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Repetitive somatic embryogenesis in peanut cotyledon cultures by continual exposure to 2,4-d

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Abstract

Somatic embryos from immature cotyledons in peanut (Arachis hypogaea) were initiated on media supplemented with 2,4-dichlorophenoxyacetic acid (2,4-d). Over 90% primary embryogenesis and 41–46% repetitive embryogenesis were obtained 12 weeks after initiation by maintaining embryogenic cultures on medium containing 20 mg 1-1 2,4-d. Maintenance of cultures on medium with 30 or 40 mg I-1 2,4-d resulted in lower primary and secondary embryogenesis, and proliferation of nonembryogenic callus. Transfer of embryogenic cultures to a secondary medium with 10 or 20 mg I-1 2,4-d significantly enhanced secondary embryogenesis compared to basal medium without the growth regulator. The use of Murashige & Skoog versus Finer's media had no significant effect on embryogenesis (85–95%), repetitive embryogenesis (11–37%) or mean embryo number. Secondary embryogenesis was also maintained for over one year by repeated subculture of isolated somatic embryos on medium with 20 mg I-1 2,4-d.

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Abbreviations

B5:

Gamborg et al. medium (Gamborg et al. 1968)

2,4-d :

2,4-dichlorophenoxyacetic acid

FN:

Finer & Nagasawa medium (Finer & Nagasawa 1968)

MS:

Murashige & Skoog medium (Murashige & Skoog 1962)

References

  • Arcioni S, Damiani F, Pezzotti M & E Lupotto (1990) Alfalfa, Lucerne (Medicago spp.). In: Bajaj Y (Ed) Biotechnology in Agriculture and Forestry, Vol 10 (pp 197–241). Springer-Verlag, New York

    Google Scholar 

  • Baker CM & Wetzstein HY (1992) Somatic embryogenesis and plant regeneration from leaflets of peanut Arachis hypogaea. Plant Cell Rep. 11: 71–75

    Google Scholar 

  • Baker CM & Wetzstein HY (1994) Influence of auxin type and concentration on peanut somatic embryogenesis. Plant Cell Tiss. Org. Cult. 36: 361–368

    Google Scholar 

  • Durham R & Parrott W (1992) Repetitive somatic embryogenesis from peanut cultures in liquid medium. Plant Cell Rep. 11: 122–125

    Google Scholar 

  • Finer J & Nagasawa A (1988) Development of an embryogenic suspension culture of soybean (Glycine max Merrill.). Plant Cell Tiss. Org. Cult. 15: 125–136

    Google Scholar 

  • Gamborg O, Miller R & Ojima K (1968) Nutrient requirements of suspension cultures of soybean root cells. Exp. Cell Res. 50: 150–158

    Google Scholar 

  • Ghosh B & Sen S (1991) Plant regeneration through somatic embryogenesis from spear callus culture of Asparagus cooperi Baker. Plant Cell Rep. 9: 667–670

    Google Scholar 

  • Gleddie S, Keller W & Setterfield G (1983) Somatic embryogenesis and plant regeneration from leaf explants and cell suspensions of Solanum melongena (eggplant). Can. J. Bot. 61: 656–666

    Google Scholar 

  • Hazra S, Sathaye S & Mascarenhas A (1989) Direct somatic embryogenesis in peanut (Arachis hypogaea). Bio/Technol. 7: 949–951

    Google Scholar 

  • Karunaratne S & Periyapperuma K (1989) Culture of immature embryos of coconut, Cocos nucifera L: Callus proliferation and somatic embryogenesis. Plant Sci. 62: 247–253

    Google Scholar 

  • Maheswaran G & Williams E (1986) Direct secondary somatic embryogenesis from immature sexual embryos of Trifolium repens cultured in vitro. Ann. Bot. 57: 109–117

    Google Scholar 

  • Mathews H, Litz R, Wilde H, Merkle S & Wetzstein H (1992) Stable gene expression of β-glucuronidase and NPT II genes in mango somatic embryos. In Vitro Cell. Dev. Biol. 28P: 172–178

    Google Scholar 

  • Murashige T & Skoog F (1962) A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiol. Plant. 15: 473–497

    Google Scholar 

  • Plata E & Viéitez A (1990) In vitro regeneration of Camellia reticulata by somatic embryogenesis. J. Hort. Sci. 65: 707–714

    Google Scholar 

  • Raemakers C, Amati M, Staritsky G, Jacobsen E & Visser R (1993) Cyclic somatic embryogenesis and plant regeneration in cassava. Ann. Bot. 71: 289–294

    Google Scholar 

  • Raj Bhansali R, Driver J & Durzan D (1990) Rapid multiplication of adventitious somatic embryos in peach and nectarine by secondary embryogenesis. Plant Cell Rep. 9: 280–284

    Google Scholar 

  • Sellars R, Southward G & Phillips G (1990) Adventitious somatic embryogenesis from cultured immature zygotic embryos of peanut and soybean. Crop Sci. 30: 408–414

    Google Scholar 

  • Stamp J & Henshaw G (1987) Secondary somatic embryogenesis and plant regeneration in cassava. Plant Cell Tiss. Org. Cult. 10: 227–233

    Google Scholar 

  • Stuart D & Strickland S (1984) Somatic embryogenesis from cell cultures of Medicago sativa L. II. The interaction of amino acids with ammonium. Plant Sci. Lett. 34: 175–181

    Google Scholar 

  • Tulecke W & McGranahan G (1985) Somatic embryogenesis and plant regeneration from cotyledons of walnut, Juglans regia L. Plant Sci. 40: 57–63

    Google Scholar 

  • Wetzstein H & Baker C (1993) The relationship between somatic embryo morphology and conversion in peanut (Arachis hypogaea L.). Plant Sci. 92: 81–89

    Google Scholar 

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Baker, C.M., Wetzstein, H.Y. Repetitive somatic embryogenesis in peanut cotyledon cultures by continual exposure to 2,4-d . Plant Cell Tiss Organ Cult 40, 249–254 (1995). https://doi.org/10.1007/BF00048131

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  • DOI: https://doi.org/10.1007/BF00048131

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