Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia

Figuras

Autores:
Sánchez Lozano, Karla Mindrey
Tipo de recurso:
Trabajo de grado de pregrado
Fecha de publicación:
2022
Institución:
Universidad de los Llanos
Repositorio:
Repositorio Digital Universidad de los LLanos
Idioma:
spa
OAI Identifier:
oai:repositorio.unillanos.edu.co:001/2869
Acceso en línea:
https://repositorio.unillanos.edu.co/handle/001/2869
https://repositorio.unillanos.edu.co/
Palabra clave:
Recursos agrícolas
Cultivo de arroz
Desarrollo vegetativo
Caracterización molecular
Inundación
Germinación
Tolerancia a la subemergencia
Desarrollo fenológico
Genotipos tolerantes
Rights
openAccess
License
Derechos Reservados - Universidad de los Llanos, 2022
id Unillanos2_945645b94d70a0dcbb96c445a723cdcf
oai_identifier_str oai:repositorio.unillanos.edu.co:001/2869
network_acronym_str Unillanos2
network_name_str Repositorio Digital Universidad de los LLanos
repository_id_str
dc.title.spa.fl_str_mv Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia
title Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia
spellingShingle Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia
Recursos agrícolas
Cultivo de arroz
Desarrollo vegetativo
Caracterización molecular
Inundación
Germinación
Tolerancia a la subemergencia
Desarrollo fenológico
Genotipos tolerantes
title_short Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia
title_full Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia
title_fullStr Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia
title_full_unstemmed Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia
title_sort Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia
dc.creator.fl_str_mv Sánchez Lozano, Karla Mindrey
dc.contributor.advisor.none.fl_str_mv Pachón García, Jorge
García Baquero, Eliud
Villalba Rey, Deicy
dc.contributor.author.none.fl_str_mv Sánchez Lozano, Karla Mindrey
dc.subject.armarc.none.fl_str_mv Recursos agrícolas
Cultivo de arroz
Desarrollo vegetativo
Caracterización molecular
topic Recursos agrícolas
Cultivo de arroz
Desarrollo vegetativo
Caracterización molecular
Inundación
Germinación
Tolerancia a la subemergencia
Desarrollo fenológico
Genotipos tolerantes
dc.subject.proposal.spa.fl_str_mv Inundación
Germinación
Tolerancia a la subemergencia
Desarrollo fenológico
Genotipos tolerantes
description Figuras
publishDate 2022
dc.date.issued.none.fl_str_mv 2022
dc.date.accessioned.none.fl_str_mv 2023-04-25T13:40:11Z
dc.date.available.none.fl_str_mv 2023-04-25T13:40:11Z
dc.type.spa.fl_str_mv Trabajo de grado - Pregrado
dc.type.driver.spa.fl_str_mv info:eu-repo/semantics/bachelorThesis
dc.type.version.spa.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.coar.spa.fl_str_mv http://purl.org/coar/resource_type/c_7a1f
dc.type.content.spa.fl_str_mv Text
dc.type.redcol.spa.fl_str_mv https://purl.org/redcol/resource_type/TP
dc.type.coarversion.spa.fl_str_mv http://purl.org/coar/version/c_970fb48d4fbd8a85
format http://purl.org/coar/resource_type/c_7a1f
status_str publishedVersion
dc.identifier.citation.spa.fl_str_mv Sanchéz Lozano, Karla M. (2022). Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia [Trabajo de grado, Universidad de los Llanos]. Repositorio digital Universidad de los Llanos. https://repositorio.unillanos.edu.co/handle/001/2869
dc.identifier.uri.none.fl_str_mv https://repositorio.unillanos.edu.co/handle/001/2869
dc.identifier.instname.spa.fl_str_mv Universidad de los Llanos
dc.identifier.reponame.spa.fl_str_mv Repositorio digital Universidad de los Llanos
dc.identifier.repourl.spa.fl_str_mv https://repositorio.unillanos.edu.co/
identifier_str_mv Sanchéz Lozano, Karla M. (2022). Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia [Trabajo de grado, Universidad de los Llanos]. Repositorio digital Universidad de los Llanos. https://repositorio.unillanos.edu.co/handle/001/2869
Universidad de los Llanos
Repositorio digital Universidad de los Llanos
url https://repositorio.unillanos.edu.co/handle/001/2869
https://repositorio.unillanos.edu.co/
dc.language.iso.spa.fl_str_mv spa
language spa
dc.relation.references.spa.fl_str_mv Afrin W, Nafis, MH, Hossain MA, islam, MM, Hossain MA. 2018. Responses of rice (Oryza sativa L.) genotypes to different levels of submergence. Comptes rendus biologies, 341(2):85-96.
Alam R, Hummel M, Yeung E, Locke AM, Ignacio JCI, Baltazar MD, ... y Bailey‐ Serres J. 2020. Flood resilience loci SUBMERGENCE 1 and ANAEROBIC GERMINATION 1 interact in seedlings established underwater. Plant Direct, 4(7): e00240
Anami, BS, Malvade N, Palaiah S. 2020. Classification of yield affecting biotic and abiotic paddy crop stresses using field images. Information Processing in Agriculture, 7(2), 272-285.
Angaji S, Septiningsih EM, Mackill DJ, Ismail AM. 2010. QTLs associated with tolerance of anaerobic conditions during germination in rice (Oryza sativa L.). Euphytica 172:159–168.
Azarin KV, Usatov AV, Kozyrev PI. 2017. Molecular Breeding of Submergence tolerant Rice. Annual Research & Review in Biology, 1-10.
Baltazar MD, Ignacio JCI, Thomson MJ, Ismail AM, Mendioro MS, Septiningsih EM. 2019. QTL mapping for tolerance to anaerobic germination in rice from IR64 and the aus landrace Kharsu 80A. Breeding science, 69(2): 227-233.
Bhattacharjee S. 2008. Calcium-dependent signaling pathway in the heat-induced oxidative injury in Amaranthus lividus. Biologia Plantarum, 52(1):137-140.
Bhattacharjee S. 2008. Calcium-dependent signaling pathway in the heat-induced oxidative injury in Amaranthus lividus. Biologia Plantarum, 52(1):137-140.
Becerra IC, Díaz AM, García ER, Giraldo JA, Maluendas AV, Quintero LE, Reina DM, Ortegón MR, Samacá HA, Viveros Js. 2018. Análisis situacional cadena productiva del arroz en Colombia. Bogotá: UPRA
Bailey- Serres J, Voesenek LACJ. 2009. Flooding stress: acclimations and genetic diversity. Annu. Rev. Plant Biol. 59, 313–339.
Bailey- Serres J, Voesenek LACJ. 2009. Flooding stress: acclimations and genetic diversity. Annu. Rev. Plant Biol. 59, 313–339.
Catling D. 1992. Rice in deep water. London: MacMillan Press Ltd.
Colmer TD, Pedersen O. 2008. Underwater photosynthesis and respiration in leaves of submerged wetland plants: gas films improve CO2 and O2 exchange. New Phytologist, 177(4):918-926.
Colmer TD, Pedersen O. 2008. Underwater photosynthesis and respiration in leaves of submerged wetland plants: gas films improve CO2 and O2 exchange. New Phytologist, 177(4):918-926.
Colmer TD, Armstrong W, Greenway H, Ismail AM, Kirk GJ, Atwell BJ. 2014. Physiological mechanisms of flooding tolerance in rice: transient complete submergence and prolonged standing water. In Progress in botany pp. 255-307
DANE-FEDEARROZ. 2019. Encuesta de Arroz Mecanizado (ENAM). Boletín técnico segundo semestres 2018. Departamento Administrativo Nacional de Estadística y Federación Nacional de Arroceros. Bogotá, Colombia.
DANE-FEDEARROZ. 2019. Encuesta de Arroz Mecanizado (ENAM). Boletín técnico segundo semestres 2018. Departamento Administrativo Nacional de Estadística y Federación Nacional de Arroceros. Bogotá, Colombia.
DANE-FEDEARROZ. 2021. Encuesta de Arroz Mecanizado (ENAM). Boletín técnico primer semestre 2021. Departamento Administrativo Nacional de Estadística y Federación Nacional de Arroceros. Bogotá, Colombi
Darko AM, Ipinyomi SO, Abe A, Adjah KL., Aculey P, Kwame BR, Manneh B. 2021. Genetic variability for and tolerance to anaerobic germination in rice (Oryza sativa L.). Journal of Crop Improvement, 35(6):832-847
Degiovanni V, Berrio LE, Charry RE. 2010. Origen, taxonomía, anatomía y morfología de la planta de arroz (Oryza sativa L). En: Degiovanni V, Martínez CP, Motta F(Editores). Producción Eco-Eficiente del arroz en América Latina. Tomo I. ISBN 978-958-694-103-7. p.50-53
Dinámica del sector arrocero de los llanos orientales de Colombia 1999 – 2011. FEDEARROZ – Fondo Nacional del Arroz. ISBN: 978-958-99277-2-4, primera edición: noviembre de 2011.
Duque-Ortiz S, Hernández- Escobar NC, Ortiz-Bohórquez P, Toro-Hincapié A, Forero-Esquivel O, Pulido Castrillón AA, Ramos-Monroy HG, Días-Toro AM, Velásquez- Zabaleta MA. 2018. Línea base cadena productiva del cultivo de arroz. Bogotá: UPRA.
Das KK, Panda D, Sarkar RK., Reddy JN, Ismail AM. 2009. Submergence tolerance in relation to variable floodwater conditions in rice. Environ. Exp. Bot. 66: 425–434
Ella ES, Dionisio‐Sese ML y Ismail AM. 2010. Proper management improves seedling survival and growth during early flooding in contrasting rice genotypes. Crop Science, 50(5), 1997-2008.
Ella ES, Dionisio-Sese ML, Ismail AM. 2011. Seed pre-treatment in rice reduces damage, enhances carbohydrate mobilization and improves emergence and seedling establishment under flooded conditions. AoB PLANTS, 2011
Emerick K, Ronald PC. 2019. Sub1 rice: Engineering rice for climate change. Cold Spring Harbor perspectives in biology, 11(12): 034637
Emerick K, Ronald PC. 2019. Sub1 rice: Engineering rice for climate change. Cold Spring Harbor perspectives in biology, 11(12): 034637
Emerick K, Ronald PC. 2019. Sub1 rice: Engineering rice for climate change. Cold Spring Harbor perspectives in biology, 11(12): 034637
FINAGRO. 2020.Cultivo de arroz. Unidad de Gestión de Riesgos Agropecuarios UGRA
Fukao T, Xu K, Ronald PC, Bailey-Serres J. 2006. A variable cluster of ethylene response factor–like genes regulates metabolic and developmental acclimation responses to submergence in rice. The Plant Cell, 18(8): 2021-2034.
Fukao T, Bailey-Serres J. 2008. Submergence tolerance conferred by Sub1A is mediated by SLR1 and SLRL1 restriction of gibberellin responses in rice. Proceedings of the National Academy of Sciences, 105(43): 16814-16819.
Fukao T, Yeung E, y Bailey-Serres J. 2011. The submergence tolerance regulator SUB1A mediates crosstalk between submergence and drought tolerance in rice. The Plant Cell, 23(1): 412-427.
Gonzales AC. 2020. Plan de ordenamiento productivo: Análisis situacional de la cadena productiva del arroz. Bogotá: UPRA.
Ghosal S, Casal C, Quilloy FA., Septiningsih EM., Mendioro MS, Dixit S. 2019. Deciphering genetics underlying stable anaerobic germination in rice: phenotyping, QTL identification, and interaction analysis. Rice, 12(1): 1-15.
Goswami S, Labar R, Paul A, Adak MK, Dey N. 2015 Physio-Biochemical and Genetic Exploration for Submergence Tolerance in Rice (Oryza sativa L.) Landraces with Special References to Sub1 Loci. American Journal of Plant Sciences, 6:1893- 1904
Goswami S, Labar R, Paul A, Adak MK, Dey N. 2015 Physio-Biochemical and Genetic Exploration for Submergence Tolerance in Rice (Oryza sativa L.) Landraces with Special References to Sub1 Loci. American Journal of Plant Sciences, 6:1893- 1904
Goswami S, Labar R, Paul A, Adak MK, Dey N. 2015 Physio-Biochemical and Genetic Exploration for Submergence Tolerance in Rice (Oryza sativa L.) Landraces with Special References to Sub1 Loci. American Journal of Plant Sciences, 6:1893- 1904
Hair JF, Anderson RE, Tatham RI, Black WC. 1992. Multivariate data analysis, 3rd Edition, New York, NY: MacMilliam Publishing Co.
Hattori Y, Nagai K, Furukawa S, Song XL, Kawano R, Sakakibara H. 2009. The ethylene response factors SNORKEL1 and SNORKEL2 allow rice to adapt to deep water. Nature, 460:1026–1030
Huang J, Takano T, Akita S. 2000. Expression of alpha-expansin genes in young seedlings of rice (Oryza sativa L.). Planta, 211: 467–473
Hsu SK, Tung CW. 2015. Genetic mapping of anaerobic germination-associated QTLs controlling coleoptile elongation in rice. Rice, 8(1):1-12.
IDEAM. 2005. Atlas Climático de Colombia. Instituto de Hidrología, Meteoreología y Estudios Ambientales. Bogotá D.C
Iftekharuddaula KM, Ghosal S, Gonzaga ZJ, Amin A, Barman HN, Yasmeen R., ... Septiningsih, EM. 2016. Allelic diversity of newly characterized submergence tolerant rice (Oryza sativa L.) germplasm from Bangladesh. Genetic resources and crop evolution, 63(5), 859-867.
smail AM, Ella ES, Vergara GV, Mackill DJ. 2009. Mechanisms associated with tolerance to flooding during germination and early seedling growth in rice (Oryza sativa). Annals of Botany, 103(2):197-209.
Ismail AM. 2018. Submergence tolerance in rice: resolving a pervasive quandary. New Phytologist, 218(4):298-1300.
Ismail AM. 2018. Submergence tolerance in rice: resolving a pervasive quandary. New Phytologist, 218(4):298-1300.
IRRI. 2013. Standard evaluation system for rice (SES). International Rice Research Institute, Philippine, 1-45.
Jackson MB, Armstrong W. 1999. Formation of aerenchyma and the processes of plant ventilation in relation to soil flooding and submergence. Plant Biology, 1(03):274-287.
Jiang L, Liu S, Hou M, Tang J, Chen L, Zhai H, Wan J. 2006. Analysis of QTLs for seed low temperature germinability and anoxia germinability in rice (Oryza sativa L.). Field Crops Research, 98:68–75
Jiang L, Liu S, Hou M, Tang J, Chen L, Zhai H, Wan J. 2006. Analysis of QTLs for seed low temperature germinability and anoxia germinability in rice (Oryza sativa L.). Field Crops Research, 98:68–75
Kretzschmar T, Pelayo MAF, Trijatmiko KR, Gabunada LFM, Alam R, Jimenez R, Mendioro MS, Slamet-Loedin IH, Sreenivasulu N, Bailey-Serres J, Ismail AM, Mackill DJ, Septiningsih EM. 2015. A trehalose-6-phosphate phosphatase enhances anaerobic germination tolerance in rice. Nat Plants 1:15124
Kim SM, Reinke RF. 2018. Identification of QTLs for tolerance to hypoxia during germination in rice. Euphytica, 214(9):1-10.
Kuroha T, Ashikari M. 2020. Molecular mechanisms and future improvement of submergence tolerance in rice. Molecular Breeding, 40:1-14.
Kurokawa Y, Nagai K, Huan PD, Shimazaki K, Qu H, Mori Y, Toda Y, Kuroha T, Hayashi N, Aiga S, Itoh JI, Yoshimura A, Sasaki-Sekimoto Y, Ohta H, Shimojima M, Malik AI, Pedersen O, Colmer TD, AshikariM. 2018. Rice leaf hydrophobicity and 72 gas films are conferred by awax synthesis gene (LGF1) and contribute to flood tolerance. New Phyto 218(4):1558–1569.
Lee KW, Chen PW, Lu CA, Chen S, Ho T HD, Yu SM. 2009. Coordinated responses to oxygen and sugar deficiency allow rice seedlings to tolerate flooding. Sci. Signal. 2, ra61.
Li JJ, Xiao YL, Xiao GY. 2012. Selection of submergence tolerant homozygous line by STS marker and twice submergence stress. Journal of Integrative Agriculture, 11(12), 1940-1947. doi.org/10.1016/S2095-3119(12)60450-X
Luo FL, Nagel KA, Scharr H, Zeng B, Schurr U, Matsubara S. 2011. Recovery dynamics of growth, photosynthesis and carbohydrate accumulation after de submergence: a comparison between two wetland plants showing escape and quiescence strategies. Annals of Botany, 107(1):49-63.
Ma M, Cen W, Li R, Wang S, Luo J. 2020. The molecular regulatory pathways and metabolic adaptation in the seed germination and early seedling growth of rice in response to low O2 stress. Plants, 9(10):1363
Mackill DJ, Coffman WR, Garrity DP. 1996. Rainfed lowland rice improvement. Los Banos, Philippines: International Rice Research Institute. p. 242
Mackill DJ, Ismail AM, Singh U S., Labios RV, Paris TR. 2012. Development and rapid adoption of submergence-tolerant (Sub1) rice varieties. Advances in agronomy, 115:299-352.
Mackill DJ, Ismail AM, Singh U S., Labios RV, Paris TR. 2012. Development and rapid adoption of submergence-tolerant (Sub1) rice varieties. Advances in agronomy, 115:299-352.
Masuduzzaman ASM, Haque M, Ahmed MME, Mohapatra CK. 2016. SSR marker based genetic diversity analysis of tidal and flood prone areas in rice (Oryza sativa L.). Journal of Biotechnology & Biomaterials, 6(3)
Miro B, Ismail AM. 2013. Tolerance of anaerobic conditions caused by flooding during germination and early growth in rice (Oryza sativa L.). Frontiers in plant science, 4:269
Miro B, Longkumer T, Entila FD, Kohli A, Ismail AM. 2017. Rice seed germination underwater: Morpho-physiological responses and the bases of differential expression of alcoholic fermentation enzymes. Frontiers in plant science, 8:1857
Neeraja CN, Maghirang-Rodriguez R, Pamplon A, Heuer S, Collard BC, Septiningsih EM, ... Mackill DJ. 2007. A marker-assisted backcross approach for developing submergence-tolerant rice cultivars. Theoretical and Applied Genetics, 115(6):767- 776.
Niroula RK, Pucciariello C, Ho VT, Novi G, Fukao T, Perata P. 2012. SUB1A‐ dependent and‐independent mechanisms are involved in the flooding tolerance of wild rice species. The Plant Journal, 72(2):282-293.
Nishiuchi S, Yamauchi T, Takahashi H, Kotula L, Nakazono M. 2012. Mechanisms for coping with submergence and waterlogging in rice. Rice, 5(1):2
Pathaichindachote W, Panyawut N, Sikaewtung K, Patarapuwadol S, Muangprom A. 2019. Genetic Diversity and Allelic Frequency of Selected Thai and Exotic Rice Germplasm Using SSR Markers. Rice Science, 26(6):393-403.
Pradhan B. 2015.Breeding for Submergence Tolerance in Rice (Oryza sativa L) And Its Management (Thesis of doctor). University of Calcutta.
Pradhan SK, Barik SR, Sahoo J, Pandit E, Nayak DK, Pani DR, Anandan, A. 2015. Comparison of Sub1 markers and their combinations for submergence tolerance and analysis of adaptation strategies of rice in rainfed lowland ecology. Comptes rendus biologies, 338(10):650-659.
Panda D, Barik J. 2021. Flooding Tolerance in Rice: Focus on Mechanisms and Approaches. Rice Science, 28(1): 43-57
Pedersen O, Rich SM, Colmer TD. 2009. Surviving floods: leaf gas films improve O2 and CO2 exchange, root aeration, and growth of completely submerged rice. The Plant Journal, 58(1):147-156.
Pearce DM, Hall KC, Jackson MB.1992. The effects of oxygen, carbon dioxide and ethylene on ethylene biosynthesis in relation to shoot extension in seedlings of rice (Oryza sativa) and barnyard grass (Echinochloa oryzoides). Annals of Botany, 69(5):441-447.
Peña-Castro JM. 2014. Respuesta molecular de las plantas ante el estrés por inundación: lecciones aprendidas del gen SUB1A. Revista fitotecnia mexicana, 37(4) :325-337.
Pucciariello C, Perata P. 2013. Quiescence in rice submergence tolerance: an evolutionary hypothesis. Trends in Plant Science, 18(7):377-381.
Pucciariello C, Perata P. 2013. Quiescence in rice submergence tolerance: an evolutionary hypothesis. Trends in Plant Science, 18(7):377-381.
Pucciariello C, Perata P. 2013. Quiescence in rice submergence tolerance: an evolutionary hypothesis. Trends in Plant Science, 18(7):377-381.
Rangel CH, JO, Sánchez CH, Lowy CP, Aguilar PM, Castillo A. 1995. Región de la Orinoquia. En: J. O.Rangel-Ch. (ed.) Colombia Diversidad Biótica 1. pp. 239-254. Instituto de Ciencias Naturales. Universidad Nacional de Colombia. Bogotá. D.C.
Sairam RK, Kumutha D, Ezhilmathi K, Deshmukh PS, Srivastava GC. 2008. Physiology and biochemistry of waterlogging tolerance in plants. Biologia plantarum, 52(3):401.
Sandhu N, Yadav S, Kumar A. 2020. Advances in Developing Multigene Abiotic and Biotic Stress-Tolerant Rice Varieties. In Abiotic Stress in Plants (p. 371). IntechOpen.
Santibáñez AG, Castillo AS, Zavala HJ, Martínez OY, Hernández AM. 2009. Environmental Heterogeneity in a Xerophytic Shrubland. Boletín de la Sociedad Botánica de México, (85):71-79
Sarkar RK, Reddy JN, Sharma SG, Ismail AM. 2006. Physiological basis of submergence tolerance in rice and implications for crop improvement, Current Science, vol. 91 pg. 899-906
Sarkar RK, Bhattacharjee, B. 2011. Rice genotypes with SUB1 QTL differ in submergence tolerance, elongation ability during submergence and re-generation growth at re-emergence. Rice, 5(1):1-11.
Sarkar RK, Das KK, Panda D, Reddy JN, Patnaik SSC, Patra BC, Singh DP. 2014.Submergence tolerance in rice: Biophysical Constraints, Physiological basis and Identification of Donors. Central Rice Research Institute, Cuttck, India. p.36
Samal R, Roy PS, Sahoo A, Kar MK, Patra BC, Marndi BC, Gundimeda JNR. 2018. Morphological and molecular dissection of wild rices from eastern India suggests distinct speciation between O. rufipogon and O. nivara populations. Scientific reports, 8(1):1-13.
Septiningsih EM, Pamplona AM, Sánchez DL, Neeraja CN, Vergara GV, Heuer S, Mackill DJ. 2009. Development of submergence-tolerant rice cultivars: The Sub1 locus and beyond. Annals of Botany, 103(2): 151-160.
Septiningsih EM, Collard BC, Heuer S, Bailey-Serres J, Ismail AM y Mackill, DJ. 2013a. Applying genomics tools for breeding submergence tolerance in rice. Translational genomics for crop breeding, 2:9-30
Septiningsih EM, Ignacio JC, Sendon PM, Sánchez DL, Ismail AM, Mackill DJ. 2013b. QTL mapping and confirmation for tolerance of anaerobic conditions during germination derived from the rice landrace Ma-Zhan Red. Theoretical and Applied Genetics, 126(5):1357-1366
Septiningsih EM, Mackill DJ. 2018. Genetics and breeding of flooding tolerance in rice. In Rice Genomics, Genetics and Breeding, 275-295
Setter TL, Ramakrishanayya G, Ram PC, Singh BB, Mallik S, Roy JK, Kundu C, Laureles EV, Sarkarung S, Sarkar RK, Nayak SK. 1998. Physiology of rice: prospects for increasing tolerance to submergence. In: Proceedings of the International symposium on Rainfed Rice for sustainable food security. Central Rice Research Institute, Cuttack, India, pp. 349-369.
Singh R. 2016. Assessment of Genetic Potential for Submergence Tolerance in Indica Rice (Orzo sativa L) (Thesis Master). Bihar Agricultural University, Sab our, Bhagalpur.
Toojinda T, Siangliw M, Tragoonrung S y Vanavichit A. 2003. Molecular genetics of submergence tolerance in rice: QTL analysis of key traits. Annals of Botany, 91(2), 243-253.
Xu K, Xu X, Fula T, Canlas P, Maghirang-Rodriguez R, Heuer S, ... Mackill DJ. 2006. Sub1A is an ethylene-response-factor-like gene that confers submergence tolerance to rice. Nature, 442(7103):705-708.
Yamauchi T, Colmer TD, Pedersen O, Nakazono M. 2018.Regulation of root traits for internal aeration and tolerance to soil waterlogging-flooding stress. Plant Physiol 176(2):1118–1130.
Zhang M, Lu Q, Wu W, Niu X, Wang C, Feng Y, Xu Q, Wang S, Yuan X, Yu H, Wang Y, Wei X. 2017. Association mapping reveals novel genetic loci contributing to flooding tolerance during germination in indica rice. Front Plant Sci 8:678
dc.relation.indexed.spa.fl_str_mv N/A
dc.rights.spa.fl_str_mv Derechos Reservados - Universidad de los Llanos, 2022
dc.rights.uri.spa.fl_str_mv https://creativecommons.org/licenses/by-nc-nd/4.0/
dc.rights.license.spa.fl_str_mv Atribución-NoComercial-SinDerivadas 4.0 Internacional (CC BY-NC-ND 4.0)
dc.rights.accessrights.spa.fl_str_mv info:eu-repo/semantics/openAccess
dc.rights.coar.spa.fl_str_mv http://purl.org/coar/access_right/c_abf2
rights_invalid_str_mv Derechos Reservados - Universidad de los Llanos, 2022
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_abf2
eu_rights_str_mv openAccess
dc.format.extent.spa.fl_str_mv 121 Páginas
dc.format.mimetype.spa.fl_str_mv application/pdf
dc.publisher.spa.fl_str_mv Universidad de los Llanos
dc.publisher.faculty.spa.fl_str_mv Facultad de Ciencias Básicas e Ingeniería
dc.publisher.place.spa.fl_str_mv Villavicencio
institution Universidad de los Llanos
bitstream.url.fl_str_mv https://dspace7-unillanos.metacatalogo.org/bitstreams/a86cea6a-1bfe-4b93-8c74-6ffbff0eabfb/download
https://dspace7-unillanos.metacatalogo.org/bitstreams/a11cccfb-16fd-454b-a2e9-5322367f0351/download
https://dspace7-unillanos.metacatalogo.org/bitstreams/51604f6d-e926-4d03-95d1-8243eb7c4fdf/download
https://dspace7-unillanos.metacatalogo.org/bitstreams/f5420f37-c635-4bad-bb03-0b5d90c3657a/download
https://dspace7-unillanos.metacatalogo.org/bitstreams/57ea3bd9-0d61-49f0-a800-c54768c6dcc7/download
https://dspace7-unillanos.metacatalogo.org/bitstreams/c2213c48-db41-4ee2-945a-2a8c7c305131/download
https://dspace7-unillanos.metacatalogo.org/bitstreams/680babe7-c56c-46c5-8f38-5bfc005f4d3b/download
https://dspace7-unillanos.metacatalogo.org/bitstreams/eab6b9da-4e74-4db0-b9c8-92218f80fc4d/download
https://dspace7-unillanos.metacatalogo.org/bitstreams/8384a545-ce73-4d5a-a440-a4270ce8b967/download
https://dspace7-unillanos.metacatalogo.org/bitstreams/f29c26eb-4411-4142-bdb4-0e44f3f254cd/download
bitstream.checksum.fl_str_mv ff696474b5a495fb8b40f1f5d01ad9d5
aa89c4a1cd779630c52cdf234a505419
148a143934904410567bf8d8a1c4e01d
f7c6e382a43d2577a35b71202b6dc0cd
3e7e083a6eb7b74907e1324e9cf8efdc
eab770c196ff6a24d16666e024564f36
de51c7d04ad3e6b452d6f6a9449a0626
10c2fee6a450f79cec88dd7fc5b2d56b
f40119f747beea65db374a25ab6a4fc0
ef5d7a03c309c0971bcb7fc6c9594c99
bitstream.checksumAlgorithm.fl_str_mv MD5
MD5
MD5
MD5
MD5
MD5
MD5
MD5
MD5
MD5
repository.name.fl_str_mv Repositorio Universidad de Los Llanos
repository.mail.fl_str_mv repositorio@unillanos.edu.co
_version_ 1808490999186456576
spelling Pachón García, Jorgef44a9f1c70d24ddeb2ab3d05fdace26cGarcía Baquero, Eliud2170835432dad01d89fe58152975d135Villalba Rey, Deicyb82a57e3db4cdce10f094b573da22636Sánchez Lozano, Karla Mindrey84c043bfcbd77e500b47f5e0ecd9ad1a2023-04-25T13:40:11Z2023-04-25T13:40:11Z2022Sanchéz Lozano, Karla M. (2022). Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergencia [Trabajo de grado, Universidad de los Llanos]. Repositorio digital Universidad de los Llanos. https://repositorio.unillanos.edu.co/handle/001/2869https://repositorio.unillanos.edu.co/handle/001/2869Universidad de los LlanosRepositorio digital Universidad de los Llanoshttps://repositorio.unillanos.edu.co/FigurasTablasLas inundaciones prolongadas junto con las variaciones climáticas y el deficiente drenaje de los suelos, generan condiciones de subemergencia que producen bajos porcentajes de germinación y un mal establecimiento de plantas en los cultivos de arroz. Por tal motivo y teniendo en cuenta que las variedades comerciales en Colombia no cuentan con tolerancia a inundaciones, se propuso determinar la respuesta a subemergencia en un panel de 120 genotipos pertenecientes a la colección de parentales del programa nacional de mejoramiento de arroz, en estados iniciales de desarrollo fenológico, mediante la evaluación de rasgos fenotípicos asociados con la tolerancia. Los genotipos mostraron diferencias significativas de supervivencia durante la germinación y el desarrollo vegetativo temprano en respuesta al estrés por inundación. Se identificaron tres genotipos (F 83, F-24, F-313) con tolerancia intermedia a la germinación anaerobia con porcentajes de supervivencia que variaron entre el 75,7% y el 76,7%. Adicional a esto, se identificó un genotipo (F-377) con tolerancia intermedia a la subemergencia durante el desarrollo vegetativo V4, el cual mostró un crecimiento limitado de brotes bajo el agua y una mejor recuperación en comparación a los genotipos susceptibles. Los genotipos identificados pueden considerarse fuentes promisorias de tolerancia a la inundación durante los estados iniciales del desarrollo fenológico para los programas de mejoramiento genético.Informe Final. – Resumen. -- 7 3. Lista Figuras. -- 8 4. Lista Tablas. -- 5. Lista Símbolos Y Abreviaturas. -- 6. Planteamiento Del Problema. -- 7. Hipótesis. -- 8. Objetivos. -- 8.1. Objetivo General. -- 8.2. Objetivos Específicos. -- 9. Justificación. -- 10. Marco De Referencia, Teórico O Conceptual. -- 10.1. Generalidades Del Arroz. -- 10.2. La Subemergencia En El Arroz. -- 10.2.1. Efecto De Las Inundaciones En El Desarrollo De La Planta De Arroz. -- 10.2.2. Tolerancia Durante La Germinación Anaerobia (Ag). - - 10.2.3. Tolerancia A La Subemergencia Durante La Etapa Vegetativa. -- 11. Metodología. -- 11.1. Área De Estudio. -- 11.2. Caracterización Fenotípica De Los Genotipos De Arroz. -- 11.2.1. Selección De Los Materiales. -- 11.2.2. Detección De La Tolerancia A La Germinación Anaerobia (Ag). -- 11.2.3. Detección De La Tolerancia A La Subemergencia En El Desarrollo Vegetativo V4.... 31 11.3 Análisis Estadístico. -- 12. Resultados. -- 12.1. Comportamiento De Los Genotipos Durante La Germinación Anaerobia. -- 12.1.2. Supervivencia De Los Genotipos. -- 12.1.3. Altura De La Plántula. -- 12.2. Comportamiento De Los Genotipos Durante Su Desarrollo Temprano Vegetativo. -- 12.2.1 Supervivencia De Los Genotipos E Índice De Crecimiento Relativo (Rgi). -- 12.2.2. Efecto De La Subemergencia En El Crecimiento De La Planta. -- 12.2.3. Análisis De Clúster Por K- Medias Y Jerárquico. -- 13. Discusión. -- 13.1. Tolerancia A La Germinación Anaerobia. -- 13.2. Tolerancia A La Subemergencia En Desarrollo Temprano Vegetativo. -- 14. Conclusiones Y Recomendaciones. -- 14.1. Conclusiones. -- 14.2. Recomendaciones. -- 15. Bibliografía. -- 16. Anexos.PregradoBiólogoBiología121 Páginasapplication/pdfspaUniversidad de los LlanosFacultad de Ciencias Básicas e IngenieríaVillavicencioDerechos Reservados - Universidad de los Llanos, 2022https://creativecommons.org/licenses/by-nc-nd/4.0/Atribución-NoComercial-SinDerivadas 4.0 Internacional (CC BY-NC-ND 4.0)info:eu-repo/semantics/openAccesshttp://purl.org/coar/access_right/c_abf2Caracterización fenotípica de germoplasma de arroz (Oryza sativa L) por su respuesta bajo condiciones inducidas de subemergenciaTrabajo de grado - Pregradoinfo:eu-repo/semantics/bachelorThesisinfo:eu-repo/semantics/publishedVersionhttp://purl.org/coar/resource_type/c_7a1fTexthttps://purl.org/redcol/resource_type/TPhttp://purl.org/coar/version/c_970fb48d4fbd8a85Afrin W, Nafis, MH, Hossain MA, islam, MM, Hossain MA. 2018. Responses of rice (Oryza sativa L.) genotypes to different levels of submergence. Comptes rendus biologies, 341(2):85-96.Alam R, Hummel M, Yeung E, Locke AM, Ignacio JCI, Baltazar MD, ... y Bailey‐ Serres J. 2020. Flood resilience loci SUBMERGENCE 1 and ANAEROBIC GERMINATION 1 interact in seedlings established underwater. Plant Direct, 4(7): e00240Anami, BS, Malvade N, Palaiah S. 2020. Classification of yield affecting biotic and abiotic paddy crop stresses using field images. Information Processing in Agriculture, 7(2), 272-285.Angaji S, Septiningsih EM, Mackill DJ, Ismail AM. 2010. QTLs associated with tolerance of anaerobic conditions during germination in rice (Oryza sativa L.). Euphytica 172:159–168.Azarin KV, Usatov AV, Kozyrev PI. 2017. Molecular Breeding of Submergence tolerant Rice. Annual Research & Review in Biology, 1-10.Baltazar MD, Ignacio JCI, Thomson MJ, Ismail AM, Mendioro MS, Septiningsih EM. 2019. QTL mapping for tolerance to anaerobic germination in rice from IR64 and the aus landrace Kharsu 80A. Breeding science, 69(2): 227-233.Bhattacharjee S. 2008. Calcium-dependent signaling pathway in the heat-induced oxidative injury in Amaranthus lividus. Biologia Plantarum, 52(1):137-140.Bhattacharjee S. 2008. Calcium-dependent signaling pathway in the heat-induced oxidative injury in Amaranthus lividus. Biologia Plantarum, 52(1):137-140.Becerra IC, Díaz AM, García ER, Giraldo JA, Maluendas AV, Quintero LE, Reina DM, Ortegón MR, Samacá HA, Viveros Js. 2018. Análisis situacional cadena productiva del arroz en Colombia. Bogotá: UPRABailey- Serres J, Voesenek LACJ. 2009. Flooding stress: acclimations and genetic diversity. Annu. Rev. Plant Biol. 59, 313–339.Bailey- Serres J, Voesenek LACJ. 2009. Flooding stress: acclimations and genetic diversity. Annu. Rev. Plant Biol. 59, 313–339.Catling D. 1992. Rice in deep water. London: MacMillan Press Ltd.Colmer TD, Pedersen O. 2008. Underwater photosynthesis and respiration in leaves of submerged wetland plants: gas films improve CO2 and O2 exchange. New Phytologist, 177(4):918-926.Colmer TD, Pedersen O. 2008. Underwater photosynthesis and respiration in leaves of submerged wetland plants: gas films improve CO2 and O2 exchange. New Phytologist, 177(4):918-926.Colmer TD, Armstrong W, Greenway H, Ismail AM, Kirk GJ, Atwell BJ. 2014. Physiological mechanisms of flooding tolerance in rice: transient complete submergence and prolonged standing water. In Progress in botany pp. 255-307DANE-FEDEARROZ. 2019. Encuesta de Arroz Mecanizado (ENAM). Boletín técnico segundo semestres 2018. Departamento Administrativo Nacional de Estadística y Federación Nacional de Arroceros. Bogotá, Colombia.DANE-FEDEARROZ. 2019. Encuesta de Arroz Mecanizado (ENAM). Boletín técnico segundo semestres 2018. Departamento Administrativo Nacional de Estadística y Federación Nacional de Arroceros. Bogotá, Colombia.DANE-FEDEARROZ. 2021. Encuesta de Arroz Mecanizado (ENAM). Boletín técnico primer semestre 2021. Departamento Administrativo Nacional de Estadística y Federación Nacional de Arroceros. Bogotá, ColombiDarko AM, Ipinyomi SO, Abe A, Adjah KL., Aculey P, Kwame BR, Manneh B. 2021. Genetic variability for and tolerance to anaerobic germination in rice (Oryza sativa L.). Journal of Crop Improvement, 35(6):832-847Degiovanni V, Berrio LE, Charry RE. 2010. Origen, taxonomía, anatomía y morfología de la planta de arroz (Oryza sativa L). En: Degiovanni V, Martínez CP, Motta F(Editores). Producción Eco-Eficiente del arroz en América Latina. Tomo I. ISBN 978-958-694-103-7. p.50-53Dinámica del sector arrocero de los llanos orientales de Colombia 1999 – 2011. FEDEARROZ – Fondo Nacional del Arroz. ISBN: 978-958-99277-2-4, primera edición: noviembre de 2011.Duque-Ortiz S, Hernández- Escobar NC, Ortiz-Bohórquez P, Toro-Hincapié A, Forero-Esquivel O, Pulido Castrillón AA, Ramos-Monroy HG, Días-Toro AM, Velásquez- Zabaleta MA. 2018. Línea base cadena productiva del cultivo de arroz. Bogotá: UPRA.Das KK, Panda D, Sarkar RK., Reddy JN, Ismail AM. 2009. Submergence tolerance in relation to variable floodwater conditions in rice. Environ. Exp. Bot. 66: 425–434Ella ES, Dionisio‐Sese ML y Ismail AM. 2010. Proper management improves seedling survival and growth during early flooding in contrasting rice genotypes. Crop Science, 50(5), 1997-2008.Ella ES, Dionisio-Sese ML, Ismail AM. 2011. Seed pre-treatment in rice reduces damage, enhances carbohydrate mobilization and improves emergence and seedling establishment under flooded conditions. AoB PLANTS, 2011Emerick K, Ronald PC. 2019. Sub1 rice: Engineering rice for climate change. Cold Spring Harbor perspectives in biology, 11(12): 034637Emerick K, Ronald PC. 2019. Sub1 rice: Engineering rice for climate change. Cold Spring Harbor perspectives in biology, 11(12): 034637Emerick K, Ronald PC. 2019. Sub1 rice: Engineering rice for climate change. Cold Spring Harbor perspectives in biology, 11(12): 034637FINAGRO. 2020.Cultivo de arroz. Unidad de Gestión de Riesgos Agropecuarios UGRAFukao T, Xu K, Ronald PC, Bailey-Serres J. 2006. A variable cluster of ethylene response factor–like genes regulates metabolic and developmental acclimation responses to submergence in rice. The Plant Cell, 18(8): 2021-2034.Fukao T, Bailey-Serres J. 2008. Submergence tolerance conferred by Sub1A is mediated by SLR1 and SLRL1 restriction of gibberellin responses in rice. Proceedings of the National Academy of Sciences, 105(43): 16814-16819.Fukao T, Yeung E, y Bailey-Serres J. 2011. The submergence tolerance regulator SUB1A mediates crosstalk between submergence and drought tolerance in rice. The Plant Cell, 23(1): 412-427.Gonzales AC. 2020. Plan de ordenamiento productivo: Análisis situacional de la cadena productiva del arroz. Bogotá: UPRA.Ghosal S, Casal C, Quilloy FA., Septiningsih EM., Mendioro MS, Dixit S. 2019. Deciphering genetics underlying stable anaerobic germination in rice: phenotyping, QTL identification, and interaction analysis. Rice, 12(1): 1-15.Goswami S, Labar R, Paul A, Adak MK, Dey N. 2015 Physio-Biochemical and Genetic Exploration for Submergence Tolerance in Rice (Oryza sativa L.) Landraces with Special References to Sub1 Loci. American Journal of Plant Sciences, 6:1893- 1904Goswami S, Labar R, Paul A, Adak MK, Dey N. 2015 Physio-Biochemical and Genetic Exploration for Submergence Tolerance in Rice (Oryza sativa L.) Landraces with Special References to Sub1 Loci. American Journal of Plant Sciences, 6:1893- 1904Goswami S, Labar R, Paul A, Adak MK, Dey N. 2015 Physio-Biochemical and Genetic Exploration for Submergence Tolerance in Rice (Oryza sativa L.) Landraces with Special References to Sub1 Loci. American Journal of Plant Sciences, 6:1893- 1904Hair JF, Anderson RE, Tatham RI, Black WC. 1992. Multivariate data analysis, 3rd Edition, New York, NY: MacMilliam Publishing Co.Hattori Y, Nagai K, Furukawa S, Song XL, Kawano R, Sakakibara H. 2009. The ethylene response factors SNORKEL1 and SNORKEL2 allow rice to adapt to deep water. Nature, 460:1026–1030Huang J, Takano T, Akita S. 2000. Expression of alpha-expansin genes in young seedlings of rice (Oryza sativa L.). Planta, 211: 467–473Hsu SK, Tung CW. 2015. Genetic mapping of anaerobic germination-associated QTLs controlling coleoptile elongation in rice. Rice, 8(1):1-12.IDEAM. 2005. Atlas Climático de Colombia. Instituto de Hidrología, Meteoreología y Estudios Ambientales. Bogotá D.CIftekharuddaula KM, Ghosal S, Gonzaga ZJ, Amin A, Barman HN, Yasmeen R., ... Septiningsih, EM. 2016. Allelic diversity of newly characterized submergence tolerant rice (Oryza sativa L.) germplasm from Bangladesh. Genetic resources and crop evolution, 63(5), 859-867.smail AM, Ella ES, Vergara GV, Mackill DJ. 2009. Mechanisms associated with tolerance to flooding during germination and early seedling growth in rice (Oryza sativa). Annals of Botany, 103(2):197-209.Ismail AM. 2018. Submergence tolerance in rice: resolving a pervasive quandary. New Phytologist, 218(4):298-1300.Ismail AM. 2018. Submergence tolerance in rice: resolving a pervasive quandary. New Phytologist, 218(4):298-1300.IRRI. 2013. Standard evaluation system for rice (SES). International Rice Research Institute, Philippine, 1-45.Jackson MB, Armstrong W. 1999. Formation of aerenchyma and the processes of plant ventilation in relation to soil flooding and submergence. Plant Biology, 1(03):274-287.Jiang L, Liu S, Hou M, Tang J, Chen L, Zhai H, Wan J. 2006. Analysis of QTLs for seed low temperature germinability and anoxia germinability in rice (Oryza sativa L.). Field Crops Research, 98:68–75Jiang L, Liu S, Hou M, Tang J, Chen L, Zhai H, Wan J. 2006. Analysis of QTLs for seed low temperature germinability and anoxia germinability in rice (Oryza sativa L.). Field Crops Research, 98:68–75Kretzschmar T, Pelayo MAF, Trijatmiko KR, Gabunada LFM, Alam R, Jimenez R, Mendioro MS, Slamet-Loedin IH, Sreenivasulu N, Bailey-Serres J, Ismail AM, Mackill DJ, Septiningsih EM. 2015. A trehalose-6-phosphate phosphatase enhances anaerobic germination tolerance in rice. Nat Plants 1:15124Kim SM, Reinke RF. 2018. Identification of QTLs for tolerance to hypoxia during germination in rice. Euphytica, 214(9):1-10.Kuroha T, Ashikari M. 2020. Molecular mechanisms and future improvement of submergence tolerance in rice. Molecular Breeding, 40:1-14.Kurokawa Y, Nagai K, Huan PD, Shimazaki K, Qu H, Mori Y, Toda Y, Kuroha T, Hayashi N, Aiga S, Itoh JI, Yoshimura A, Sasaki-Sekimoto Y, Ohta H, Shimojima M, Malik AI, Pedersen O, Colmer TD, AshikariM. 2018. Rice leaf hydrophobicity and 72 gas films are conferred by awax synthesis gene (LGF1) and contribute to flood tolerance. New Phyto 218(4):1558–1569.Lee KW, Chen PW, Lu CA, Chen S, Ho T HD, Yu SM. 2009. Coordinated responses to oxygen and sugar deficiency allow rice seedlings to tolerate flooding. Sci. Signal. 2, ra61.Li JJ, Xiao YL, Xiao GY. 2012. Selection of submergence tolerant homozygous line by STS marker and twice submergence stress. Journal of Integrative Agriculture, 11(12), 1940-1947. doi.org/10.1016/S2095-3119(12)60450-XLuo FL, Nagel KA, Scharr H, Zeng B, Schurr U, Matsubara S. 2011. Recovery dynamics of growth, photosynthesis and carbohydrate accumulation after de submergence: a comparison between two wetland plants showing escape and quiescence strategies. Annals of Botany, 107(1):49-63.Ma M, Cen W, Li R, Wang S, Luo J. 2020. The molecular regulatory pathways and metabolic adaptation in the seed germination and early seedling growth of rice in response to low O2 stress. Plants, 9(10):1363Mackill DJ, Coffman WR, Garrity DP. 1996. Rainfed lowland rice improvement. Los Banos, Philippines: International Rice Research Institute. p. 242Mackill DJ, Ismail AM, Singh U S., Labios RV, Paris TR. 2012. Development and rapid adoption of submergence-tolerant (Sub1) rice varieties. Advances in agronomy, 115:299-352.Mackill DJ, Ismail AM, Singh U S., Labios RV, Paris TR. 2012. Development and rapid adoption of submergence-tolerant (Sub1) rice varieties. Advances in agronomy, 115:299-352.Masuduzzaman ASM, Haque M, Ahmed MME, Mohapatra CK. 2016. SSR marker based genetic diversity analysis of tidal and flood prone areas in rice (Oryza sativa L.). Journal of Biotechnology & Biomaterials, 6(3)Miro B, Ismail AM. 2013. Tolerance of anaerobic conditions caused by flooding during germination and early growth in rice (Oryza sativa L.). Frontiers in plant science, 4:269Miro B, Longkumer T, Entila FD, Kohli A, Ismail AM. 2017. Rice seed germination underwater: Morpho-physiological responses and the bases of differential expression of alcoholic fermentation enzymes. Frontiers in plant science, 8:1857Neeraja CN, Maghirang-Rodriguez R, Pamplon A, Heuer S, Collard BC, Septiningsih EM, ... Mackill DJ. 2007. A marker-assisted backcross approach for developing submergence-tolerant rice cultivars. Theoretical and Applied Genetics, 115(6):767- 776.Niroula RK, Pucciariello C, Ho VT, Novi G, Fukao T, Perata P. 2012. SUB1A‐ dependent and‐independent mechanisms are involved in the flooding tolerance of wild rice species. The Plant Journal, 72(2):282-293.Nishiuchi S, Yamauchi T, Takahashi H, Kotula L, Nakazono M. 2012. Mechanisms for coping with submergence and waterlogging in rice. Rice, 5(1):2Pathaichindachote W, Panyawut N, Sikaewtung K, Patarapuwadol S, Muangprom A. 2019. Genetic Diversity and Allelic Frequency of Selected Thai and Exotic Rice Germplasm Using SSR Markers. Rice Science, 26(6):393-403.Pradhan B. 2015.Breeding for Submergence Tolerance in Rice (Oryza sativa L) And Its Management (Thesis of doctor). University of Calcutta.Pradhan SK, Barik SR, Sahoo J, Pandit E, Nayak DK, Pani DR, Anandan, A. 2015. Comparison of Sub1 markers and their combinations for submergence tolerance and analysis of adaptation strategies of rice in rainfed lowland ecology. Comptes rendus biologies, 338(10):650-659.Panda D, Barik J. 2021. Flooding Tolerance in Rice: Focus on Mechanisms and Approaches. Rice Science, 28(1): 43-57Pedersen O, Rich SM, Colmer TD. 2009. Surviving floods: leaf gas films improve O2 and CO2 exchange, root aeration, and growth of completely submerged rice. The Plant Journal, 58(1):147-156.Pearce DM, Hall KC, Jackson MB.1992. The effects of oxygen, carbon dioxide and ethylene on ethylene biosynthesis in relation to shoot extension in seedlings of rice (Oryza sativa) and barnyard grass (Echinochloa oryzoides). Annals of Botany, 69(5):441-447.Peña-Castro JM. 2014. Respuesta molecular de las plantas ante el estrés por inundación: lecciones aprendidas del gen SUB1A. Revista fitotecnia mexicana, 37(4) :325-337.Pucciariello C, Perata P. 2013. Quiescence in rice submergence tolerance: an evolutionary hypothesis. Trends in Plant Science, 18(7):377-381.Pucciariello C, Perata P. 2013. Quiescence in rice submergence tolerance: an evolutionary hypothesis. Trends in Plant Science, 18(7):377-381.Pucciariello C, Perata P. 2013. Quiescence in rice submergence tolerance: an evolutionary hypothesis. Trends in Plant Science, 18(7):377-381.Rangel CH, JO, Sánchez CH, Lowy CP, Aguilar PM, Castillo A. 1995. Región de la Orinoquia. En: J. O.Rangel-Ch. (ed.) Colombia Diversidad Biótica 1. pp. 239-254. Instituto de Ciencias Naturales. Universidad Nacional de Colombia. Bogotá. D.C.Sairam RK, Kumutha D, Ezhilmathi K, Deshmukh PS, Srivastava GC. 2008. Physiology and biochemistry of waterlogging tolerance in plants. Biologia plantarum, 52(3):401.Sandhu N, Yadav S, Kumar A. 2020. Advances in Developing Multigene Abiotic and Biotic Stress-Tolerant Rice Varieties. In Abiotic Stress in Plants (p. 371). IntechOpen.Santibáñez AG, Castillo AS, Zavala HJ, Martínez OY, Hernández AM. 2009. Environmental Heterogeneity in a Xerophytic Shrubland. Boletín de la Sociedad Botánica de México, (85):71-79Sarkar RK, Reddy JN, Sharma SG, Ismail AM. 2006. Physiological basis of submergence tolerance in rice and implications for crop improvement, Current Science, vol. 91 pg. 899-906Sarkar RK, Bhattacharjee, B. 2011. Rice genotypes with SUB1 QTL differ in submergence tolerance, elongation ability during submergence and re-generation growth at re-emergence. Rice, 5(1):1-11.Sarkar RK, Das KK, Panda D, Reddy JN, Patnaik SSC, Patra BC, Singh DP. 2014.Submergence tolerance in rice: Biophysical Constraints, Physiological basis and Identification of Donors. Central Rice Research Institute, Cuttck, India. p.36Samal R, Roy PS, Sahoo A, Kar MK, Patra BC, Marndi BC, Gundimeda JNR. 2018. Morphological and molecular dissection of wild rices from eastern India suggests distinct speciation between O. rufipogon and O. nivara populations. Scientific reports, 8(1):1-13.Septiningsih EM, Pamplona AM, Sánchez DL, Neeraja CN, Vergara GV, Heuer S, Mackill DJ. 2009. Development of submergence-tolerant rice cultivars: The Sub1 locus and beyond. Annals of Botany, 103(2): 151-160.Septiningsih EM, Collard BC, Heuer S, Bailey-Serres J, Ismail AM y Mackill, DJ. 2013a. Applying genomics tools for breeding submergence tolerance in rice. Translational genomics for crop breeding, 2:9-30Septiningsih EM, Ignacio JC, Sendon PM, Sánchez DL, Ismail AM, Mackill DJ. 2013b. QTL mapping and confirmation for tolerance of anaerobic conditions during germination derived from the rice landrace Ma-Zhan Red. Theoretical and Applied Genetics, 126(5):1357-1366Septiningsih EM, Mackill DJ. 2018. Genetics and breeding of flooding tolerance in rice. In Rice Genomics, Genetics and Breeding, 275-295Setter TL, Ramakrishanayya G, Ram PC, Singh BB, Mallik S, Roy JK, Kundu C, Laureles EV, Sarkarung S, Sarkar RK, Nayak SK. 1998. Physiology of rice: prospects for increasing tolerance to submergence. In: Proceedings of the International symposium on Rainfed Rice for sustainable food security. Central Rice Research Institute, Cuttack, India, pp. 349-369.Singh R. 2016. Assessment of Genetic Potential for Submergence Tolerance in Indica Rice (Orzo sativa L) (Thesis Master). Bihar Agricultural University, Sab our, Bhagalpur.Toojinda T, Siangliw M, Tragoonrung S y Vanavichit A. 2003. Molecular genetics of submergence tolerance in rice: QTL analysis of key traits. Annals of Botany, 91(2), 243-253.Xu K, Xu X, Fula T, Canlas P, Maghirang-Rodriguez R, Heuer S, ... Mackill DJ. 2006. Sub1A is an ethylene-response-factor-like gene that confers submergence tolerance to rice. Nature, 442(7103):705-708.Yamauchi T, Colmer TD, Pedersen O, Nakazono M. 2018.Regulation of root traits for internal aeration and tolerance to soil waterlogging-flooding stress. Plant Physiol 176(2):1118–1130.Zhang M, Lu Q, Wu W, Niu X, Wang C, Feng Y, Xu Q, Wang S, Yuan X, Yu H, Wang Y, Wei X. 2017. Association mapping reveals novel genetic loci contributing to flooding tolerance during germination in indica rice. Front Plant Sci 8:678N/ARecursos agrícolasCultivo de arrozDesarrollo vegetativoCaracterización molecularInundaciónGerminaciónTolerancia a la subemergenciaDesarrollo fenológicoGenotipos tolerantesPublicationORIGINAL164003542.pdf164003542.pdfTrabajo de gradoapplication/pdf3901963https://dspace7-unillanos.metacatalogo.org/bitstreams/a86cea6a-1bfe-4b93-8c74-6ffbff0eabfb/downloadff696474b5a495fb8b40f1f5d01ad9d5MD51164003542 (2).pdf164003542 (2).pdfCarta de aprobaciónapplication/pdf67201https://dspace7-unillanos.metacatalogo.org/bitstreams/a11cccfb-16fd-454b-a2e9-5322367f0351/downloadaa89c4a1cd779630c52cdf234a505419MD52164003542 (3).pdf164003542 (3).pdfCarta de autorizaciónapplication/pdf343051https://dspace7-unillanos.metacatalogo.org/bitstreams/51604f6d-e926-4d03-95d1-8243eb7c4fdf/download148a143934904410567bf8d8a1c4e01dMD53LICENSElicense.txtlicense.txttext/plain; charset=utf-8414https://dspace7-unillanos.metacatalogo.org/bitstreams/f5420f37-c635-4bad-bb03-0b5d90c3657a/downloadf7c6e382a43d2577a35b71202b6dc0cdMD54TEXT164003542.pdf.txt164003542.pdf.txtExtracted texttext/plain175212https://dspace7-unillanos.metacatalogo.org/bitstreams/57ea3bd9-0d61-49f0-a800-c54768c6dcc7/download3e7e083a6eb7b74907e1324e9cf8efdcMD55164003542 (2).pdf.txt164003542 (2).pdf.txtExtracted texttext/plain1153https://dspace7-unillanos.metacatalogo.org/bitstreams/c2213c48-db41-4ee2-945a-2a8c7c305131/downloadeab770c196ff6a24d16666e024564f36MD57164003542 (3).pdf.txt164003542 (3).pdf.txtExtracted texttext/plain2157https://dspace7-unillanos.metacatalogo.org/bitstreams/680babe7-c56c-46c5-8f38-5bfc005f4d3b/downloadde51c7d04ad3e6b452d6f6a9449a0626MD59THUMBNAIL164003542.pdf.jpg164003542.pdf.jpgGenerated Thumbnailimage/jpeg6995https://dspace7-unillanos.metacatalogo.org/bitstreams/eab6b9da-4e74-4db0-b9c8-92218f80fc4d/download10c2fee6a450f79cec88dd7fc5b2d56bMD56164003542 (2).pdf.jpg164003542 (2).pdf.jpgGenerated Thumbnailimage/jpeg9215https://dspace7-unillanos.metacatalogo.org/bitstreams/8384a545-ce73-4d5a-a440-a4270ce8b967/downloadf40119f747beea65db374a25ab6a4fc0MD58164003542 (3).pdf.jpg164003542 (3).pdf.jpgGenerated Thumbnailimage/jpeg14508https://dspace7-unillanos.metacatalogo.org/bitstreams/f29c26eb-4411-4142-bdb4-0e44f3f254cd/downloadef5d7a03c309c0971bcb7fc6c9594c99MD510001/2869oai:dspace7-unillanos.metacatalogo.org:001/28692024-04-17 16:39:44.998https://creativecommons.org/licenses/by-nc-nd/4.0/Derechos Reservados - Universidad de los Llanos, 2022open.accesshttps://dspace7-unillanos.metacatalogo.orgRepositorio Universidad de Los Llanosrepositorio@unillanos.edu.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