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Growth, Gas Exchange, and Germination of Several Jointed Goatgrass (Aegilops cylindrica) Accessions

Published online by Cambridge University Press:  12 June 2017

David R. Gealy*
Affiliation:
U.S. Dep. Agric., Agric. Res. Serv., 215 Johnson Hall, Washington State Univ., Pullman, WA 99164

Abstract

Growth, development, and germination among jointed goatgrass (Aegilops cylindrica Host. # AEGCY) accessions collected from nine western states were not consistently different in field plots near Pullman, WA, or in the greenhouse. Germination percentage and rate of spikelet germination of all accessions produced in the field and greenhouse were consistently high, averaging about 64% and 5.2 (on a unitless scale of 0 to 7), respectively. The Montana accession germinated consistently less than the others. In a separate greenhouse study comparing only the accessions from Colorado and Nebraska, the accession from Colorado averaged 18, 16, and 15% greater net photosynthesis rate (Pn), transpiration rate (E), and stomatal density, respectively, and 21% lower diffusive resistance (rl) than did the accession from Nebraska. However, growth parameters of the Nebraska accession averaged 7 to 35% greater than for the Colorado accession. Overall, the germination, growth, CO2 fixation, and water use among accessions appeared to be similar when jointed goatgrass was grown under Pacific Northwest conditions.

Type
Weed Biology and Ecology
Copyright
Copyright © 1988 by the Weed Science Society of America 

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References

Literature Cited

1. Aldrich, R. J. 1984. Weed-Crop Ecology. Principles in Weed Management. Pages 1546. Brenton Publishers, North Scituate, MA.Google Scholar
2. Bandeen, J. D., Stephenson, G. R., and Cowett, E. B. 1982. Discovery and distribution of herbicide-resistant weeds in North America. Pages 2627 in LeBaron, H. M. and Gressel, J., eds. Herbicide Resistance in Plants. John Wiley & Sons, New York.Google Scholar
3. Barashkova, E. A. and Migushova, E. F. 1976. Frost- and winter-resistance of some wild species related to wheat. Trudy po Prikladnoi Botanike, Genetike i Selektsii 57:124129. In Russian.Google Scholar
4. Barashkova, E. A., Belyakova, E. M., Merezhko, A. F., and Migushova, E. F. 1978. Winter tolerance of wild relatives of wheat. Byull. Vses. Ordena Lenina i Ordena Druzhby Narodov Nauchno-Issled. Inst. Rastenievod. imeni N. I. Vavilova 84:5862. In Russian.Google Scholar
5. Bewley, J. D. and Black, M. 1982. Physiology and Biochemistry of Seeds in Relation to Germination. Viability, dormancy, and environmental control. Pages 61125. Springer-Verlag, New York.Google Scholar
6. Davies, W. J., Wilson, J. A., Sharp, R. E., and Osonubi, O. 1981. Control of stomatal behaviour in water-stressed plants. Pages 163185. Vol. 8. Seminar Series—Society for Experimental Biology, Cambridge.Google Scholar
7. Donald, W. W. 1984. Vernalization requirements for flowering of jointed goatgrass (Aegilops cylindrica). Weed Sci. 32:631637.Google Scholar
8. Gealy, D. R. 1987. Gas exchange properties of jointed goatgrass (Aegilops cylindrica). Weed Sci. 35:482489.Google Scholar
9. Gealy, D. R. and Morrow, L. A. 1984. Studies on the biology and physiology of several jointed goatgrass accessions. Proc. West. Soc. Weed Sci. 37:227.Google Scholar
10. Gleichsner, J. A., Rydrych, D. J., and Appleby, A. P. 1985. Growth characteristics among jointed goatgrass populations in eastern Oregon. West. Soc. Weed Sci. Res. Prog. Rpt. Page 352.Google Scholar
11. Gleichsner, J. A., Rydrych, D. J., and Appleby, A. P. 1985. Post-harvest dormancy in jointed goatgrass. West. Soc. Weed Sci. Res. Prog. Rpt. Page 353.Google Scholar
12. Jones, H. G. 1977. Transpiration in barley lines with differing stomatal frequencies. J. Exp. Bot. 28:162168.Google Scholar
13. Kaiser, W. M., Kaiser, G., Schoner, S., and Neimanis, S. 1981. Photosynthesis under osmotic stress. Differential recovery of photosynthetic activities of stroma enzymes, intact chloroplasts, protoplasts, and leaf slices after exposure to high solute concentrations. Planta 153:430435.Google Scholar
14. Lavie, D., Lavy, E. C., Cohen, A., Evenari, M., and Guttermann, Y. 1974. New germination inhibitor from Aegilops ovata L. Nature 249:388.Google Scholar
15. Maan, S. S. 1976. Cytoplasmic homology between Aegilops squarrosa L. and A. cylindrica Host. Crop Sci. 16:757761.Google Scholar
16. Morrow, L. A., Young, F. L., and Flom, D. G. 1982. Seed germination and seedling emergence of jointed goatgrass (Aegilops cylindrica). Weed Sci. 30:395398.Google Scholar
17. Priadcencu, A., Miclea, C., and Moisescu, L. 1967. The local form of the species of Aegilops cylindrica Host, and its genetic importance. Rev. Roum. Biol. Ser. Bot. 12:421425.Google Scholar
18. Wurzburger, J. and Koller, D. 1976. Differential effects of the parental photothermal environment on development of dormancy in caryopses of Aegilops kotschyi . J. Exp. Bot. 27:4348.Google Scholar
19. Zohary, D. 1965. Colonizer species of the wheat group. Pages 402423 in Baker, H. G. and Stebbins, G. L., eds. The Genetics of Colonizing Species. Proc. 1st Int. Union Biol. Sci., Asilomar, CA. Academic Press, New York.Google Scholar