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Crecimiento de plántulas de pepino Poinsett 76 con remoción de hojas cotiledonales
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2017-12-31

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spelling Crecimiento de plántulas de pepino Poinsett 76 con remoción de hojas cotiledonales
Poinsett 76 cucumber seedlings growth with cotiledonary leaves removal
Barraza A., Fernando
20
2
Núm. 2 , Año 2017 :Revista U.D.C.A Actualidad & Divulgación Científica. Julio-Diciembre
Artículo de revista
Journal article
2017-12-31T00:00:00Z
2017-12-31T00:00:00Z
2017-12-31
application/pdf
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Universidad de Ciencias Aplicadas y Ambientales U.D.C.A
Revista U.D.C.A Actualidad & Divulgación Científica
0123-4226
2619-2551
https://revistas.udca.edu.co/index.php/ruadc/article/view/383
10.31910/rudca.v20.n2.2017.383
https://doi.org/10.31910/rudca.v20.n2.2017.383
spa
https://creativecommons.org/licenses/by-nc-sa/4.0/
479
484
ADEOYE, I.; BALOGUN, O. 2016. Profitability and efficiency of cucumber production among smallholder farmers in Oyo state, Nigeria. J. Agr. Sci. (Sri Lanka).61(4):387-398.
ALBANNA, L.; SALEM, N.; AWWAD, A. 2016. Seed germination and growth of cucumber (Cucumis sativus): effect of nano-crystalline sulfur. J. Agric. Sci. (Canadá). 8(10):219-225.
AMARANTE, C.; BISOGNIN, D.; CANCI, P. 1995. Contribuição das folhas cotiledonares para o crescimento inicial de plantas de abóbora híbrida cv. Tetsukabuto. Ciênc. Rural. (Brasil). 25(1):17-21.
ASAHINA, M.; YAMAUCHI, Y.; HANADA, H.; KAMIYA, Y.; KAMADA, H.; SATOH, S.; YAMAGUCHI, S. 2007. Effects of the removal of cotyledons on endogenous gibberellin levels in hypocotyls of young cucumber and tomato seedlings. Plant Biotechnol. (Japón). 24:99-106.
BANDURSKA, H.; KRZYSZKOWSKA, J.; MOLINSKI, K.; ZIELEZINSKA, M. 2011. A method of early selection of cucumber genotypes insensitive to chilling based on data mining. Acta Sci. Pol. (Polonia). 10(2):225-233.
BISOGNIN, D.; VELASQUEZ, L.; WIDDERS, I. 2005. Cucumber seedling dependence on cotyledonary leaves for early growth. Pesq. Agropec. Bras. (Brasil). 40(6):531-539.
CALVO, R.; GONZÁLEZ, J.; PÉREZ, S. 1994. Manual de modelos no lineales en los ámbitos agronómico, ganadero y forestal. Ministerio de Agricultura, Pesca y Alimentación. Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria. Madrid, España.110p.
CELIS, R.; PEÑA, C.; TREJO, C.; AGUIRRE, J.; CORDOVA, L.; CARBALLO, A. 2008. Consumo de reservas de la semilla de frijol para la emergencia y desarrollo inicial en diferentes profundidades de siembra. Agron. mesoam. (Costa Rica). 19(2):167-177.
CHO, Y.; SUNGBONG, O.; MYOUNG, M.; SON, J. 2007.
Estimation of individual leaf area, fresh weight, and dry weight of hydroponically grown cucumbers (Cucumis sativus L.) using leaf length, width, and SPAD value. Sci, Hortic. (Holanda). 111:330-334.
CLIMATE-DATA.ORG. 2016. Clima: Montería, Colombia. Disponible desde Internet en: http://es.climate-data.org/location/5123/ (con acceso el 14/07/2016).
FERREIRA, O.; ROSSI, F.; ANDRIGHETTO, C. 2009. DDA-Determinador digital de áreas. Software para determinação de área foliar, índice de área foliar e área de olho de lombo. Versão 1.2. Instituto Federal de Educação, Ciéncia e tecnologia. Farroupilha. Campus Santo Augusto. Brasil.
HAQUE, M.; HASANUZZAMAN, M.; RAHMAN, M. 2009. Morpho-physiology and yield of cucumber (Cucumis sativa) under varying light intensity. Acad. J. Plant. Sci. (Emiratos Árabes Unidos). 2(3):154-157.
HYAMS, D. 2003. Curve Expert 1.3. A comprehensive curve fitting system for Windows©. Unregistered evaluation copy. USA.
JAFARI, S.; ARVIN, S.; KALANTARI, K. 2015. Response of cucumber (Cucumis sativus L.) seedlings to exogenous silicon and salicylic acid under osmotic stress. Acta Biol. Szeged. (Hungría). 59(1):25-33.
JELLANI, G.; ATIF, M.; ULLAH, H.; ALI, M.; MUSA, M. 2015. Influence of seedling age on cucumber (Cucumis sativus L.) production. SAARC J. Agri. (Bangladesh). 13(2):214-221.
KOKILAVANI, V.; RAJENDIRAN, K. 2014. Ultraviolet-b induced changes in the leaf architecture of Cucumis sativus L. VAR. CO 1. Int. J. Geo. Earth Env. Sc. (India). 4(2):208-215.
MELLO, B.; TREVISAN, M.; STEINER, F. 2016. Quality of cucumber seedlings grown in different containers. Rev. Agr. Neot. (Brasil). 3(1):33-38.
MORAN, R.; VERNON, L.; PORATH, D.; ARZEE, T. 1990. Developmental stages of cucumber seedlings. Plant. Physiol. (Estados Unidos de América). 92:1075-1080.
PENNY, M.; MOORE, K.; LOVELL, P. 1976. The effects of inhibition of cotyledon photosynthesis on seedling development in Cucumis sativus L. Ann. Bot. (Inglaterra). 40(4):815-824.
PRAKASH, J.; BAIG, M.; MOHANTY, P. 2001. Differential changes in the steady state levels of thylakoid membrane proteins during senescence in Cucumis sativus cotyledons. Z. Naturforsch. (Alemania). 56:585-592.
PROCKO, C.; CRENSHAW, C.; LJUNG, K.; NOEL, J.; CHORY, J. 2014. Cotyledon-generated auxin is required for shade-induced hypocotyl growth in Brassica rapa. Plant Physiol. (Estados Unidos de América). 165:1285-1301.
SAS INSTITUTE INC. 2008. Statistical analysis system. The SAS© system for Windows© version 9.1.3. The Power to Know. Cary, NC, EEUU.
SAVVIDES, A.; IEPEREN, W.; DIELEMAN, J.; MARCELIS, L. 2017. Phenotypic plasticity to altered apical bud temperature in Cucumis sativus: more leaves-smaller leaves and viceversa. Plant. Cell. Environ. (Estados Unidos de América). 40:69-79.
SHIBUYA, T.; ENDO, R.; KITAYA, Y. 2016. Growth analysis and photosynthesis measurements of cucumber seedlings grown under light with different red to far-red ratios. Hort. Sci. (República Checa). 51(7):843-846.
THOMSON, V.; CUNNINGHAM, S.; BALL, M.; NICOTRA, A. 2003. Compensation for herbivory by Cucumis sativus through increased photosynthetic capacity and efficiency. Oecologia. (Alemania). 134:167-175.
TISCHLER, C.; POLLEY, H.; JOHNSON, H.; PENNINGTON, R. 2000. Seedling response to elevated CO2 in five epigeal species. Int. J. Plant Sci. (Estados Unidos de América). 161(5):779-783.
YU, X.; ZHOU, R.; WANG, X.; KJÆR, K.; ROSENQVIST, E.; OTTOSEN, C.; CHEN, J. 2016. Evaluation of genotypic variation during leaf development in four Cucumis genotypes and their response to high light conditions. Environ. Exp. Bot. (Inglaterra). 124:100-109.
ZHANG, H.; ZHOU, D.; MATTHEW, C.; WANG, P.; ZHENG, W. 2010. Photosynthetic contribution of cotyledons to early seedling development in Cynoglossum divaricatum and Amaranthus retroflexus. New Zeal. J. Bot. (Nueva Zelanda). 46(1):39-48.
ZHANG, S.; ZHAO, C.; LAMB, E. 2011. Cotyledon damage affects seed number through final plant size in the anual grassland species Medicago lupulina. Ann. Bot. (Inglaterra). 107:437-442.
ZHENG, W.; WANG, P.; ZHANG, H.; ZHOU, D. 2011. Photosynthetic characteristics of the cotyledon and first true leaf of castor (Ricinus communis L.). Aust. J. Crop. Sci. (Australia). 6:702-708.
https://revistas.udca.edu.co/index.php/ruadc/article/download/383/324
https://revistas.udca.edu.co/index.php/ruadc/article/download/383/1501
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title Crecimiento de plántulas de pepino Poinsett 76 con remoción de hojas cotiledonales
spellingShingle Crecimiento de plántulas de pepino Poinsett 76 con remoción de hojas cotiledonales
Barraza A., Fernando
title_short Crecimiento de plántulas de pepino Poinsett 76 con remoción de hojas cotiledonales
title_full Crecimiento de plántulas de pepino Poinsett 76 con remoción de hojas cotiledonales
title_fullStr Crecimiento de plántulas de pepino Poinsett 76 con remoción de hojas cotiledonales
title_full_unstemmed Crecimiento de plántulas de pepino Poinsett 76 con remoción de hojas cotiledonales
title_sort crecimiento de plántulas de pepino poinsett 76 con remoción de hojas cotiledonales
title_eng Poinsett 76 cucumber seedlings growth with cotiledonary leaves removal
author Barraza A., Fernando
author_facet Barraza A., Fernando
citationvolume 20
citationissue 2
citationedition Núm. 2 , Año 2017 :Revista U.D.C.A Actualidad & Divulgación Científica. Julio-Diciembre
publisher Universidad de Ciencias Aplicadas y Ambientales U.D.C.A
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references ADEOYE, I.; BALOGUN, O. 2016. Profitability and efficiency of cucumber production among smallholder farmers in Oyo state, Nigeria. J. Agr. Sci. (Sri Lanka).61(4):387-398.
ALBANNA, L.; SALEM, N.; AWWAD, A. 2016. Seed germination and growth of cucumber (Cucumis sativus): effect of nano-crystalline sulfur. J. Agric. Sci. (Canadá). 8(10):219-225.
AMARANTE, C.; BISOGNIN, D.; CANCI, P. 1995. Contribuição das folhas cotiledonares para o crescimento inicial de plantas de abóbora híbrida cv. Tetsukabuto. Ciênc. Rural. (Brasil). 25(1):17-21.
ASAHINA, M.; YAMAUCHI, Y.; HANADA, H.; KAMIYA, Y.; KAMADA, H.; SATOH, S.; YAMAGUCHI, S. 2007. Effects of the removal of cotyledons on endogenous gibberellin levels in hypocotyls of young cucumber and tomato seedlings. Plant Biotechnol. (Japón). 24:99-106.
BANDURSKA, H.; KRZYSZKOWSKA, J.; MOLINSKI, K.; ZIELEZINSKA, M. 2011. A method of early selection of cucumber genotypes insensitive to chilling based on data mining. Acta Sci. Pol. (Polonia). 10(2):225-233.
BISOGNIN, D.; VELASQUEZ, L.; WIDDERS, I. 2005. Cucumber seedling dependence on cotyledonary leaves for early growth. Pesq. Agropec. Bras. (Brasil). 40(6):531-539.
CALVO, R.; GONZÁLEZ, J.; PÉREZ, S. 1994. Manual de modelos no lineales en los ámbitos agronómico, ganadero y forestal. Ministerio de Agricultura, Pesca y Alimentación. Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria. Madrid, España.110p.
CELIS, R.; PEÑA, C.; TREJO, C.; AGUIRRE, J.; CORDOVA, L.; CARBALLO, A. 2008. Consumo de reservas de la semilla de frijol para la emergencia y desarrollo inicial en diferentes profundidades de siembra. Agron. mesoam. (Costa Rica). 19(2):167-177.
CHO, Y.; SUNGBONG, O.; MYOUNG, M.; SON, J. 2007.
Estimation of individual leaf area, fresh weight, and dry weight of hydroponically grown cucumbers (Cucumis sativus L.) using leaf length, width, and SPAD value. Sci, Hortic. (Holanda). 111:330-334.
CLIMATE-DATA.ORG. 2016. Clima: Montería, Colombia. Disponible desde Internet en: http://es.climate-data.org/location/5123/ (con acceso el 14/07/2016).
FERREIRA, O.; ROSSI, F.; ANDRIGHETTO, C. 2009. DDA-Determinador digital de áreas. Software para determinação de área foliar, índice de área foliar e área de olho de lombo. Versão 1.2. Instituto Federal de Educação, Ciéncia e tecnologia. Farroupilha. Campus Santo Augusto. Brasil.
HAQUE, M.; HASANUZZAMAN, M.; RAHMAN, M. 2009. Morpho-physiology and yield of cucumber (Cucumis sativa) under varying light intensity. Acad. J. Plant. Sci. (Emiratos Árabes Unidos). 2(3):154-157.
HYAMS, D. 2003. Curve Expert 1.3. A comprehensive curve fitting system for Windows©. Unregistered evaluation copy. USA.
JAFARI, S.; ARVIN, S.; KALANTARI, K. 2015. Response of cucumber (Cucumis sativus L.) seedlings to exogenous silicon and salicylic acid under osmotic stress. Acta Biol. Szeged. (Hungría). 59(1):25-33.
JELLANI, G.; ATIF, M.; ULLAH, H.; ALI, M.; MUSA, M. 2015. Influence of seedling age on cucumber (Cucumis sativus L.) production. SAARC J. Agri. (Bangladesh). 13(2):214-221.
KOKILAVANI, V.; RAJENDIRAN, K. 2014. Ultraviolet-b induced changes in the leaf architecture of Cucumis sativus L. VAR. CO 1. Int. J. Geo. Earth Env. Sc. (India). 4(2):208-215.
MELLO, B.; TREVISAN, M.; STEINER, F. 2016. Quality of cucumber seedlings grown in different containers. Rev. Agr. Neot. (Brasil). 3(1):33-38.
MORAN, R.; VERNON, L.; PORATH, D.; ARZEE, T. 1990. Developmental stages of cucumber seedlings. Plant. Physiol. (Estados Unidos de América). 92:1075-1080.
PENNY, M.; MOORE, K.; LOVELL, P. 1976. The effects of inhibition of cotyledon photosynthesis on seedling development in Cucumis sativus L. Ann. Bot. (Inglaterra). 40(4):815-824.
PRAKASH, J.; BAIG, M.; MOHANTY, P. 2001. Differential changes in the steady state levels of thylakoid membrane proteins during senescence in Cucumis sativus cotyledons. Z. Naturforsch. (Alemania). 56:585-592.
PROCKO, C.; CRENSHAW, C.; LJUNG, K.; NOEL, J.; CHORY, J. 2014. Cotyledon-generated auxin is required for shade-induced hypocotyl growth in Brassica rapa. Plant Physiol. (Estados Unidos de América). 165:1285-1301.
SAS INSTITUTE INC. 2008. Statistical analysis system. The SAS© system for Windows© version 9.1.3. The Power to Know. Cary, NC, EEUU.
SAVVIDES, A.; IEPEREN, W.; DIELEMAN, J.; MARCELIS, L. 2017. Phenotypic plasticity to altered apical bud temperature in Cucumis sativus: more leaves-smaller leaves and viceversa. Plant. Cell. Environ. (Estados Unidos de América). 40:69-79.
SHIBUYA, T.; ENDO, R.; KITAYA, Y. 2016. Growth analysis and photosynthesis measurements of cucumber seedlings grown under light with different red to far-red ratios. Hort. Sci. (República Checa). 51(7):843-846.
THOMSON, V.; CUNNINGHAM, S.; BALL, M.; NICOTRA, A. 2003. Compensation for herbivory by Cucumis sativus through increased photosynthetic capacity and efficiency. Oecologia. (Alemania). 134:167-175.
TISCHLER, C.; POLLEY, H.; JOHNSON, H.; PENNINGTON, R. 2000. Seedling response to elevated CO2 in five epigeal species. Int. J. Plant Sci. (Estados Unidos de América). 161(5):779-783.
YU, X.; ZHOU, R.; WANG, X.; KJÆR, K.; ROSENQVIST, E.; OTTOSEN, C.; CHEN, J. 2016. Evaluation of genotypic variation during leaf development in four Cucumis genotypes and their response to high light conditions. Environ. Exp. Bot. (Inglaterra). 124:100-109.
ZHANG, H.; ZHOU, D.; MATTHEW, C.; WANG, P.; ZHENG, W. 2010. Photosynthetic contribution of cotyledons to early seedling development in Cynoglossum divaricatum and Amaranthus retroflexus. New Zeal. J. Bot. (Nueva Zelanda). 46(1):39-48.
ZHANG, S.; ZHAO, C.; LAMB, E. 2011. Cotyledon damage affects seed number through final plant size in the anual grassland species Medicago lupulina. Ann. Bot. (Inglaterra). 107:437-442.
ZHENG, W.; WANG, P.; ZHANG, H.; ZHOU, D. 2011. Photosynthetic characteristics of the cotyledon and first true leaf of castor (Ricinus communis L.). Aust. J. Crop. Sci. (Australia). 6:702-708.
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