Usage of Phytohormones for Aseptic Regeneration of Two Medicinal Important Plant Species, Adhatoda Vasica and Aloe Vera
DOI:
https://doi.org/10.32628/IJSRST241161139Keywords:
Phytohormones, MS Medium, Explant, Medicinal plant, Aseptic regenerationAbstract
Two plants species Aloe vera and Adhatoda vasica belongs to family Liliaceae (Asphodelaceae) and Acanthaceae respectively. Present study was carried out to establishment of systematics protocol for ascetic, in-vitro regeneration of these plants using different concentration of phytohormones specifically cytokinin and auxin. The experimental result indicates percentages of regeneration was maximum in MS (Murashige and Skoog) medium with combination of 3mg/l BAP and 0.75mg/l NAA in Aloe barbadensis for direct shoot induction and 4mg/l BAP with 1mg/l NAA for indirect shoot regeneration, while in Adhatoda vasica highest percentage of shoot induction observed in 1 mg/l BAP and 0.2mg/l NAA. MS medium with combination of 1mg/l IBA was found to be best for the root induction in both the plant species.
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Arumugam, N. and Bhojwani, S.S. (1990). Somatic embryogenesis in tissue culture of Podophyllum hexandrum. Can. J. Bot. 68: 487-491.
AK, B., (2018). The importance of in vitro micropropagation of fruit crops 1st international GAP agriculture and livestock congress proceedings book.: 716-723.
Almemary, A., & Alsalim, A. (2020). Callus induction and differentiated (Review article). The future of agriculture.
Altpeter F., Springer NM, Bartley LE, Blechl AE, Brutnell TP, Citovsky V, Conrad L, Gelvin SB, Jackson D, Kausch AP, Lemause PG, Medford JI, Orozco- Cardenas M, Tricoli D., Van Eck o Voytas DF., Walbot V., Wang K., Zhang ZJ., Stewart CN (2016). Advancing crop transformation in the era of gemone editing. Plant Cell. 28: 1510-1520.
Chen Z., Debernardi JM, Dub covsky J (2022). Resent advances in crop transformation technologies. Nat. Plants 2022: 8 (2): 1343-1351.
Debnarh M., Malik CP., Baisen PS (2006). Micropropagation: A tool for the production of high-quality plant-based medicines. Curr Pharm Biotechnol. 7: 33-49.
Gamborg, O.L. (2002) Plant Tissue Culture. Biotechnology. Milestone Vitr. Cell Div. Biol. Plant 38, 84-92.
Heberlandt G. (1902). Culture versuche mit isolierten pflanzellen. Sit-Zungsber Akad Wiss Wien math nat111: 69-91.
Karuppusamy S. (2009). A review on trends in production of secondary metabolites from higher plants by in vitro, organ and cell culture. J. Med Plants Res 3: 1222-1239.
Kaur, G., Rathore, T.S., Rao R., and Shekhawat, N.S. (1992). In vitro micropropagation of Caralluma edulis (Edgew Benth and Hook. F.- A rare edible plant species of Indian Desert. Indian J. Plant Genetic Resources, 5: 51-56.
Kumar, P.P. and Loh, C.S. (2012). Plant tissue culture for biotechnology. In Plant Biotechnology and Agriculture; Elsevier: Am Sterdam, the Netherlands, pp- 131-138.
Maren NA, Duan H, Da K. (2022). Genotype independent plant transformation. Horticulture Research.: 9.
Rathore, T.S., Sing, R.P., and Shekhawat, N.S. (1991). Clonal propagation of desert teak Tecomella undulate through tissue culture. Plant Cell Tissue and Organ Culture, 9: 81-88.
Smetanska I (2008). Production of secondary metabolites using plants cell cultures. Adv. Bio chem. Eng. Biotechnol 111: 187-228.
Thomson P. Jones J., Brown M., Leslie SJ. (2014). Why people seek complementary and alternative medicine before conventional medical treatment: A population-based study. Compliment their Clin Pract. 2014; 20 (4): 39-46.
Verpoorte R., Van der Heijden R., Memelink J. (2000). Engineering the plant cell factory for secondary metabolite production. Transgen Res 9: 323-343.
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