistical Models. En: Journal of Open Source Software. Vol. 6; No. 60; pp. 3139 2475-9066; Consultado en: 2024/01/22/00:17:16. Disponible en: https://joss.theoj.org/papers/10.21105/joss.03139. Disponible en: 10.21105/joss.03139.
dc.source.bibliographicCitationFox, John; Weisberg, Sanford (2019) An R Companion to Applied Regression. : Sage publications; 978-1-5443-3647-3; Disponible en: https://socialsciences.mcmaster.ca/jfox/Books/Companion/.
dc.source.bibliographicCitationLuteyn, James (1999) Páramos: A Checklist of Plant Diversity, Geographical Distribution, and Botanical Literature. : New York Botanical Garden Press, Brooklyn.;
dc.source.bibliographicCitationVan Rossum, Guido; Drake, Fred L. (2009) Python 3 Reference Manual. pp. 242 Scotts Valley, CA: CreateSpace; 978-1-4414-1269-0;
dc.source.bibliographicCitationPeach, Kristen; Liu, Jasen W.; Mazer, Susan J. (2020) Climate Predicts UV Floral Pattern Size, Anthocyanin Concentration, and Pollen Performance in Clarkia unguiculata. En: Frontiers in Plant Science. Vol. 11; pp. 521112 1664-462X; Consultado en: 2024/01/22/21:43:51. Disponible en: https://www.frontiersin.org/articles/10.3389/fpls.2020.00847. Disponible en: 10.3389/fpls.2020.00847.
dc.source.bibliographicCitationDel Valle, José Carlos; Buide, Mª Luisa; Whittall, Justen B.; Valladares, Fernando; Narbona, Eduardo (2020) UV radiation increases phenolic compound protection but decreases reproduction in Silene littorea. En: PLOS ONE. Vol. 15; No. 6; pp. e0231611 1932-6203; Consultado en: 2024/01/24/17:47:49. Disponible en: https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0231611. Disponible en: 10.1371/journal.pone.0231611.
dc.source.bibliographicCitationShrestha, Mani; Dyer, Adrian G.; Bhattarai, Prakash; Burd, Martin (2014) Flower colour and phylogeny along an altitudinal gradient in the Himalayas of Nepal. En: Journal of Ecology. Vol. 102; No. 1; pp. 126 - 135; 1365-2745; Consultado en: 2024/01/24/17:50:41. Disponible en: https://onlinelibrary.wiley.com/doi/abs/10.1111/1365-2745.12185. Disponible en: 10.1111/1365-2745.12185.
dc.source.bibliographicCitationPelayo, Roxibell C.; Llambí, Luis D.; Gámez, Luis E.; Barrios, Yeni C.; Ramirez, Lirey A.; Torres, J. Eloy; Cuesta, Francisco (2021) Plant Phenology Dynamics and Pollination Networks in Summits of the High Tropical Andes: A Baseline for Monitoring Climate Change Impacts. En: Frontiers in Ecology and Evolution. Vol. 9; 2296-701X; Consultado en: 2024/01/24/21:33:04. Disponible en: https://www.frontiersin.org/articles/10.3389/fevo.2021.679045.
dc.source.instnameinstname:Universidad del Rosario
dc.source.reponamereponame:Repositorio Institucional EdocUR
dc.subjectAsteraceae
dc.subjectPáramo
dc.subjectPNN Cocuy
dc.subjectPolinizadores
dc.subjectTemperatura
dc.subjectIrradiancia UV
dc.subject.keywordAsteraceae
dc.subject.keywordPáramo
dc.subject.keywordPNN Cocuy
dc.subject.keywordPollinators
dc.subject.keywordTemperature
dc.subject.keywordUV irradiance
dc.titleInvisible patterns: Changes in floral UV pigmentation along an elevational gradient in the Colombian Andes
dc.title.TranslatedTitlePatrones invisibles: cambios en la pigmentación floral UV en un gradiente altitudinal de los Andes Colombianos
dc.typebachelorThesis
dc.type.documentTrabajo de grado
dc.type.hasVersioninfo:eu-repo/semantics/acceptedVersion
dc.type.spaPre-print
local.department.reportEscuela de Ciencias e Ingeniería
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