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Sucrose and raffinose contents and acquisition of desiccation tolerance in immature maize embryos

Published online by Cambridge University Press:  19 September 2008

A. Bochicchio*
Affiliation:
Dipartimento di Agronomia e Produzioni Erbacee, P. le Cascine 18, 50144 Firenze, Italy
E. Rizzi
Affiliation:
Istituto Sperimentale per la Cerealicoltura Sez. Maiscoltura, Via di Stezzano 24, 24100 Bergamo, Italy
C. Balconi
Affiliation:
Istituto Sperimentale per la Cerealicoltura Sez. Maiscoltura, Via di Stezzano 24, 24100 Bergamo, Italy
P. Vernieri
Affiliation:
Dipartimento di Biologia delle Piante Agrarie, Sezione di Orticoltura e Floricoltura, Viale delle Piagge 23, 56124 Pisa, Italy
C. Vazzana
Affiliation:
Dipartimento di Agronomia e Produzioni Erbacee, P. le Cascine 18, 50144 Firenze, Italy
*
* Correspondence

Abstract

We report preliminary experiments to test the hypothesis that two sugars are involved in the acquisition of desiccation tolerance in immature maize embryos. Sucrose and raffinose were quantified during embryo development, at 16–27 days after pollination (DAP) and during slow dehydration. Embryos were exposed to slow drying either upon excision (18 and 16 DAP) or after an incubation treatment resulting in a decrease in sucrose (18 DAP). The sugars were separated by HPLC with a refractive-index detector; composition was determined by comparing peak areas of interest with those of individual sugar standards. Although further evidence is needed, our results do not appear to support the hypothesis.

Type
Short Communication
Copyright
Copyright © Cambridge University Press 1994

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References

Bernal-Lugo, I. and Leopold, A.C. (1992) Changes in soluble carbohydrates during seed storage. Plant Physiology 98, 12071210.CrossRefGoogle ScholarPubMed
Bernal-Lugo, I., Diaz de Leon, F., Castillo, A. and Leopold, A.C. (1993) Embryo sugar composition and seed storage performance. pp 789792 in Come, D. and Corbineau, F. (Eds) Fourth International Workshop on Seeds. Basic and applied aspects of seed biology. Angers, France. Paris, ASFIS.Google Scholar
Blackman, S.A., Obendorf, R.L. and Leopold, A.C. (1992) Maturation proteins and sugars in desiccation tolerance of developing soybean seeds. Plant Physiology 100, 225230.CrossRefGoogle ScholarPubMed
Bochicchio, A., Vazzana, C., Raschi, A., Bartels, D. and Salamini, F. (1988) Effect of desiccation on isolated embryos of maize. Onset of desiccation tolerance during development. Agronomie 8, 2936.CrossRefGoogle Scholar
Bochicchio, A., Vernieri, P., Puliga, S., Velasco, R. and Vazzana, C. (1993) Desiccation tolerance in immature embryos of maize. Possible implication of ABA. pp 115120 in Côme, D. and Corbineau, F. (Eds) Fourth International Workshop on Seeds. Basic and applied aspects of seed biology. Angers, France. Paris, ASFIS.Google Scholar
Bochicchio, A., Vernieri, P., Puliga, S., Balducci, F. and Vazzana, C. (in press) Acquisition of desiccation tolerance by isolated maize embryos exposed to different conditions: the questionable role of endogenous abscisic acid. Physiologia Plantarum.Google Scholar
Bruni, F. (1993) Cytoplasmic glass formation in plant seeds. pp 747754 in Côme, D. and Corbineau, F. (Eds) Fourth International Workshop on Seeds. Basic and applied aspects of seed biology. Angers, France. Paris, ASFIS.Google Scholar
Bruni, F. and Leopold, A.C. (1992) Cytoplasmic glass formation in maize embryos. Seed Science Research 2, 251253.CrossRefGoogle Scholar
Cafrey, M., Fonseca, V. and Leopold, A.C. (1988) Lipid-sugar interaction. Plant Physiology 86, 754758.CrossRefGoogle Scholar
Chen, Y. and Burris, J.S. (1990) Role of carbohydrates in desiccation tolerance and membrane behavior in maturing maize seed. Crop Science 30, 971975.CrossRefGoogle Scholar
Crowe, J.H., Crowe, L.M. and Chapman, D. (1984) Preservation of membranes in anhydrobiotic organisms: the role of trehalose. Science 223, 701703.CrossRefGoogle ScholarPubMed
Hoekstra, F.A., Crowe, L.M. and Crowe, J.H. (1989) Differential desiccation sensitivity of corn and Pennisetum pollen linked to their sucrose content. Plant, Cell and Environment 12, 8391.CrossRefGoogle Scholar
Koster, K. (1991) Glass formation and desiccation tolerance in seeds. Plant Physiology 96, 302304.CrossRefGoogle ScholarPubMed
Koster, K. and Leopold, A.C. (1988) Sugars and desiccation tolerance in seeds. Plant Physiology 88, 829832.CrossRefGoogle ScholarPubMed
Leopold, A.C. and Vertucci, C.V. (1986) Physical attributes of desiccated seeds. pp 2234 in Leopold, A.C. (Ed.) Membranes, metabolism, and dry organisms. Ithaca NY, Comstock Press.Google Scholar
Leopold, A.C., Bruni, F. and Williams, R.J. (1992) Water in dry organisms. pp 161173 in Somero, G.N., Osmond, C.B. and Bolis, C.L. (Eds) Water and life. Berlin, Springer-Verlag.CrossRefGoogle Scholar
Shiroya, T. (1963) Metabolism of raffinose in cotton seeds. Phytochemistry 2, 3346.CrossRefGoogle Scholar
Williams, R.J. and Leopold, A.C. (1989) The glassy state in corn embryos. Plant Physiology 89, 977981.CrossRefGoogle Scholar