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The intrachromosomal mapping of a glucose phosphate isomerase structural gene, using allelic variation among stocks of Chinese Spring wheat

Published online by Cambridge University Press:  14 April 2009

A. J. S. Chojecki
Affiliation:
Plant Breeding Institute, Maris Lane, Trumpington, Cambridge CB2 2LQ
M. D. Gale
Affiliation:
Plant Breeding Institute, Maris Lane, Trumpington, Cambridge CB2 2LQ
Linda M. Holt
Affiliation:
Plant Breeding Institute, Maris Lane, Trumpington, Cambridge CB2 2LQ
P. I. Payne
Affiliation:
Plant Breeding Institute, Maris Lane, Trumpington, Cambridge CB2 2LQ
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Summary

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Detectable allelic variation at the Gpi-1 loci on the short arms of the homoeologous group 1 chromsomes in wheat is not common. However, a variant null allele at the Gpi-D1 locus is present in some stocks of Chinese Spring. This has allowed the locus to be mapped between the ω-gliadin locus carried distally on the short arm of chromosome 1D, Gli-D1 (34·5%) and the high-molecular-weight glutenin subunit locus carried near the centromere on the long arm, Glu-D1 (36·2%). The origin of this isoenzyme polymorphism in Chinese Spring stocks is described and its potential significance is discussed in relation to quantitative analysis of aneuploids, alien chromosome addition and substitution lines and intervarietal chromosome substitution lines involving Chinese Spring.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1983

References

REFERENCES

Chojecki, A. J. S. & Gale, M. D. (1982). Genetic control of glucose phosphate isomerase in wheat and related species. Heredity 49, 339349.CrossRefGoogle Scholar
Dvorak, J. & Knott, D. R. (1974). Disomic and telosomic additions of diploid Agropyron elongatum chromosomes to Triticum aestivum. Canadian Journal of Genetics and Cytology 16, 399417.CrossRefGoogle Scholar
Gale, M. D., Law, C. N., Chojecki, A. J. S. & Kempton, R. A. (1983). Genetic control of α-amylase production in wheat. Theoretical and applied genetics. (In the Press.)CrossRefGoogle Scholar
Gale, M. D., Ainsworth, C. C. & Baird, S. (1982). Allelic variation at β-amylase loci in hexaploid wheat, Triticum aestivum. Isozyme Bulletin. (In the Press.)Google Scholar
Hart, G. E., McMillin, D. E. & Sears, E. R. (1976). Determination of the chromosomal location of a glutamate oxaloacetate transminase structural gene using Triticum Agropyron translocations. Genetics, 83, 4961.CrossRefGoogle Scholar
Hart, G. E. (1979 a). Genetical and chromosomal relationships among the wheats and their relatives. Stadler Symposium 1979, vol. iii, 923.Google Scholar
Hart, G. E. (1979 b). Evidence for a triplicate set of glucose-phosphate isomerase structural genes in hezaploid wheat. Biochemical Genetics 17, 585598.CrossRefGoogle ScholarPubMed
Hart, G. E. & Tuleen, N. A. (1983). Chromosomal locations of eleven Elytrigia elongata (= Agropyron elongatum) isozyme structural genes. Genetical Research Camb. 41: 181202.CrossRefGoogle Scholar
Jones, T. W. A. (1982). Phosphoglucoisomerase isozymes of rye grass. Isozyme Bulletin. (In the Press.)Google Scholar
Kimber, G. (1967). The addition of the chromosomes of Aegilops umbellulata to Triticum aestivum (var. Chinese Spring). Genetical Research 9, 111114.CrossRefGoogle Scholar
Nishikawa, K., Furura, Y., Hina, Y. & Yamada, T. (1981). Genetic studies of α-amylase isozymes in wheat. IV. Genetic analysis in hexaploid Wheat. Japanese Journal of Genetics 56, 385445.Google Scholar
Payne, P. I., Law, C. N., Mudd, E. E. (1980). Control by homoeologous group 1 chromosomes of the high-molecular-weight subunits of glutenin, a major protein of wheat endosperm. Theoretical and Applied Genetics 58, 113120.CrossRefGoogle Scholar
Payne, P. I., Holt, L. M., Worland, A. J. & Law, C. N. (1982). Structural and genetical studies on the high-molecular-weight subunits of wheat glutenin. Part III. Telocentric mapping of the subunit genes on the long arms of the homoeologous group 1 chromosomes. Theoretical and Applied Genetics 63, 129138.CrossRefGoogle Scholar
Payne, P. I. & Lawrence, G. J. (1983). Catalogue of alleles for the complex gene loci, Glu-A1, Glu-B1 and Glu-D1 which code for high-molecular-weight subunits of glutenin in hexaploid wheat. Cereal Research Communications. (In the Press.)Google Scholar
Sears, E. R. & Sears, L. M. S. (1979). The telocentric chromosomes of common wheats. Proceedings of the 5th International Wheat Genetics Symposium (1978), 389407.Google Scholar
Trow, A. H. (1913). Forms of reduplication: primary and secondary. Journal of Genetics 2, 313324.CrossRefGoogle Scholar