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Heterosis of interspecific soybean hybrids for traits related to N2 fixation

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Summary

Three greenhouse experiments were conducted to compare the performance of soybean (Glycine max (L.) Merr.), wild soybean (G. soja Sieb. et Zucc.), and soybean x wild soybean hybrids for traits relating to N2 fixation including nodulation, acetylene reduction, nodule leghemoglobin concentration, and nitrogen (N) accumulation and dry matter (DM) accumulation. In all three experiments G. max generally exceeded G. soja in nodulation, acetylene reduction, and N and DM accumulation while the soybean possessed higher nodule leghemoglobin concentration. In Experiment I, the mean of the hybrids did not differ significantly from the G. max parent in nodule mass, acetylene reduction activity, nodule leghemoglobin concentration, or DM accumulation. The hybrids did exceed the soybean parent in N accumulation, thus demonstrating high parent heterosis. In Experiments IIA and IIB with a more carefully chosen set of G. soja parents, high parent heterosis of individual crosses was common. Across the three experiments average high parent heterosis was 34, 28, and 28%, respectively, for nodule mass, N accumulation, and DM accumulation. If one accepts the assumption that hybrid vigor results from the accumulation of dominant alleles, then these alleles could theoretically be accumulated via selection in a homozygous genotype. If this is true than the results of the experiments reported here suggest that interspecific soybean x wild soybean crosses could serve as sources of homozygous lines which would exceed currently available soybean cultivars in nodule mass, and N and DM accumulation.

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References

  • Amaya, A., Arnoldo, R.H., Busch & K.L., Lebsock, 1972. Estimates of genetic effects of heading, plant height and grain yield in durum wheat. Crop Sci. 12: 478–481.

    Google Scholar 

  • Busch, R.H., K.A., Lucken & R.C., Frohberg, 1971. F1 hybrids versus random F5 lines performance and estimates of genetic effects in spring wheat. Crop Sci. 11: 357–361.

    Google Scholar 

  • Carpenter, J.A. & W.R., Fehr, 1986. Genetic variability for desirable agronomic traits in populations containing Glycine soja germplasm. Crop Sci. 26: 681–686.

    Google Scholar 

  • Cregan, P.B. & R.H., Busch, 1978. Heterosis, inbreeding and line performance in crosses of adapted spring wheats. Crop Sci. 18: 247–251.

    Google Scholar 

  • Cregan, P.B. & R.W., Yaklich, 1986. Dry matter and nitrogen accumulation and partitioning in selected soybean genotypes of different derivation. Theor. Appl. Genet. 72: 782–786.

    Google Scholar 

  • Ertl, D.S. & W.R., Fehr, 1985. Agronomic performance of soybean genotypes from Glycine max x Glycine soja crosses. Crop Sci. 25: 589–592.

    Google Scholar 

  • Fehr, W.R., C.E., Caviness, D.T., Burmood & J.S., Pennington, 1971. Stage of development descriptions for soybeans, Glycine max (L.). Merrill. Crop Sci. 11: 929–931.

    Google Scholar 

  • Jinks, J.L., 1983. Biometrical genetics of heterosis. In: R., Frankel (Ed), Heterosis: Reappraisal of Theory and Practice, p. 1–46. Springer-Verlag. Berlin.

    Google Scholar 

  • Karasawa, K., 1936. Crossing experiments with G. soja and G. ussuriensis. Jap. J. Bot. 8: 113–118.

    Google Scholar 

  • Keyser, H.H., P.van, Berkum & D.F., Weber, 1982. A comparative study of the physiology of symbioses formed by Rhizobium japonicum with Glycine max, Vigna unguiculata, and Macroptilium atropurpurem. Plant Physiol. 70: 1626–1630.

    Google Scholar 

  • Norris, N.O., 1964. Techniques used in work with Rhizobium. Commonw. Bur. Pastures Field Crops Hurley Burkshire Bull. 47: 186–198.

    Google Scholar 

  • Palmer, R.G., 1985. Soybean cytogenetics. In: R., Shibles (Ed), World Soybean Research Conference III: Proceedings, p. 337–344. Westview Press, Boulder, CO, USA.

    Google Scholar 

  • Smith, H.H., 1952. Fixing transgression vigor in Nicotiana rustica. In: J.W., Gowen (Ed), Heterosis, p. 161–174. Iowa State College Press, Ames, IA, USA.

    Google Scholar 

  • Sprague, G.F., 1983. Heterosis in maize: Theory and practice. In: R., Frankel (Ed), Heterosis: Reappraisal of Theory and Practice, p. 47–70. Springer-Verlag, Berlin.

    Google Scholar 

  • Steel, R.G.D. & J.H., Torrie, 1960. Principles and Procedures of Statistics. McGraw-Hill Book Company, New York.

    Google Scholar 

  • Tang, W.T. & C.H., Chen, 1959. Preliminary studies on the hybridization of cultivated and wild soybean (Glycine max and G. formosana). Jour. Agric. Assoc. China N. S. 28: 17–23.

    Google Scholar 

  • Tang, W.T. & G., Tai, 1962. Studies on the qualitative and quantitative inheritance of an interspecific cross of soybean Glycine max and G. formosana. Bot. Bull. Acad. Sin. 3: 39–60.

    Google Scholar 

  • Ting, C.L., 1946. Genetic studies on wild and cultivated soybeans. J. Amer. Soc. Agron. 38: 381–393.

    Google Scholar 

  • Vincent, J.M., 1970. A manual for the practical study of the root-nodule bacteria. Int. Biological Programme Handbook no. 15. Blackwell Scientific Publications, Oxford, UK.

    Google Scholar 

  • Vincent, J.M., 1980. Factors controlling the legume-Rhizobium symbiosis. In: Newton, W.E. & W.H., Orme-Johnson (Eds), Nitrogen fixation, vol II, p. 103–129. University Park Press, Baltimore, MD, USA.

    Google Scholar 

  • Virgina Agricultural Experiment Station & North Carolina Agricultural Research Service, 1986. Notice of release of Vance soybean to seed producers. Virginia Poly. Inst., Blacksburg, VA, USA.

    Google Scholar 

  • Weber, C.R., 1950. Inheritance and interrelation of some agronomic and chemical characters in an interspecific cross in soybeans, Glycine max x G. ussuriensis. Iowa Agric. Exp. Sta. Res. Bull. 374: 767–816.

    Google Scholar 

  • Williams, L.F., 1948. Inheritance in a species cross in soybeans (Abstract). Genetics 33: 131–132.

    Google Scholar 

  • Williams, W., 1959. The isolation of ‘pure lines’ from F1 hybrids of tomato and the problem of heterosis in inbreeding crop species. J. Agric. Sci. 53: 347–353.

    Google Scholar 

  • Wilson, D.O. & H.M., Reisenauer, 1963. Determination of leghemoglobin in legume nodules. Anal. Biochem. 6: 27–30.

    Google Scholar 

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This work was supported in part by the USDA Competitive Grants Program, Grant 82-CRCR-1-1039 and Cooperative Agreement 58-32U4-2-370 between the U.S. Department of Agriculture and the Agronomy Department, University of Maryland, Scientific Article No. A-4648, Contribution No. 7644 of the Maryland Agricultural Experiment Station.

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Cregan, P.B., van Berkum, P., Sloger, C. et al. Heterosis of interspecific soybean hybrids for traits related to N2 fixation. Euphytica 40, 89–96 (1989). https://doi.org/10.1007/BF00023302

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  • DOI: https://doi.org/10.1007/BF00023302

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