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Variation in potato microplant morphology in vitro and DNA methylation

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Abstract

Heterotrophic and autotrophic culture in agar and in polyurethane foam, the latter used as an alternative tissue support to agar, resulted in potato microplants with different in vitro morphologies. The microplants were visually characterised in terms of their relative developmental maturity, by comparing the respective leaf shapes in vitro with ontogenetic differences in leaf shape in glasshouse-grown potato plants. Cytosine methylation in the DNA of microplants of the different morphologies was determined using a method based on the AFLP technique but employing methylation-sensitive restriction enzymes (MSAP analysis) to test the hypothesis that DNA methylation could be used to characterise differences in microplant development in vitro. In three of the four treatments there was a good correlation between the visual assessment of relative morphological maturity and DNA base methylation levels. In these microplants there was increased DNA methylation in the leaves with mature leaf morphology represented by a decreased number of restriction fragments. The fourth in vitro morphology had the most juvenile leaf shape but did not have the predicted level of DNA methylation, having a relatively low number of restriction fragments. Subtraction analysis was used to discriminate the fragments that were unique to the juvenile and mature in vivo leaf morphologies. Comparison of the fragment patterns from the microplants with the latter reference profiles, confirmed the relationship with the total DNA methylation as detected by MSAP analysis, that is, the number of common fragments with the juvenile or mature in vivo leaf profiles, respectively. However, none of the fragment profiles, while sharing some common bands at random, was identical to any other; or to that of either the juvenile or mature in vivo leaf. The anomalous relationship of the microplants with most juvenile leaf shape and highest DNA methylation was confirmed. The measurement of DNA methylation in in vitro plants is discussed in the context of the development of a method to assess the quality of microplants produced by different in vitro protocols.

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References

  • Bonga JM (1982) Vegetative propagation in relation to juvenility, maturity and rejuvenation. In: Bonga JM & Durzan DJ (eds) Tissue Culture in Forestry. (pp 387–412) Martinus Nijhoff/Dr W Junk Publishers, Dordrecht

    Google Scholar 

  • Cassells AC (2000) Aseptic microhydroponics: a strategy to advance microplant development and improve microplant physiology. Acta Hortic. 530: 187–194

    Google Scholar 

  • Cassells AC & Curry RF (2000) Oxidative stress and physiological, epigenetic and genetic variability in plant tissue culture: Implications for micropropagators and genetic engineers. Plant Cell Tiss. Org. Cult. 64: 145–157

    Google Scholar 

  • Cassells AC & Walsh C (1998) Characteristics of Dianthus microplants grown in agar and polyurethane foam using airtight and water-permeable vessels lids. In: Reuther G (ed) Physiology and Control of Plant Production in Vitro (pp 122–126) CEC, Luxembourg

    Google Scholar 

  • Cassells AC, Kowalski B, Fitzgerald DM & Murphy GA (1999) The use of image analysis to study developmental variation in micropropagated potato (Solanum tuberosum L.) plants. Potato Res. 42: 541–548

    Google Scholar 

  • Clark SJ, Harrison CL & Frommer M (1995) CpNpG methylation in mammalian cells. Nat. Genet. 10: 20–27

    Google Scholar 

  • Cooney CA (1993) Are somatic cells inherently deficient in methylation metabolism? A proposed mechanism for DNA methylation loss, senescence and ageing. Growth Dev. Ageing 57: 261–273

    Google Scholar 

  • Denton IR, Westcott RJ & Ford-Lloyd BV (1977) Significant morphological differences from control could be due to environmental factors. Potato Res. 20: 131–136

    Google Scholar 

  • Finnegan EJ, Genger RK, Peacock WJ & Dennis ES (1998) DNA methylation in plants. Annu. Rev. Plant Physiol. Plant Mol. Biol. 49: 223–247

    Google Scholar 

  • Finnegan EJ, Peacock JW & Dennis ES (2000) DNA methylation, a key regulator of plant development and other processes. Curr. Opin. Genet. Dev. 10: 217–223

    Google Scholar 

  • George EF (1993) Plant Propagation by Tissue Culture. Exegetics, Basingstoke, UK

    Google Scholar 

  • Gruenbaum Y, Naveh-Many T, Cedar H & Razin A (1981) Sequence specificity of methylation in higher plant DNA. Nature 292: 860–862

    Google Scholar 

  • Henry RJ (1998) Molecular and biochemical characterisation of somaclonal variation. In: Mohan Jain S, Brar DS & Ahloowalia BS (eds) Somaclonal Variation and Induced Mutations in Crop Improvement (pp 485–500) Kluwer Academic Publishers, Dordrecht

    Google Scholar 

  • Jacobsen SE & Meyerowitz EM (1997) Hypermethylated SUPERMAN epigenetic alleles in Arabidopsis. Science 272: 1100–1103

    Google Scholar 

  • Jain MS, Brar DS & Ahloowalia BS (eds) (1998) Somaclonal Variation and Induced Mutations in Crop Improvement. Kluwer Academic Publishers, Dordrecht

    Google Scholar 

  • Joyce S, Vaughn P, McCarthy TV & Cassells AC (1999) PCR analysis of bisulfite-modified DNA to investigate developmental variation in micropropagated potatoes (Solanum tuberosum L.). Potato Res. 42: 549–545

    Google Scholar 

  • Kaeppler SM & Phillips RL (1993) DNA methylation and tissue culture-induced variation. In Vitro Cell. Dev. Biol. 29P: 125–130.

    Google Scholar 

  • Kapri T, Gao X & Razin A (1993) Mechanistic aspects of genome wide demethylation in the preimplantation mouse embryo. Proc. Natl. Acad. Sci. USA 90: 10558–10562

    Google Scholar 

  • Larkin PJ & Scowcroft WR (1981) Somaclonal variation - a novel source of variability from cell cultures for plant improvement. Theor. Appl. Genet. 60: 197–214

    Google Scholar 

  • McClelland M, Nelson M & Raschke E (1994) Effect of site-specific modification on restriction endonucleases and DNA modification methyltransferases. Nucleic Acid. Res. 22: 3640–3659

    Google Scholar 

  • Matzke MA, Mette MF, Aufsatz W, Jakowitsch J & Matzke AJM (1999) Host defenses to parasitic sequences and the evolution of epigenetic control mechanisms. Genetica 107: 271–287

    Google Scholar 

  • Messegeur R, Martin WG, Steffens JC & Tanksley SD (1991) Characterisation of the level, target sides and inheritance of cytosine methylation in tomato nuclear DNA. Plant Mol. Biol. 16: 753–770

    Google Scholar 

  • Muller E, Brown PTH, Hartke S & Lorz H (1990) DNA variation in tissue culture-derived rice plants. Theor. Appl. Genet. 80: 673–679

    Google Scholar 

  • Nozeran R, Bancilhon-Rossignol L & Grenans S (1997) Nouvelles possibilities d'obtention et de multiplication rapide de pommes de terre (Solanum tuberosum L.). Comt. Rend. Acad. Sci. Paris 285D: 37–40

    Google Scholar 

  • Preece JE & Sutter EG (1991) Acclimatisation of micropropagated plants to the greenhouse. In: Debergh PC & Zimmerman RH (eds) Micropropagation: Technology and Application (pp 71–94) Kluwer, Dordrecht

    Google Scholar 

  • Richards EJ (1997) DNA methylation and plant development. Trends Genet. 13: 319–323

    Google Scholar 

  • Stern WT (1983) Botanical Latin, 3rd ed. David & Charles, London

    Google Scholar 

  • Swartz HJ (1991) Post culture behaviour: genetic and epigenetic effects and related problems. In: Debergh PC & Zimmerman RH (eds) Micropropagation: Technology and Application (pp 95–122) Kluwer Academic Publishers, Dordrecht

    Google Scholar 

  • Vos P, Hogers R, Bleeker M, Reijans M, van de Lee T, Hornes M, Fitjers A, Pot J, Peleman J, Kuiper M & Zabeau M (1995) AFLP: a new technique for DNA fingerprinting. Nucleic Acids Res. 23: 4407–4414

    Google Scholar 

  • Xiong LZ, Xu CG & Saghai Maroof Qifa Zhang MA (1999) Patterns of cytosine methylation in an elite rice hybrid and its parental lines, detected by a methylation-sensitive amplification polymorphism technique. Mol. Gen. Genet. 261: 439–446

    Google Scholar 

  • Ziv M (1991) Vitrification: morphological and physiological disorders of in vitro plants. In: Debergh PC & Zimmerman RH (eds) Micropropagation: Technology and Application (pp 45–70) Kluwer Academic Publishers, Dordrecht

    Google Scholar 

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Correspondence to Alan C. Cassells.

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Joyce, S.M., Cassells, A.C. Variation in potato microplant morphology in vitro and DNA methylation. Plant Cell, Tissue and Organ Culture 70, 125–137 (2002). https://doi.org/10.1023/A:1016312303320

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