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Effect of cryopreservation on essential oil of Satureja spicigera | ||
Journal of Epigenetics | ||
دوره 3، شماره 2، آذر 2022، صفحه 9-14 اصل مقاله (325.61 K) | ||
نوع مقاله: Original Article | ||
شناسه دیجیتال (DOI): 10.22111/jep.2022.42027.1042 | ||
نویسنده | ||
Leila Ghaffarzadeh Namazi* | ||
Assistant Professor of Plant Science and Medicinal Plants Branch, University of Mohaghegh Ardabili, Ardabil, Iran | ||
چکیده | ||
Conservation of genetic resources of S. spicigera is important. Because the life of this valuable species has been threatened by biotic and abiotic stresses. Seed storage techniques at very low temperature (-196 °C) using liquid nitrogen is one way of maintaining germplasm with much less cost and without loss of viability on storage and it is useful when it does not lead to changes in the chemical composition of essential oil in the desired plant. In order to investigate the phytochemical stability and compare the type and amount of identified compositions, the treated seeds were transferred to the liquid nitrogen at –196 °C for 1 week as compared to the control treatment. The aerial parts of S. spicigera were collected at flowering stage and dried in the laboratory. The essential oil was isolated by hydrodistillation and analyzed by a combination of capillary GC and GC-MS. Eleven compounds were recognized in the essential oil of mentioned plant in the cryopreservation. The main constituents in the essential oil included thymol (41.1%), γ-terpinene (21.1%), p-cymene (17.2%) and carvacrol (11.9%). Results indicated that regarding the number, type and percentage of compounds existing in the essential oils, there was no difference between the control and cryopreservation treatment so by using the cryopreservation technique, the seeds of this valuable endangered species can be preserved for a long period | ||
کلیدواژهها | ||
Cryopreservation؛ Essential oil؛ germplasm؛ phytochemical stability؛ Satureja spicigera | ||
مراجع | ||
Al-Ababneh, S., Karam, N., & Shibli, R. (2002). Cryopreservation of sour orange (Citrus aurantium L.) shoot tips. In Vitro Cell and Dev Biol Plant, 38: 602-607. Ahuja, S., Mandal, B.B., Dixit, S., & Srivastava, P.S. (2002). Molecular, phenotypic and biosynthetic stability of plants recovered from cryopreserved shoot-tips of Dioscorea floribunda. Plant Sci, 163: 971-977. Al-Baba, H., Shibli, R. A., Akash, M., Al-Qudah, T.S., Tahtamouni, R.W., & Al- Ruwaiei, H. (2015). Cryopreservation and Genetic Stability Assessment of Threatened Medicinal Plant (Ziziphora tenuior L.) Grown Wild in Jordan. Jordan J. Biol. Sci, 8 (4): 247-256. Castillo, F.V., Bassil, V., Wad, S., & Reed, M. (2010). Genetic stability of cryopreserved shoot tips of Rubus germplasm. InVitro Cell and Dev Biol--Plant, 46: 246-256. Choudhary, R., Chaudhury, R., Malik, S.K., Susheel, K., & Digvender, P. (2013). Genetic stability of mulberry germplasm after cryopreservation by two- step freezing technique African Journal of biotechnique. Afr. J. Biotechnol, 12( 4): 5983-5993. Dixit, S., Mandal, B., Ahuja, B., & Srivastava, P.S. (2003). Genetic stability assessment of plants regenerated from cryopreserved embryogenic tissues of Dioscorea bulbifera L. using RAPD, biochemical and morphological analysis. National Bureau plant genetic resources. Cryoletters, 24(2): 77-84. Engelmann, F. (1990). Use of cryopreservation for plant germplasm long-term conservation. Case history: Oil Palm somatic embryos. Int J Refrig, 13: 26-30. Harding, K. (2004). Genetic integrity of cryopreserved plant cells. A review. Cryoletters, 25: 3-22. Harding, K., & Benson, E.E. (2000). Analysis of nuclear and chloroplast DNA in plants regenerated from cryopreservation shoot- tips of potato. Cryoletters, 21: 279- 289. Ibaneza, M.A., Alvarez-Maria, A., Rodriguez-Sanzb, H., Kremerb, C., Gonzalez-Benitob, M. E., & Martinb, C. (2019). Genetic and epigenetic stability of recovered mint apices after several steps of a cryopreservation protocol by encapsulation-dehydration. A new approach for epigenetic analysis. Plant Physiol, 143: 299–307. ISTA, (1996). [International Seed Testing Association]. International Rules for Seed Testing. Seed Sci. Technol, 21(Suppl.): 1B288. Kaviani B. (2011). Conservation of plant genetic resources by cryopreservation. AJCS, 5: 778-800. Li, Z.A., Du, Y.Q., & Wang, Z.C., 2013. Effect of cryopreservation on the efficiency of exogenous gene, genetic transformation and expression level of Arabidopsis thaliana. Electron. J. Biotechnol, 16(6). Marco-Medina, A., & Casas, J. L. (2013). RAPD and phytochemical analysis of Thymus moroderi plantlets after cryopreservation. CryoLetters 34 (2): 119-127. Matsumoto, T., Akihiro, T., Maki, S., Mochida, K., Kitagawa, M., Tanaka, D., Yamamoto, S., & Niino, T. (2013). Genetic stability assessment of Wsabi plants regenerated from longterm cryopreserved shoot tips using morphological, biochemical and molecular analysis. Cryoletters, 34(2):128-36. Micula, A., Tomiczak, K., & Rybczynski, J.J. (2011). Cryopreservation enhances embryogenic capacity of Gentianacruciata (L.) suspension culture and maintains (epi) geneticuniformity of regenerants. Plant Cell Rep, 30: 565-574. Panis, B., & Lambardi, M. (2005). Status of cryopreservation technology in plant( Crops and forest trees). The rol of biotechnol, 43- 50. Peredo, E.L., Arroyo- Garcia, R., Reed, B.M., & Revilla, M.A. (2008). Genetic and epigenetic stability of cryopreserved and cold- stored hops (Humulus lupulus L). Cryobiology, 224- 234. Rosa, N., Castillo, F., Bassil, N.V., Wada, S., & Reed, B.M. (2010). Genetic stability of cryopreserved shoot tips of Rubus germplasm. In vitro cell, 46: 246- 256. Scocchi, A., Falici, M., Medina, R., Olmos, S., & Mroginski, L. (2004). Plant recovery of cryopreserved apical meristems- tips of Melia azadarach L. using encapsulation/ dehydration and assessment of their genetic stability. Euphytica, 135: 29- 38. Wang, Z., Lie, J.Sh., Zhang, Ch.W., & He, Y. X. (2013). Analysis genetic stability in Prunus humilis Bung plants after cryopreservation twice. AFL, 2(4): 67- 75. Yi, J.Y., Lee, G., Chung, J.W., Lee, Y.Y., Kwak, J.G., & Lee, S.Y. (2015). Morphological and Genetic Stability of Dormant Apple Winter Buds After Cryopreservation. Korean J. Plant Res. 28(6) :697-703. Zhai, Z., Wu, Y., Engelmann, F., Chen, R., & Zhao, Y. (2003). Genetic stability assessments of plantlets regenerated from cryopreserved in vitro cultures grape and kiwi shoot tips using RAPD. Cryoletters, 24(5): 315- 322. | ||
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