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Breeding long coleoptile, reduced height wheats

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Abstract

Semidwarf wheats have the potential to produce high yields when sown and managed under optimal conditions. However, farm yields often fall below this potential because of poor seedling establishment and low early vigour associated with gibberellic acid (GA)-insensitive reducing-height ( Rht) genes contained in these wheats. Australian and overseas wheats containing major and minor Rht genes sensitive to GA were intercrossed to develop three populations. Seedlings sensitive to GA and therefore lacking Rht-B1b ( Rht1) and Rht-D1b ( Rht2) plant height genes were selected for further study. GA- sensitive F4-derived lines were sown in field and glasshouse environments to determine plant height, and then sown at four temperatures to determine coleoptile length. Genetic variation in plant height and coleoptile length was large and significant ( P<0.01) among lines within each population with a number of lines identified as producing plant heights as short as current semidwarf varieties. Transgressive segregation for coleoptile length produced progenies with coleoptiles significantly ( P < 0.05) longer than the longest coleoptile parent in each population. Genotype × temperature interactions for coleoptile length were small thereby resulting in high line-mean heritabilities (h2 = 85–89) for this character. Larger plant-to-plant variation reduced single-plant estimates of heritability for plant height (h2 = 29–31) but heritability was increased (h2 = 68–78) with replication within and over environments. High narrow-sense heritabilities indicate that phenotypic selection should produce modest genetic gain for both characters. Variation in coleoptile length was poorly related to differences in plant height (r2 = 0.00 to 0.04 ns) while selection differentials for plant height were not associated with any change in coleoptile length of the selected groups. When considered together, height and coleoptile length appeared to be largely under independent genetic control among GA-sensitive wheats. These results suggest that GA-sensitive Rht genes could be used to select shorter height, longer-coleoptile wheats with improved establishment and seedling vigour.

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References

  • Abdel-Aleem, M.M.M., S.R.S. Sabry, & N.S. Hanna, 1992. Seedling characteristics as selection criteria for salinity tolerance in wheat. Rachis 11: 33–40.

    Google Scholar 

  • Addae, P.C., N. Collis-George & C.J. Pearson, 1991. Over-riding effects of temperature and soil strength on wheat seedlings under minimum and conventional tillage. Field Crops Res 28: 103–116.

    Article  Google Scholar 

  • Allan, R.E., J.A. Pritchett & A. Patterson, 1968. Juvenile and adult plant growth relationships in wheat. Crop Sci 8: 176–178.

    Article  Google Scholar 

  • Allan, R.E., O.A. Vogel, J.R. Burleigh & C.J. Peterson, 1961. Inheritance of coleoptile length and its association with culm length in four winter wheat crosses. Crop Sci 1: 328–332.

    Article  Google Scholar 

  • Beharav, A., A. Cahaner & M.J. Pinthus, 1994. Mixed model for estimating the effects of the Rht1 dwarfing allele, background genes, CCC and their interaction on culm and leaf elongation of Triticum aestivum L., spring wheat. Heredity 72: 237–241.

    Google Scholar 

  • Budak, N., P.S. Baenziger, K.M. Eskridge, D. Baltensperger & B. Moreno-Sevilla, 1995. Plant height response of semidwarf and nonsemidwarf wheats to the environment. Crop Sci 35: 447–451.

    Article  Google Scholar 

  • Burdon, R.D., 1977. Genetic correlation as a concept for studying genotype-environment interaction in forest tree breeding. Silvae Genet 26: 168–175.

    Google Scholar 

  • Chastain, T.G., K.J. Ward & D.J. Wysocki, 1995. Stand establishment responses of soft white winter wheat to seedbed residue and seed size. Crop Sci 35: 213–218.

    Article  Google Scholar 

  • Cockerham, C.C., 1983. Covariances of relatives from self-fertilization. Crop Sci 23: 1177–1180.

    Article  Google Scholar 

  • Cornish, P.S. & S. Hindmarsh, 1988. Seed size influences the coleoptile length of wheat. Aust J Exp Ag 28: 521–523.

    Article  Google Scholar 

  • Donald, C.M. & D.W. Puckridge, 1975. The ecology of the wheat crop. In: A. Lazenby and E.M. Matheson (Eds), Australian Field Crops 1. Wheat and Other Temperate Cereals, pp. 288–303. Angus and Robertson, Sydney.

    Google Scholar 

  • Fick, G.N. & C.O. Qualset, 1976. Seedling emergence, coleoptile length, and plant height relationships in crosses of dwarf and standard-height wheats. Euphetica 25: 679–684.

    Article  Google Scholar 

  • Gale, M.D. & R.W. King, 1988. Semidwarf genes in Australian wheats. J Aust Inst Agric Sci 1: 18–20.

    Google Scholar 

  • Gale, M.D. & S. Youssefian, 1985. Dwarfing genes in wheat. In: G.E. Russell (Ed) Progress in Plant Breeding, pp. 1–35. Butterworths, London.

    Google Scholar 

  • Hoogendoorn, J., J.M. Rickson & M.D. Gale, 1990. Differences in leaf and stem anatomy related to plant height of tall and dwarf wheat. J Plant Physiol 136: 72–77.

    Google Scholar 

  • Huel, D.G. & P. Hucl, 1996. Genotypic variation for competitive ability in spring wheat. Plant Breed 115: 325–329.

    Article  Google Scholar 

  • Hughes, K.A. & W.J.P. Mitchel, 1987. The relationship of coleoptile length and plant height with establishment of cereals under zero-tillage. In: Proceedings Annual Conference New Zealand Agronomy Society Volume 17, pp. 67–70. DSIR, New Zealand.

    Google Scholar 

  • Keyes, G.J., D.J. Paolillo & M.E. Sorrells, 1989. The effects of dwarfing genes Rht1 and Rht2 on cellular dimensions and rate of leaf elongation in wheat. Ann Bot 64: 683–690.

    Google Scholar 

  • Konzak, C.F., 1987. Mutations and mutation breeding. In: E.C. Heyne (Ed) Wheat and Wheat Improvement, pp. 428–443. American Society of Agronomy, Madison, WI.

    Google Scholar 

  • Korzun, V., M.S. Roder, M.W. Ganal, A.J. Worland & C.N. Law, 1998. Genetic analysis of the dwarfing gene Rht8 in wheat. Part I. Molecular mapping of Rht8 on the short arm of chromosome 2D of bread wheat (Triticum aestivum L.). TAG 96: 1104–1109.

    Article  CAS  Google Scholar 

  • Lemerle, D., A.R. Leys, R.B. Hinkley & J.A. Fisher, 1985. Tolerances of wheat cultivars to pre-emergence herbicides. Aust J Exp Agric 25: 922–926.

    Article  CAS  Google Scholar 

  • López-Castañeda, C. & R.A. Richards, 1994. Variation in temperate cereals in rainfed environments. 3. Water use and water-use efficiency. Field Crops Res 39: 85–98.

    Article  Google Scholar 

  • Parodi, P.C., F.L. Patterson & W.E. Nyquist, 1970. A six-parent diallel cross analysis of coleoptile elongation in wheat, Triticum aestivum L. Crop Sci 10: 587–590.

    Article  Google Scholar 

  • Purchase, J.L., J. Le Roux & H.A. van Tonder, 1992. The effects of various seed treatments on the germination, coleoptile length and emergence of South African winter wheats (Triticum aestivum L.). Sth Afr J Pl Soil 9: 139–143.

    CAS  Google Scholar 

  • Radford, B.J., 1987. Effect of constant and fluctuating temperature regimes and seed source on the coleoptile length of tall and semidwarf wheats. Aust J Exp Agric 27: 113–117.

    Article  Google Scholar 

  • Reithmuller, G.P., 1990. Machinery for improved crop establishment in Western Australia. In: Agricultural Engineering Conference 1990, pp. 40–45. Institute of Engineers, Australia.

    Google Scholar 

  • Richards, R.A., 1992a. The effect of dwarfing genes in spring wheat in dry environments I. Agronomic characteristics. Aust J Agric Res 43: 517–527.

    Article  Google Scholar 

  • Richards, R.A., 1992b. The effect of dwarfing genes in spring wheat in dry environments II. Growth, water use and water use efficiency. Aust J Agric Res 43: 529–539.

    Article  Google Scholar 

  • SAS Inst., 1997. SAS/STAT® Software: Changes and Enhancements through Release 6.12. SAS Institute, Cary, NC.

    Google Scholar 

  • Waddington, S.R., J.K. Ransom, M. Osmanzai & D.A. Saunders, 1986. Improvement in the yield potential of bread wheat adapted to northwest Mexico. Crop Sci 26: 698–703.

    Article  Google Scholar 

  • Whan, B.R., 1976. The association between coleoptile length and culm length in semidwarf and standard wheats. J Aust Inst Agric Sci 42: 194–196.

    Google Scholar 

  • Yamada, T., 1990. Classification of GA response, Rht genes and culm length in Japanese varieties and landraces of wheat. Euphetica 50: 221–239.

    Article  Google Scholar 

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Rebetzke, G., Richards, R., Fischer, V. et al. Breeding long coleoptile, reduced height wheats. Euphytica 106, 159–168 (1999). https://doi.org/10.1023/A:1003518920119

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