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In Vitro Responses and Production of Phytochemicals of Potential Medicinal Value in Nutmeg, Myristica Fragrans Houtt.


Affiliations
1 Department of Genetics, Dr. A.L.Mudaliar Post Graduate Institute of Basic Medical Sciences, University of Madras (Taramani Campus), Chennai-600113, India
 

The in vitro production of phytochemicals by the embryogenic cultures of nutmeg- Myristica fragrans Houtt., a tropical tree of considerable commercial and medicinal value, was investigated. The regeneration potential of the somatic embryos and the morphogenetic responses of foliar explants were also studied. The metabolite profiling of the long term embryogenic cultures established from zygotic embryos in media with activated charcoal, revealed the presence of several monoterpenes and essential oils including α&β-pinene, myristicin, safrole, methyl eugenol and betasitosterol. The essential oil profile varied with the age of the cultures and the 3 week old cultures had a rich variety of monoterpenes. The spent charcoal medium of these embryogenic cultures exhibited strong anti-microbial activity against the pathogens Salmonella typhi and Staphylococcus aureus. This is considered to be the first report of in vitro production of phytochemicals by the embryogenic mass. The results obtained in this study suggest that both the embryogenic cultures and the spent charcoal medium can act as sources of products of pharmacological interest and provide a basis for further biotechnological investigations of this rare, medicinally important species and for conservation of its germplasm by cryopreservation. Germination of somatic embryos derived from zygotic embryos was achieved in media with NAA. Direct formation of somatic embryos was achieved in leaf explants from juvenile plants in MS media with kinetin, 2,4-D and NAA.

Keywords

Embryogenic, Myristicin, Safrole, Antimicrobial, Tissue Culture, Medicinal Plant
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  • Blázquez S, Piqueras A, Serna, MD, Casas JL and Fernández JA (2004) Somatic embryogenesis in saffron: optimisation through temporary immersion and polyamine metabolism. Acta Horticulturae, 650, 269-276.
  • Canhoto JM, Rama SC and Cruz GS (2006) Somatic embryogenesis and plant regeneration in carob (Ceratonia siliqua L.). In Vitro Cell Dev. Biol – Plant. 42, 514-519.
  • Chaturvedi HC, Agnihotri S, Sharma M, Sharma AK, Jain M and Chourasia A (2003) In vitro control of fasciation in proliferating nucellar embryos of Mangifera indica L. var totapari red small for cloning. Indian J. Exp. Biol. 41, 1311-1316.
  • Chirathaworn C, Kongcharoensuntorn W, Dechdoungchan T, Lowanitchapat A, Sa-Nguanmoo P and Yong P (2007) Myristica fragrans Houtt. methanolic extract induces apoptosis in a human leukemia cell line through SIRT1 mRNA downregulation. J. Med. Assoc.Thai. 90, 2422-2428.
  • Distabanjong K and Geneve RL (1977) Multiple shoot formation from normal and malformed somatic embryo explants of Eastern redbud (Cercis canadensis L.). Plant Cell Rep. 16, 334–338.
  • Du A, Zhao B, Miao, J, Yin D, and Zhang S (2006) Safrole oxide induces apoptosis by up-regulating Fas and FasL instead of integrin β4 in A549 human lung cancer cells. Bioorg. Med. Chem. 14, 2438-2445.
  • Ehlers D, Kirchhoff J, Gerard D and Quirin KW (1998) High-performance liquid chromatography analysis of nutmeg and mace oils produced by supercritical CO2 extraction- Comparison with steam distilled oilscomparison of East Indian, West Indian and Papuan oils. Int.J. Food Sci. Tech. 33, 215-223.
  • Franchetti P and Grifantini M (1999) Nucleoside and non-nucleoside inhibitors as antitumor and antiviral agents. Curr. Med. Chem. 6, 599-614.
  • Gómez-Lim MA and Litz RE (2004) Genetic transformation of perennial tropical fruits. In Vitro Cell Dev. Biol.- Plant. 40, 442-449.
  • Hughes D (2003) Microbial genetics. Exploiting genomics, genetics and chemistry to combat antibiotic resistance. Nat. Rev. Genet. 4, 432-441.
  • Iyer RI (2007) In vitro propagation of nutmeg, Myristica fragrans Houtt. In: Protocols For Micropropagation Of Woody Trees And Fruits (eds. Haggman H & Jain SM ), pp: 335-344, Springer, The Netherlands.
  • Iyer RI, Jayaraman G, Gopinath PM and Lakshmi Sita G (2000) Direct somatic embryogenesis in zygotic embryos of nutmeg (Myristica fragrans Houtt.) Trop. Agric.(Trinidad). 77, 98-105.
  • Jain SM (2006) An updated overview of advances in somatic embryogenesis in forest trees. In: Plantation Technology in Tropical Forest Science, Part II B (eds. Suzuki K, Ishii K, Sakurai S and Sasaki S), pp:113-122. Springer, Tokyo.
  • Jorgensen JH, Turnidge JD and Washington JA (1999) Antibacterial susceptibility tests: dilution and disk diffusion methods. In: Manual of Clinical Microbiology, 7th ed. (eds. Murray PR, Pfaller MA,Tenover FC, Baron EJ & Yolken RH), pp: 1526-1543. ASM Press, Washington, DC.
  • Ju YH, Clausen LM, Allred KF, Almada AL and Helferich WG (2004) Beta-sitosterol , beta-sitosterol glucoside, and a mixture of beta-sitosterol and betasitosterol glucoside modulate the growth of estrogenresponsive breast cancer cells in vitro and in ovariectomized athymic mice. J. Nutr. 134, 1145-1151.
  • Komaraiah P, Ramakrishna SV, Reddanna P and Kavi Kishor PB (2003) Enhanced production of plumbagin in immobilized cells of Plumbago rosea by elicitation and in situ adsorption. J. Biotechnol. 101, 181-187. 17. Koulman A, Bos R, Medarde M, Pras N and Quax WJ (2001) A fast and simple GC MS method for lignan profiling in Anthriscus sylvestris and biosynthetically related plant species. Planta Medica. 67, 858-862.
  • Lahlou S, Figueiredo AF, Magalhães PJC, Leal- Cardoso JH and Gloria PD (2004) Cardiovascular effects of methyleugenol, a natural constituent of many plant essential oils in normotensive rats. Life Sci. 74, 2401-2412.
  • Latha PG, Sindhu PG, Suja SR, Geetha BS, Pushpangadan P and Rajasekharan S (2005) Pharmacology and chemistry of Myristica fragrans Houtt. -a review. J. Spices & Aromatic Crops. 14, 94-101.
  • Lee BK, Kim JH, Jung JW, Choi JW, Han ES , Lee SH, Ko, KH and Ryu JH (2005) Myristicin-induced neurotoxicity in human neuroblastoma SK-N-SH cells. Toxicol. Lett. 157, 49-56.
  • Merkle SA and Nairn CJ (2005) Hardwood tree biotechnology. In Vitro Cell Dev. Biol.- Plant. 41, 602–619.
  • Morita T, Jinno K, Kawagishi H, Arimoto Y, Suganuma, H, Inakuma T and Sugiyama K (2003) Hepatoprotective effect of myristicin from nutmeg (Myristica fragrans) on lipopolysaccharide/dgalactosamine- induced liver injury. J. Agric. Food Chem. 51, 1560-1565.
  • Murashige T and Skoog F (1962) A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiol. Plant. 15, 473-497.
  • Panis B and Lambardi M (2006) Status of cryopreservation technologies in plants (crops and forest trees). In: The Role Of Biotechnology In Exploring And Protecting Agricultural Genetic Resources (eds. Ruane J and Sonnino A), pp: 61-78. FAO, Rome.
  • Pisano M, Pagnan G, Loi M, Mura, ME, Tilocca MG, Palmieri G, Fabbri D, Dettori, MA , Delogu G, Ponzoni M and Rozzo C (2007) Antiproliferative and proapoptotic activity of eugenol-related biphenyls on malignant melanoma cells. Molecular Cancer [online], 18 January 2007, vol. 6, article no.8 doi:10.1186/1476- 4598-6-8 (extracted on 18 January 2007). Domain: http://www.molecular-cancer.com/content/6/1/8.
  • Pytte M and Rygnestad T (1998) Nutmeg- more than a spice. Tidsskr Nor Laegeforen. 118, 4346-4347.
  • Rani P and Khullar N (2004) Antimicrobial evaluation of some medicinal plants for their anti-enteric potential against multi-drug resistant Salmonella typhi. Phytother. Res. 18, 670-673.
  • Sangwan NS, Farooqi AHA, Shabih F and Sangwan RS (2001) Regulation of essential oil production in plants. Plant Growth Regulation. 34, 3-21.
  • Singh G, Marimuthu P, De Heluani CS and Catalan C (2005) Antimicrobial and antioxidant potentials of essential oil and acetone extract of Myristica fragrans outt (aril part). J. Food Sci. M141 – M148.
  • Solanto MV (1998) Neuropsychopharmacological mechanisms of stimulant drug action in attention-deficit hyperactivity disorder: a review and integration. Behavioural Brain Res., 94, 127-152.
  • Trigiano RN, Buckley LG and Merkle SA (1999) Somatic embryogenesis in woody legumes. In: Somatic embryogenesis in woody plants: vol. 4 (Forestry sciences) (eds. Jain SM, Gupta PK and Newton RJ), pp: 198–208. Kluwer Academic Publishers, Dordrecht, The Netherlands.
  • Yang S, Kyun NM, Jang JP, Kyung AK, Kim BY, Sung NJ, Oh WK and Ahn JS (2006) Inhibition of protein tyrosine phosphatase 1B by lignans from Myristica fragrans. Phytother. Res. 20, 680-682.

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  • In Vitro Responses and Production of Phytochemicals of Potential Medicinal Value in Nutmeg, Myristica Fragrans Houtt.

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Authors

R. Indira Iyer
Department of Genetics, Dr. A.L.Mudaliar Post Graduate Institute of Basic Medical Sciences, University of Madras (Taramani Campus), Chennai-600113, India
G. Jayaraman
Department of Genetics, Dr. A.L.Mudaliar Post Graduate Institute of Basic Medical Sciences, University of Madras (Taramani Campus), Chennai-600113, India
A. Ramesh
Department of Genetics, Dr. A.L.Mudaliar Post Graduate Institute of Basic Medical Sciences, University of Madras (Taramani Campus), Chennai-600113, India

Abstract


The in vitro production of phytochemicals by the embryogenic cultures of nutmeg- Myristica fragrans Houtt., a tropical tree of considerable commercial and medicinal value, was investigated. The regeneration potential of the somatic embryos and the morphogenetic responses of foliar explants were also studied. The metabolite profiling of the long term embryogenic cultures established from zygotic embryos in media with activated charcoal, revealed the presence of several monoterpenes and essential oils including α&β-pinene, myristicin, safrole, methyl eugenol and betasitosterol. The essential oil profile varied with the age of the cultures and the 3 week old cultures had a rich variety of monoterpenes. The spent charcoal medium of these embryogenic cultures exhibited strong anti-microbial activity against the pathogens Salmonella typhi and Staphylococcus aureus. This is considered to be the first report of in vitro production of phytochemicals by the embryogenic mass. The results obtained in this study suggest that both the embryogenic cultures and the spent charcoal medium can act as sources of products of pharmacological interest and provide a basis for further biotechnological investigations of this rare, medicinally important species and for conservation of its germplasm by cryopreservation. Germination of somatic embryos derived from zygotic embryos was achieved in media with NAA. Direct formation of somatic embryos was achieved in leaf explants from juvenile plants in MS media with kinetin, 2,4-D and NAA.

Keywords


Embryogenic, Myristicin, Safrole, Antimicrobial, Tissue Culture, Medicinal Plant

References





DOI: https://doi.org/10.17485/ijst%2F2009%2Fv2i4%2F29434