Research Article
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Ray-Floret Based Rapid Propagation and Detection of Somatic Variation in Selected Mutant Chrysanthemum Individuals

Year 2024, Volume: 34 Issue: 4, 549 - 558
https://doi.org/10.29133/yyutbd.1475951

Abstract

Chrysanthemum (Dendranthema × grandiflora Tzvelev) is an attractive plant species that responds well to mutation breeding research conducted worldwide. The isolation and propagation of mutant individuals are very important for detecting mutations in in vitro cultures. Using in vitro cultures, it is easy to isolate solid mutants. In this study, the homogeneous reproductive capacity of selected mutant individuals after irradiation was examined using ray floret cultures at the M1V1 stage, based on various flower colors and architectures. The explant materials were obtained from selected mutant plants with yellow, dark red, orange, and spoon-shaped ray florets cultivated in full bloom. After the determination of an effective sterilization method, the ray florets were cultured in Murashige and Skoog's (MS) media, which contained 0.5 mg L-1 1-Naphthalaneacetic acid (NAA) and 2.0 mg L-1 6-Benzylaminopurine (BAP). The average rate of plantlet regeneration varied depending on the genotype; mutants with yellow-colored flowers generated 0.6 plantlets per explant, those with orange-colored flowers (1.11), those with dark red-colored flowers (1.16), and those with spoon-shaped flowers (2.71). After plant regeneration, plantlets were cultured in a hormone-free MS nutrient medium to ensure full-rooted plant development. The findings of this study showed that in vitro ray floret culture could be used to swiftly and successfully carry out vegetative reproduction of pot-type Brandevil mutants, which are more susceptible to in vivo cutting propagation than pot-type Chrysanthemum cultivars. In the propagating material, there were obtained four differently colored somaclonal plants, eleven partial somaclonal plants with incurved-type ray florets, eight somaclonal plants with spatulate-type florets, one somaclonal plant with semi-double-type flower heads, two somaclonal plants with pointed and reflexing ray florets.

Ethical Statement

Ethical approval is not required for this study because no harm was done to nature and the environment.

Supporting Institution

This research project was funded by the Turkish Energy Nuclear and Mineral Research Agency and the General Directorate of Agricultural Research and Policies.

Project Number

A2.H1.P14

Thanks

This research project was funded by the Turkish Energy Nuclear and Mineral Research Agency and the General Directorate of Agricultural Research and Policies, for which the authors are grateful.

References

  • Ahmad, Z., Abu Hassan, A., Salleh, S., Ariffin, S., Shamsudin, S., & Basiran, M. N. (2012). Improvement of Malaysian ornamental plants through induced mutation. Pertanika J Trop Agric Sci, 35(3), 631 – 636.
  • Anonymous, (2019). RHS Colour Chart. Colour Chart Guide Sixth Edition Reprint. RHS Media. London, UK.
  • Anonymous, (2020). Calibration Manual (Harmonized with Naktuinbouw and NCSS (NARO). Comply with UPOV TG/26/5 Corr. 2, 121 p. https://www.naktuinbouw.nl/download?guid=28686b90-fd02-e89c-be39-1c1eb450b25b Access date: 07.07.2023.
  • Anonymous, (2022). Plant varieties bulletin. Number: 2022-03. https:/ https://www.tarimorman.gov.tr/BUGEM/Belgeler/Bitkisel%20%C3%9Cretim/Tohumculuk/Islah%C3%A7%C4%B1%20Haklar%C4%B1/bitki%20%C3%A7e%C5%9Fit%20b%C3%BCltenleri/BULTEN2022.03.pdf Access date: July 07.
  • Asoko, N., Ruamrungsri, S., Yoosumran, V., & Saetiew, K. (2020). Improvement of Dendranthemum grandiflora cv. Canter with colchicine in vitro. International Journal of Agricultural Technology, 16(2), 237-246.
  • Badigannavar, A. M., Mondal, S., & Suprasanna, P. (2022). Role of induced mutagenesis and improved crop varieties in food security: impact in the Indian context. CABI Reviews, 17, 051. doi: 10.1079/cabireviews202217051
  • Barakat, M. N., Fattah, R. S. A., Badr, M., & El-Torky, M. G. (2010). In vitro culture and plant regeneration derived from ray florets of Chrysanthemum morifolium. African Journal of Biotechnology, 9(8),1151-1158.
  • Chen, J. J., & Henny, R. J. (2006). Somaclonal variation: an important source for cultivar development of floriculture crops. In: Teixeira da Silva, J. A. (Ed.). Floriculture, Ornamental and Plant Biotechnology, (pp. 244-253). Global Science Books, Ltd., UK.
  • Datta, S. K. (2023). Technology package for induced mutagenesis. Journal of Biology and Nature, 15(1), 70-88.
  • Datta, S. K., Misra, P., & Mandal, A. K. A. (2005). In vitro mutagenesis – a quick method for establishment of solid mutant in Chrysanthemum. Current Science, 88(1), 155-158.
  • Din, A., Qadri, Z. A., Wani, M. A., Rather, Z. A., Iqbal, S., Malik, S. A., Hussain, P. R., Rafiq, S., & Nazki, I. T. (2020). Congenial in vitro ray-induced mutagenesis underlying the diverse array of petal colours in chrysanthemum (Dendranthema grandiflorum kitam) cv. “Candid”. Biol Life Sci Forum, 4, 21. doi: 10.3390/IECPS2020-08780
  • Eisa, E. A, Tilly-Mándy, A., Honfi, P., Shala, A. Y., & Gururani, M. A. (2022). Chrysanthemum: A comprehensive review on recent Developments on in vitro regeneration. Biology, 11(12)-1774. doi: 10.3390/biology11121774
  • Eeckhaut, T., Van Houtven, W., Bruznican, S., Leus, L., & Van Huylenbroeck, J. (2020). Somaclonal variation in Chrysanthemum × morifolium protoplast regenerants. Front Plant Sci, Sec Plant Breeding, 11. doi: 10.3389/fpls.2020.607171
  • Haspolat, G. (2024). Variations in flower color of mutant Chrysanthemums. Horticulturae 10, 385. doi:10.3390/horticulturae10040385
  • Haspolat, G. (2022). Changes on mutant pot chrysanthemums (Dendranthema × grandiflora Tzelev.). Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 50(4), 13002. doi: 10.15835/nbha50313002
  • Haspolat, G., Kunter, B., & Kantoglu, Y. (2022). Determination of mutagenic-sensitivity and induced variability in the mutant populations of ‘Bacardi’ chrysanthemum cultivar. Genetika, 54(1), 147-160. doi: 10.2298/GENSR2201147H
  • Haspolat, G., Senel, U., Kantoglu, Y. T., Kunter, B., & Guncag, N. (2019). In vitro mutation on Chrysanthemums. Acta Horticulturae, 1263, 261-266.
  • Hesami, M., Naderi, R., & Tohidfar, M. (2019). Modeling and optimizing in vitro sterilization of chrysanthemum via multilayer perceptron-non-dominated sorting genetic algorithm-II (MLP-NSGAII). Front Plant Sci, 14(10), 282. doi: 10.3389/fpls.2019.00282
  • Kazaz, S., Kılıç, T., Doğan, E., Yalçın Mendi, Y., & Karagüzel, Ö. (2020). Current situation and future of ornamental plants production. Paper presented at the Türkiye Ziraat Mühendisliği IX. Teknik Kongresi, January 13-17, Ankara, Türkiye.
  • Kumar, V. A., Prasad, K. V., Anakiram, T. J., & Kumar, S. (2012). Standardization of protocol for pre-treatment, surface sterilization, regeneration, elongation and acclimatization of Chrysanthemum morifolium Ramat. International Journal of Horticulture, 7-12. doi: 10.5376/ijh.2012.02.0003
  • Lamseejan, S., Jompuk, P., Wongpiyasatid, A., Deeseepan, S., & Kwanthammachart, P. (2000). Gamma-rays induced morphological changes in chrysanthemum (Chrysanthemum morifolium) Kasetsart J (Nat Sci), 34, 417 – 422.
  • Malaure, R. S., Barclay, G., Power, J. B., & Davey, M. (1991). The production of novel plants from florets of Chrysanthemum morifolium using tissue culture. I. shoot regeneration from ray florets and somaclonal variation exhibited by the regenerated plants. J Plant Physiol, 139, 8-13.
  • Mandal, A. K. A., Chakrabarty, D., & Datta, S. K. (2000). In vitro isolation of solid novel flower colour mutants from induced chimeric ray florets of chrysanthemum. Euphytica, 114, 9–12.
  • Melsen, K., Van de Wouw, M., & Contreras, R. (2021). Mutation breeding in ornamentals. HortScience, 56(10), 1154–1165. doi: 10.21273/HORTSCI16001-21
  • Misra, P., & Datta, S. K. (2007). Standardization of in vitro protocol in Chrysanthemum cv. Madam E Roger for development of quality planting material and to induce genetic variability using cradiation. Indian J Biotech, 6, 121–124.
  • Murashige, T., & Skoog, F. (1962). A revised medium for rapid growth and bioassay with tobacco tissue cultures. Physiologia Plantarum, 15, 473-497.
  • MVD. (2024). https://mvd.iaea.org/ Access date: March 18.
  • Nasri, F., Zakizadeh, H., Vafaee, Y., & Mozafari, A. A. (2018). In vitro propagation of Chrysanthemum: An overview on its utility in mutagenesis and genetic transformation techniques. Agri Res & Tech: Open Access J, 15(4), 102-105.
  • Nencheva, D. (2010). In vitro propagation of Chrysanthemum. In: Jain, S., Ochatt, S. (Eds.) Protocols for In Vitro Propagation of Ornamental Plants. Methods in Molecular Biology, 589. Humana Press. New Jersey, USA. doi:10.1007/978-1-60327-114-1_17
  • Padmadevi, K., & Jawaharlal, M. (2011). Induction of in vitro chtysanthemum (Dentranthema grandiflora Tzvelev) ray florets (var. Ravi Kiran) using gamma rays and EMS. Floriculture and Ornamental Biotechnology, 5(1): 74-77.
  • Prathyusha, N., Dorajeerao, A. V. D., Ravindrakumar, K., Aparna, D., & Salomi Suneetha, D. R. (2021). In vitro propagation of chrysanthemum (Chrysanthemum morifolium) cultivars from ray floret explants. The Pharma Innovation Journal, 10(10): 415-417.
  • Pu, Y., Liao, M., Li, J., Tian, Y., Wang, Z., Song, X., & Dai, S. (2023). Floral development stage-specific transcriptomic analysis reveals the formation mechanism of different shapes of ray florets in chrysanthemum. Genes, 14(3), 766. doi:10.3390/genes14030766
  • Sharmah, D., Sutradhar, M., & Singh, B. K. (2017). Somaclonal variation and its’ application in ornamentals plants. Int. J. Pure App. Biosci., 5(2), 396-406. doi: 10.18782/2320-7051.2762
  • Teixeira da Silva, J. A. (2014). Organogenesis from chrysanthemum Dendranthema x grandiflora (Ramat.) Kitamura petals (disc and ray florets) induced by plant growth regulators. AsPac J. Mol. Biol. Biotechnol, 22(1), 145-151.
  • Teixeira da Silva, J. A., Lema-Rumińska, J., Tymoszuk, A., Kulpa, D. (2015). Regeneration from chrysanthemum flowers: A review. Acta Physiol Plant, 37,36. doi: 10.1007/s11738-015-1773-3
  • TUIK. (2024). Bitkisel üretim istatistikleri (Crop production statistics). https://data.tuik.gov.tr/Kategori/GetKategori?p=Tarim-111 Access date: April 18.
  • Tymoszuk, A., & Zalewska, M. (2014). In vitro adventitious shoots regeneration from ligulate florets in the aspect of application in chrysanthemum breeding. Acta Scientiarum Polonorum - Hortorum Cultus, 13(2), 45-58.
  • Verma, A. K., Prasad, K. V., Singh, S. K., & Kumar, S. (2012). In vitro isolation of red coloured mutant from chimeric ray florets of chrysanthemum induced by gamma ray. Indian J Hort, 69(4), 562-567.
  • Yali, W., & Mitiku, T. (2022). Mutation breeding and its importance in modern plant breeding. Journal of Plant Sciences, 10(2), 64-70.
  • Zalewska, M., Tymoszuk, A., & Miler, N. (2011). New chrysanthemum cultivars as a result of in vitro mutagenesis with the application of different explant types. Acta Sci Pol Hortorum Cultus, 10(2), 109-123.
Year 2024, Volume: 34 Issue: 4, 549 - 558
https://doi.org/10.29133/yyutbd.1475951

Abstract

Project Number

A2.H1.P14

References

  • Ahmad, Z., Abu Hassan, A., Salleh, S., Ariffin, S., Shamsudin, S., & Basiran, M. N. (2012). Improvement of Malaysian ornamental plants through induced mutation. Pertanika J Trop Agric Sci, 35(3), 631 – 636.
  • Anonymous, (2019). RHS Colour Chart. Colour Chart Guide Sixth Edition Reprint. RHS Media. London, UK.
  • Anonymous, (2020). Calibration Manual (Harmonized with Naktuinbouw and NCSS (NARO). Comply with UPOV TG/26/5 Corr. 2, 121 p. https://www.naktuinbouw.nl/download?guid=28686b90-fd02-e89c-be39-1c1eb450b25b Access date: 07.07.2023.
  • Anonymous, (2022). Plant varieties bulletin. Number: 2022-03. https:/ https://www.tarimorman.gov.tr/BUGEM/Belgeler/Bitkisel%20%C3%9Cretim/Tohumculuk/Islah%C3%A7%C4%B1%20Haklar%C4%B1/bitki%20%C3%A7e%C5%9Fit%20b%C3%BCltenleri/BULTEN2022.03.pdf Access date: July 07.
  • Asoko, N., Ruamrungsri, S., Yoosumran, V., & Saetiew, K. (2020). Improvement of Dendranthemum grandiflora cv. Canter with colchicine in vitro. International Journal of Agricultural Technology, 16(2), 237-246.
  • Badigannavar, A. M., Mondal, S., & Suprasanna, P. (2022). Role of induced mutagenesis and improved crop varieties in food security: impact in the Indian context. CABI Reviews, 17, 051. doi: 10.1079/cabireviews202217051
  • Barakat, M. N., Fattah, R. S. A., Badr, M., & El-Torky, M. G. (2010). In vitro culture and plant regeneration derived from ray florets of Chrysanthemum morifolium. African Journal of Biotechnology, 9(8),1151-1158.
  • Chen, J. J., & Henny, R. J. (2006). Somaclonal variation: an important source for cultivar development of floriculture crops. In: Teixeira da Silva, J. A. (Ed.). Floriculture, Ornamental and Plant Biotechnology, (pp. 244-253). Global Science Books, Ltd., UK.
  • Datta, S. K. (2023). Technology package for induced mutagenesis. Journal of Biology and Nature, 15(1), 70-88.
  • Datta, S. K., Misra, P., & Mandal, A. K. A. (2005). In vitro mutagenesis – a quick method for establishment of solid mutant in Chrysanthemum. Current Science, 88(1), 155-158.
  • Din, A., Qadri, Z. A., Wani, M. A., Rather, Z. A., Iqbal, S., Malik, S. A., Hussain, P. R., Rafiq, S., & Nazki, I. T. (2020). Congenial in vitro ray-induced mutagenesis underlying the diverse array of petal colours in chrysanthemum (Dendranthema grandiflorum kitam) cv. “Candid”. Biol Life Sci Forum, 4, 21. doi: 10.3390/IECPS2020-08780
  • Eisa, E. A, Tilly-Mándy, A., Honfi, P., Shala, A. Y., & Gururani, M. A. (2022). Chrysanthemum: A comprehensive review on recent Developments on in vitro regeneration. Biology, 11(12)-1774. doi: 10.3390/biology11121774
  • Eeckhaut, T., Van Houtven, W., Bruznican, S., Leus, L., & Van Huylenbroeck, J. (2020). Somaclonal variation in Chrysanthemum × morifolium protoplast regenerants. Front Plant Sci, Sec Plant Breeding, 11. doi: 10.3389/fpls.2020.607171
  • Haspolat, G. (2024). Variations in flower color of mutant Chrysanthemums. Horticulturae 10, 385. doi:10.3390/horticulturae10040385
  • Haspolat, G. (2022). Changes on mutant pot chrysanthemums (Dendranthema × grandiflora Tzelev.). Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 50(4), 13002. doi: 10.15835/nbha50313002
  • Haspolat, G., Kunter, B., & Kantoglu, Y. (2022). Determination of mutagenic-sensitivity and induced variability in the mutant populations of ‘Bacardi’ chrysanthemum cultivar. Genetika, 54(1), 147-160. doi: 10.2298/GENSR2201147H
  • Haspolat, G., Senel, U., Kantoglu, Y. T., Kunter, B., & Guncag, N. (2019). In vitro mutation on Chrysanthemums. Acta Horticulturae, 1263, 261-266.
  • Hesami, M., Naderi, R., & Tohidfar, M. (2019). Modeling and optimizing in vitro sterilization of chrysanthemum via multilayer perceptron-non-dominated sorting genetic algorithm-II (MLP-NSGAII). Front Plant Sci, 14(10), 282. doi: 10.3389/fpls.2019.00282
  • Kazaz, S., Kılıç, T., Doğan, E., Yalçın Mendi, Y., & Karagüzel, Ö. (2020). Current situation and future of ornamental plants production. Paper presented at the Türkiye Ziraat Mühendisliği IX. Teknik Kongresi, January 13-17, Ankara, Türkiye.
  • Kumar, V. A., Prasad, K. V., Anakiram, T. J., & Kumar, S. (2012). Standardization of protocol for pre-treatment, surface sterilization, regeneration, elongation and acclimatization of Chrysanthemum morifolium Ramat. International Journal of Horticulture, 7-12. doi: 10.5376/ijh.2012.02.0003
  • Lamseejan, S., Jompuk, P., Wongpiyasatid, A., Deeseepan, S., & Kwanthammachart, P. (2000). Gamma-rays induced morphological changes in chrysanthemum (Chrysanthemum morifolium) Kasetsart J (Nat Sci), 34, 417 – 422.
  • Malaure, R. S., Barclay, G., Power, J. B., & Davey, M. (1991). The production of novel plants from florets of Chrysanthemum morifolium using tissue culture. I. shoot regeneration from ray florets and somaclonal variation exhibited by the regenerated plants. J Plant Physiol, 139, 8-13.
  • Mandal, A. K. A., Chakrabarty, D., & Datta, S. K. (2000). In vitro isolation of solid novel flower colour mutants from induced chimeric ray florets of chrysanthemum. Euphytica, 114, 9–12.
  • Melsen, K., Van de Wouw, M., & Contreras, R. (2021). Mutation breeding in ornamentals. HortScience, 56(10), 1154–1165. doi: 10.21273/HORTSCI16001-21
  • Misra, P., & Datta, S. K. (2007). Standardization of in vitro protocol in Chrysanthemum cv. Madam E Roger for development of quality planting material and to induce genetic variability using cradiation. Indian J Biotech, 6, 121–124.
  • Murashige, T., & Skoog, F. (1962). A revised medium for rapid growth and bioassay with tobacco tissue cultures. Physiologia Plantarum, 15, 473-497.
  • MVD. (2024). https://mvd.iaea.org/ Access date: March 18.
  • Nasri, F., Zakizadeh, H., Vafaee, Y., & Mozafari, A. A. (2018). In vitro propagation of Chrysanthemum: An overview on its utility in mutagenesis and genetic transformation techniques. Agri Res & Tech: Open Access J, 15(4), 102-105.
  • Nencheva, D. (2010). In vitro propagation of Chrysanthemum. In: Jain, S., Ochatt, S. (Eds.) Protocols for In Vitro Propagation of Ornamental Plants. Methods in Molecular Biology, 589. Humana Press. New Jersey, USA. doi:10.1007/978-1-60327-114-1_17
  • Padmadevi, K., & Jawaharlal, M. (2011). Induction of in vitro chtysanthemum (Dentranthema grandiflora Tzvelev) ray florets (var. Ravi Kiran) using gamma rays and EMS. Floriculture and Ornamental Biotechnology, 5(1): 74-77.
  • Prathyusha, N., Dorajeerao, A. V. D., Ravindrakumar, K., Aparna, D., & Salomi Suneetha, D. R. (2021). In vitro propagation of chrysanthemum (Chrysanthemum morifolium) cultivars from ray floret explants. The Pharma Innovation Journal, 10(10): 415-417.
  • Pu, Y., Liao, M., Li, J., Tian, Y., Wang, Z., Song, X., & Dai, S. (2023). Floral development stage-specific transcriptomic analysis reveals the formation mechanism of different shapes of ray florets in chrysanthemum. Genes, 14(3), 766. doi:10.3390/genes14030766
  • Sharmah, D., Sutradhar, M., & Singh, B. K. (2017). Somaclonal variation and its’ application in ornamentals plants. Int. J. Pure App. Biosci., 5(2), 396-406. doi: 10.18782/2320-7051.2762
  • Teixeira da Silva, J. A. (2014). Organogenesis from chrysanthemum Dendranthema x grandiflora (Ramat.) Kitamura petals (disc and ray florets) induced by plant growth regulators. AsPac J. Mol. Biol. Biotechnol, 22(1), 145-151.
  • Teixeira da Silva, J. A., Lema-Rumińska, J., Tymoszuk, A., Kulpa, D. (2015). Regeneration from chrysanthemum flowers: A review. Acta Physiol Plant, 37,36. doi: 10.1007/s11738-015-1773-3
  • TUIK. (2024). Bitkisel üretim istatistikleri (Crop production statistics). https://data.tuik.gov.tr/Kategori/GetKategori?p=Tarim-111 Access date: April 18.
  • Tymoszuk, A., & Zalewska, M. (2014). In vitro adventitious shoots regeneration from ligulate florets in the aspect of application in chrysanthemum breeding. Acta Scientiarum Polonorum - Hortorum Cultus, 13(2), 45-58.
  • Verma, A. K., Prasad, K. V., Singh, S. K., & Kumar, S. (2012). In vitro isolation of red coloured mutant from chimeric ray florets of chrysanthemum induced by gamma ray. Indian J Hort, 69(4), 562-567.
  • Yali, W., & Mitiku, T. (2022). Mutation breeding and its importance in modern plant breeding. Journal of Plant Sciences, 10(2), 64-70.
  • Zalewska, M., Tymoszuk, A., & Miler, N. (2011). New chrysanthemum cultivars as a result of in vitro mutagenesis with the application of different explant types. Acta Sci Pol Hortorum Cultus, 10(2), 109-123.
There are 40 citations in total.

Details

Primary Language English
Subjects Horticultural Production (Other)
Journal Section Articles
Authors

Kadriye Yaprak Kantoglu 0000-0002-7247-9116

Burak Kunter 0009-0001-8546-7480

Ümran Şenel 0000-0002-3842-1623

Gulden Haspolat 0000-0002-9016-9816

Project Number A2.H1.P14
Early Pub Date December 15, 2024
Publication Date
Submission Date April 30, 2024
Acceptance Date September 4, 2024
Published in Issue Year 2024 Volume: 34 Issue: 4

Cite

APA Kantoglu, K. Y., Kunter, B., Şenel, Ü., Haspolat, G. (2024). Ray-Floret Based Rapid Propagation and Detection of Somatic Variation in Selected Mutant Chrysanthemum Individuals. Yuzuncu Yıl University Journal of Agricultural Sciences, 34(4), 549-558. https://doi.org/10.29133/yyutbd.1475951
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Yuzuncu Yil University Journal of Agricultural Sciences by Van Yuzuncu Yil University Faculty of Agriculture is licensed under a Creative Commons Attribution 4.0 International License.