Induction of Genetic Variability in Cosmos atrosanguineus (Hook.) Voss by Gamma Irradiation: A Model for Conserving Mexican Endemic Species
DOI:
https://doi.org/10.48162/rev.39.224Palabras clave:
radiación ionizante, mutagénesis in vitro, hormesis, mejoramiento genético, radiosensibilidadResumen

Chocolate cosmos (Cosmos atrosanguineus (Hook.) Voss) is an endemic Mexican ornamental species characterized by low genetic variability and limited propagation. Gamma irradiation-induced mutagenesis represents a valuable strategy for generating genetic variation and supporting conservation programs. This study evaluated the effects of different cobalt-60 (60Co) irradiation doses (0, 10, 20, 30, and 40 Gy) on the morphological response of in vitro-cultured axillary buds of chocolate cosmos and determined its median lethal dose (LD50). Explants cultured on MS medium were irradiated and evaluated in two stages: post-irradiation recovery and multiple sprouting. Morphological variables (explant length, number of shoots, and leaves) and the presence of roots and callus were assessed. Data were analyzed using nonparametric and Fisher’s exact tests. The LD50 was estimated by simple linear regression. Survival was 100% in all treatments. The 10 Gy dose stimulated sprouting and leaf number. Morphogenetic development was significantly inhibited from 20 Gy onwards. Root formation was limited in all treatments, while callus formation declined sharply at higher doses. The estimated LD50 was 20 Gy (R2=0.94). These findings provide a basis for future mutation-breeding and conservation programs of chocolate cosmos.
Highlights:
- Moderate gamma irradiation stimulated shoot proliferation and leaf development in the chocolate cosmos explants.
- Doses >20 Gy of 60Co inhibited the growth of chocolate cosmos shoots, suggesting a possible hormesis effect.
- The estimated LD50 of 20 Gy provides a valuable reference for future mutation-breeding programs in chocolate cosmos.
Descargas
Citas
Abdulhafiz, F., Kayat, F., & Zakaria, S. (2018). Effect of gamma irradiation on the morphological and physiological variation from in vitro individual shoot of banana cv. Tanduk (Musa spp.). Journal of Plant Biotechnology, 45(2),140-145. https://doi.org/10.5010/JPB.2018.45.2.140
Akshatha, & Chandrashekar, K. R. (2014). Gamma sensitivity of forest plants of Western Ghats. Journal of Environmental Radioactivity, 132, 100-107. https://doi.org/10.1016/j.jenvrad.2014.02.006
Alphonse, M., Thiagarajan, K., Fulzele, D. P., Pillay, M., Satdive, R. K., Kamble, S. N., Raina, R., Ramamoorthy, S., & Chandrasekaran, R. (2022). Effect of gamma radiation on gentiopicroside production in Gentiana kurroo Royle in vitro cultures. Industrial Crops and Products, 176, 114392.https://doi.org/10.1016/j.indcrop.2021.114392
Amamiya, K., & Iwashina, T. (2016). Qualitative and quantitative analysis of flower pigments in chocolate cosmos, Cosmos atrosanguineus, and its hybrids. Natural Product Communications,11(1), 77-78. https://doi.org/10.1177/1934578X1601100122
Antúnez-Ocampo, O. M., Cruz-Izquierdo, S., Sandoval-Villa, M., Santacruz-Varela, A., Mendoza-Onofre, L. E., de la Cruz-Torres, E., & Peña-Lomelí, A. (2017). Induced variability in physiological characters of Physalis peruviana L. through 60co gamma rays applied to the seed. Revista Fitotecnia Mexicana, 40(2), 211-218. https://doi.org/10.35196/rfm.2017.2.211-218
Bidabadi, S. S., & Jain, S. M. (2020). Cellular, molecular, and physiological aspects of in vitro plant regeneration. Plants, 9(6), 702. https://doi.org/10.3390/plants9060702
Blagojevic, D., Lee, Y., Brede, D. A., Lind, O. C., Yakovlev, I., Solhaug, K. A., Fossdal, C. G., Salbu, B., Olsen, J. E. (2019). Comparative sensitivity to gamma radiation at the organismal, cell and DNA level in young plants of Norway spruce, Scots pine and Arabidopsis thaliana. Planta, 250, 1567-1590. https://doi.org/10.1007/s00425-019-03250-y
Castro-Castro, A., Vargas-Amado, G., Castañeda-Nava, J. J., Harker, M., Munguía-Lino, G., Santacruz-Ruvalcaba, F., & Rodríguez, A. (2017). Chromosomic numbers for three species of Cosmos section Discopoda (Asteraceae, Coreopsideae), with cytogeographic notes. Acta Botánica Mexicana, 118, 41-51. https://doi.org/10.21829/abm118.2017.1199
de la Cruz Díaz-Juárez, R., Hernández-Arenas, M., Santacruz-Varela, A., Silva-Cifuentes, E. G., de la Cruz-Torres, E., Barrios-Gómez, E. J., Trejo-Pastor, V., & Muñoz-Orozco, A. (2022). High doses of gamma radiation (Cobalt60) decrease the phenotypic expression of characters in sugarcane (Saccharum officinarum L.). Brazilian Journal of Animal and Environmental Research, 5(4), 3694-3709. https://doi.org/10.34188/bjaerv5n4-021
Elizar, I., Sinuraya, M., & Sipayung, R. (2018). The effect of gamma rays irradiation on the growth and flavonoid content of kenikir (Cosmos caudatus Kunth.). Journal of Physics: Conference Series, 1116(5), 052020. https://doi.org/10.1088/1742-6596/1116/5/052020
Gálvez-Marroquín, L. A., Avendaño-Arrazate, C. H., Ariza-Flores, R., Gomez-Simuta, Y., Martínez-Bolaños, M., & Cruz-López, J. A. (2023). Gamma radiation in roselle seeds to induce morphological variation and selection of mutants. Revista Mexicana de Ciencias Agrícolas, 14(5), 27-37. https://doi.org/10.29312/remexca.v14i5.3010
Gómez-Pedraza, D. E., Cruz-Álvarez, O., & Martínez-Damián, M. T. (2024). Chocolate cosmos (Cosmos atrosanguineus Sherff): An endemic and undervalued ornamental species in Mexico. CIENCIA ergo-sum, 31(1), e240. https://doi.org/10.30878/ces.v31n0a25
Gupta, R., Wali, V. K., Bakshi, P., Singh, G., Shah, R. A., & Rani, S. (2018). Effects of gamma irradiation on shoot, root and survival percent in strawberry cv. Chandler under in vitro conditions. International Journal of Current Microbiology and Applied Sciences, 7(3), 1173-1182. https://doi.org/10.20546/ijcmas.2018.703.139
Hasbullah, N. A., Taha, R. M., Saleh, A., & Mahmad, N. (2012). Irradiation effect on in vitro organogenesis, callus growth and plantlet development of Gerbera jamesonii. Horticultura Brasileira, 30(2), 252-257. https://doi.org/10.1590/S0102-05362012000200012
Hernández-Muñoz, S., Pedraza-Santos, M. E., López, P. A., de la Cruz-Torres, E., Fernández-Pavía, S. P., Martínez-Palacios, A., & Martínez-Trujillo, M. (2017). LD50 and GR50 determination with gamma rays (60CO) on in vitro Laelia autumnalis protocorms. Agrociencia, 51(5), 507-524. https://agrociencia-colpos.org/index.php/agrociencia/article/view/1307/1307
Hind, N., & Fay, M. F. (2003). Plate 461. Cosmos atrosanguineus Compositae. Curtis’s Botanical Magazine, 20(1), 40-48. https://doi.org/10.1111/1467-8748.00369
Kapare, V., Satdive, R., Fulzele, D. P., & Malpathak, N. (2017). Impact of gamma irradiation induced variation in cell growth and phytoecdysteroid production in Sesuvium portulacastrum. Journal of Plant Growth Regulation, 36, 919-930. https://doi.org/10.1007/s00344-017-9697-3
Kaur, R., Kapoor, M., Kaur, R., & Kumar, A. (2017). Effect of gamma irradiation on cyto-morphology, total phenolic content and antioxidant activity of calendula. Journal of Hill Agriculture, 8(4), 395-402. https://doi.org/10.5958/2230-7338.2017.00078.7
Khalil, S. A., Ahmad, N., & Zamir, R. (2015). Gamma radiation induced variation in growth characteristics and production of bioactive compounds during callogenesis in Stevia rebaudiana (Bert.). New Negatives in Plant Science, 1, 1-5. https://doi.org/10.1016/j.neps.2015.06.002
Khan, S. A., Rahman, L. U., Verma, R., & Shanker, K. (2016). Physical and chemical mutagenesis in Stevia rebaudiana: variant generation with higher UGT expression and glycosidic profile but with low photosynthetic capabilities. Acta Physiologiae Plantarum, 38(4), 1-12. https://doi.org/10.1007/s11738-015-2003-8
Martirena-Ramírez, A., Veitía, N., García, L., Collado, R., Torres, D., Rivero, L., & Ramírez-López, M. (2015). Respuesta in vitro de semillas de Phaseolus vulgaris L. cultivar ‘Ica Pijao’ irradiadas con diferentes dosis de radiación Gamma. Biotecnología Vegetal, 15(1), 9-15. https://revista.ibp.co.cu/index.php/BV/article/view/5/3
Martirena-Ramírez, A., Veitía, N., García, L. R., Collado, R., Torres, D., Rivero, L., & Ramírez-López, M. (2018). Optimal dose of gamma radiation for Phaseolus vulgaris L. cultivar ‘BAT-93’ in vitro plants regeneration. Biotecnología Vegetal, 18(1), 21-29.
McDonald, J. H. (2014). Handbook of biological statistics (3rd ed). Sparky House Publishing.
Murashige, T., & Skoog, F. (1962). A revised medium for rapid growth and bio assays with tobacco tissue cultures. Physiologia Plantarum, 15(3), 473-497. https://doi.org/10.1111/j.1399-3054.1962.tb08052.x
Olasupo, F. O., Ilori, C. O., Forster, B. P., & Bado, S. (2016). Mutagenic effects of gamma radiation on eight accessions of Cowpea (Vigna unguiculata [L.] Walp.). American Journal of Plant Sciences, 7(2), 339-351. https://doi.org/10.4236/ajps.2016.72034
Pallavi, B., Nivas, S. K., D’souza, L., Ganapathi, T. R., & Hegde, S. (2017). Gamma rays induced variations in seed germination, growth and phenotypic characteristics of Zinnia elegans var. Dreamland. Advances in Horticultural Science, 31(4), 267-274. https://doi.org/10.13128/ahs-20289
Piña-de Jesús, E., Sánchez-Pale, R. J., Castañeda-Vildozola, Á., Franco-Mora, O., & de la Cruz-Torres, E. (2024). Efecto de irradiación con rayos gamma de 60Co en gladiolo (Gladiolus communis L.) cultivares roja borrega y blanca borrega. Acta Agrícola y Pecuaria, 10, e0101013. https://www.researchgate.net/publication/387963214_Efecto_de_irradiacion_con_rayos_gamma_de_60Coen_gladiolo_Gladiolus_communis_L_cultivares_roja_borrega_y_blanca_borrega
R Core Team. (2025). R: A language and environment for statistical computing [software]. R Foundation for Statistical Computing. https://www.R-project.org/
Rene, Y. A., Rashid, K., Tajudin, A., Zainoldin, K. H., Daran, A. B., Nezhadahmadi, A., & Golam, F. (2014). The contribution of muslim scientists in botanical science: Studies on the using of gamma rays for ginger plants (Zingiber officinale). Stem Cell, 5(4), 88-94. https://www.sciencepub.net/stem/stem0504/010_27756stem050414_88_94.pdf
Rojas-Vergara, P., Aguirre, P., Durán, O., & Nario, A. (2018). Aplicaciones de tecnologías nucleares en conservación y mejoramiento genético forestal bajo un escenario de cambio climático. Ciencia & Investigación Forestal, 24(3), 116-127. https://doi.org/10.52904/0718-4646.2018.506
Salomón, J. L., González, M. C., Castillo, J., & Varela, M. (2017). Behavior of “Barna”, cultivar of potato (Solanum tuberosum L.) at different doses of gamma rays Cobalt-60 source. Cultivos Tropicales, 38(4), 127-130. https://ediciones.inca.edu.cu/index.php/ediciones/article/view/1407
Sarkar, J., Singh, S. K., Singh, K. P., & Guha, S. K. (2016). In-vivo and in-vitro mutagenesis in marigold (Tagetes erecta) using 60Co gamma rays. The Indian Journal of Agricultural Sciences, 86(7), 870-5. https://doi.org/10.56093/ijas.v86i7.59738
Serrano-Fuentes, M. K., Gómez-Merino, F. C., Cruz-Izquierdo, S., Spinoso-Castillo, J. L., & Bello-Bello, J. J. (2022). Gamma radiation (60Co) induces mutation during in vitro multiplication of vanilla (Vanilla planifolia Jacks. ex Andrews). Horticulturae, 8(6), 503. https://doi.org/10.3390/horticulturae8060503
Thongtam na Ayudhaya, P., Konsanuk, S., & Vongvanrungrueng, A. (2022). Effect of acute gamma radiation on survival rate and morphological change from seed of Cosmos sulphureus Cav. Wichcha Journal Nakhon Si Thammarat Rajabhat University, 41(1), 108-118. https://li01.tci-thaijo.org/index.php/wichcha/article/view/254207
Wi, S. G., Chung, B. Y., Kim, J. S., Kim, J. H., Baek, M. H., Lee, J. W., & Kim, Y. S. (2007). Effects of gamma irradiation on morphological changes and biological responses in plants. Micron, 38(6), 553-564. https://doi.org/10.1016/j.micron.2006.11.002
Descargas
Publicado
Cómo citar
Número
Sección
Licencia

Esta obra está bajo una licencia internacional Creative Commons Reconocimiento-NoComercial-CompartirIgual 3.0.
Aquellos autores/as que tengan publicaciones con esta revista, aceptan las Políticas Editoriales.







.jpg)



