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Development in Cowpea (Vigna unguiculata). I. The Influence of Temperature on Seed Germination and Seedling Emergence

Published online by Cambridge University Press:  03 October 2008

P. Q. Craufurd
Affiliation:
International Institute of Tropical Agriculture (IITA), Kano Station, Sabo Bakin Zuwo Road, PMB 3112, Kano, Nigeria
R. H. Ellis
Affiliation:
The University of Reading, Department of Agriculture, Plant Environment Laboratory, Cutbush Lane, Shinfield, Reading RG2 9AD, Berkshire, England
R. R. J. Summerfield
Affiliation:
The University of Reading, Department of Agriculture, Plant Environment Laboratory, Cutbush Lane, Shinfield, Reading RG2 9AD, Berkshire, England
L. Menin
Affiliation:
The University of Reading, Department of Agriculture, Plant Environment Laboratory, Cutbush Lane, Shinfield, Reading RG2 9AD, Berkshire, England

Summary

The base (Tb), optimum (To) and ceiling (Tce) temperature for 50% seed germination and seedling emergence, and the thermal time at sub-optimal temperatures (θ1), were examined in experiments with a range of cowpea genotypes from different habitats and latitudes. There was substantial genotypic variation in seed germination for Tb and To, but not for Tce. There was no evidence that genotypes from semi-arid habitats had higher values of To or Tce, but estimates of Tb for seed germination were related to latitude and were highest in genotypes originating from close to the equator. The significance of these responses as a component of developmental plasticity in relation to the adaptation of cowpeas is discussed.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1996

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References

REFERENCES

Angus, J. F., Cunningham, R. B., Moncur, M. W. & Mackenzie, D. H. (1981). Phasic development in field crops. I. Thermal response in the seedling phase. Field Crops Research 3:365378.CrossRefGoogle Scholar
Covell, S., Ellis, R. H., Roberts, E. H. & Summerfield, R. J. (1986). The influence of temperature on seed germination rate in grain legumes. I. A comparison of chickpea, lentil, soyabean and cowpea at constant temperatures. Journal of Experimental Botany 37:705715.Google Scholar
Craufurd, P. Q., Qi, A., Ellis, R. H., Summerfield, R. J. & Roberts, E. H. (1996 a). Development in cowpea (Vigna unguiculata). II. Effect of temperature and saturation deficit on time to flowering in photoperiod-insensitive genotypes. Experimental Agriculture 32:1328.Google Scholar
Craufurd, P. Q., Qi, A., Summerfield, R. J., Ellis, R. H. & Roberts, E. H. (1996 b). Development in cowpea (Vigna unguiculata). III. Effect of temperature and photoperiod on time to flowering in photoperiod-sensitive genotypes. Experimental Agriculture 32:2940.Google Scholar
Ellis, R. H. & Butcher, P. D. (1988). The effects of priming and ‘natural’ differences in quality amongst onion seed lots on the response of rate of germination to temperature and the identification of the characteristics under genotypic control. Journal of Experimental Botany 39:935950.Google Scholar
Ellis, R. H., Lawn, R. J., Summerfield, R. J., Qi, A., Roberts, E. H., Chay, P. M., Brouwer, J. B., Rose, J. L. & Yeates, S. J. (1994). Towards the reliable prediction of time to flowering in six annual crops. III. Cowpea (Vigna unguiculata). Experimental Agriculture 30:1729.Google Scholar
Fyfield, T. P. & Gregory, P. J. (1989). Effects of temperature and water potential on germination, radicle elongation and emergence in mungbean. Journal of Experimental Botany 40:667674.CrossRefGoogle Scholar
Garcia-Huidobro, J., Monteith, J. L. & Squire, G. R. (1982). Time, temperature and germination of pearl millet (Pennisetum typhoides S. & H.). I. Constant temperature. Journal of Experimental Botany 33:288296.CrossRefGoogle Scholar
Gbur, E. E., Thomas, G. L. & Miller, F. R. (1979). Use of segmented regression in the determination of the base temperature in heat accumulation models. Agronomy Journal 71:949953.CrossRefGoogle Scholar
Hadley, P., Roberts, E. H., Summerfield, R. H. & Minchin, F. R. (1983). A quantitative model of reproductive development in cowpea (Vigna unguiculata (L) Walp.) in relation to photoperiod and temperature and implications for screening germplasm. Annals of Botany 51:531543.CrossRefGoogle Scholar
Harris, D., Hamdi, Q. A. & Terry, A. C. (1987). Germination and emergence of Sorghum bicolor: genotypic and environmentally induced variation in the response to temperature and depth of sowing. Plant, Cell and Environment 10:501508.Google Scholar
IITA (1974). Cowpea Germplasm Catalog No. 1. Ibadan, Nigeria: IITA.Google Scholar
IITA (1991). Annual Report 1989/90. Ibadan, Nigeria: IITA.Google Scholar
Lawn, R. J. & Imrie, B. C. (1991). Crop improvement for tropical and sub-tropical Australia: designing plants for difficult climates. Field Crops Research 26:113139.CrossRefGoogle Scholar
Ludlow, M. M. & Muchow, R. C. (1990). A critical evaluation of traits for improving crop yields in water-limited environments. Advances in Agronomy 43:107153.CrossRefGoogle Scholar
Lush, W. M., Evans, L. T. & Wien, H. C. (1980). Environmental adaptation of wild and domesticated cowpeas (Vigna unguiculata (L.)Walp.). Field Crops Research 3:173187.Google Scholar
Mohammed, H. A., Clark, J. A. & Ong, C. K. (1988). Genotypic differences in the temperature responses of tropical crops. I. Germination characteristics of groundnut (Arachis hypogaea L.) and pearl millet (Pennisetum typhoides S. & H.). Journal of Experimental Botany 39:11211128.Google Scholar
Murdoch, A. J., Roberts, E. H. & Geodert, C. O. (1989). A model for germination responses to alternating temperatures. Annals of Botany 63:97111.Google Scholar
Ndunguru, B. J. & Summerfield, R. J. (1975). Comparative laboratory studies of cowpea (Vigna unguiculata) and soyabean (Glycine max) under tropical temperature conditions. I. Germination and hypocotyl elongation. East African Agriculture and Forestry Journal 41:5864.CrossRefGoogle Scholar
Ntare, B. R. (1992). Variation in reproductive efficiency and yield of cowpea under high temperature conditions in a Sahelian environment. Euphytica 59:2732.Google Scholar
Ong, C. K. (1986). Agroclimatological factors affecting phenology of groundnut. In Agrometeorology of Groundnut, 115125 (Eds Beckerman, S. R., Sivakumar, M. V. K. and Virmani, S. M.). Niamey, Niger: ICRISAT.Google Scholar
Ong, C. K. & Monteith, J. L. (1985). Response of pearl millet to light and temperature. Field Crops Research 11:141160.Google Scholar
Patel, P. N. & Hall, A. E. (1990). Genotypic variation and classification of cowpea for reproductive responses to high temperature under long photoperiods. Crop Science 30:614621.Google Scholar
Rachie, K. O. (1983). Introduction. In Cowpea Research, Production and Utilisation, xxi–xxviii (Eds Singh, S. R. and Rachie, K. O.). Chichester: John Wiley & Sons.Google Scholar
Roberts, E. H. & Summerfield, R. J. (1987). Measurement and prediction of flowering in annual crops. In Manipulation of Flowering, 1750 (Ed. Atherton, J. G.). London: Butterworths.Google Scholar
Smartt, J. (1985). Evolution of grain legumes. III. Pulses in the genus Vigna. Experimental Agriculture 21:87100.CrossRefGoogle Scholar
Squire, G. R. (1990). The Physiology of Tropical Crop Production. Wallingford: CABI.Google Scholar
Steel, W. M. & Mehra, K. L. C. (1980). Structure, evolution and adaptation to farming systems and environments in Vigna. In Advances in Legume Science, 394404 (Eds Summerfield, R. J and Bunting, A. H.). London: HMSO.Google Scholar
Summerfield, R. J., Huxley, P. A. & Steele, W. M. (1974). Cowpea (Vigna unguiculata (L.) Walp.). Field Crops Research 27:301312.Google Scholar
White, J. W. & Montes, R. C. (1993). The influence of temperature on seed germination in cultivars of common bean. Journal of Experimental Botany 44:17951800.Google Scholar