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The Effect of Siduron Upon Barley Root Metabolism

Published online by Cambridge University Press:  12 June 2017

Walter E. Splittstoesser*
Affiliation:
Department of Horticulture, University of Illinois, Urbana

Abstract

Barley (Hordeum vulgare L. var. Trail) root growth was inhibited at lower concentrations of 1-(2-methylcyclohexyl)-3-phenylurea (siduron) than was shoot growth. The influence of siduron upon root metabolism was assessed with excised roots grown in 0 or 5 ppm siduron. More glucose-U-14C and leucine-U-14C were degraded to CO2 and less were incorporated into cell wall material and protein by roots grown in siduron. However, roots grown in siduron incorporated more adenine-8-14C into nucleic acids and degraded less adenine to CO2 than roots grown in water. It was suggested that siduron disrupted the normal nucleic acid metabolism of barley roots which was necessary for protein and cell wall synthesis.

Type
Research Article
Copyright
Copyright © Weed Science Society of America 

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References

Literature Cited

1. Aronoff, S. 1960. Techniques of Radiochemistry. The Iowa State University Press, Ames. 228 p.Google Scholar
2. Black, C. C. and Myers, L. 1966. Some biochemical aspects of the mechanisms of herbicidal activity. Weeds 14:331338.CrossRefGoogle Scholar
3. Canvin, D. T. and Beevers, H. 1961. Sucrose synthesis from acetate in germinating castor bean: Kinetics and pathwav. J. Biol. Chem. 236:988995.CrossRefGoogle Scholar
4. Epstein, E. 1961. The essential role of calcium in selective cation transport in plant cells. Plant Physiol. 36:437444.CrossRefGoogle ScholarPubMed
5. Fink, K., Cline, R. E., and Fink, R. M. 1963. Paper chromatography of several classes of compounds. Correlated Rf values in a variety of solvent systems. Anal. Chem. 35:389398.CrossRefGoogle Scholar
6. Holms, I. A. and Wild, D. G. 1966. Consequences of inhibition of E. coli by tetracycline antibiotics. Nature 210:10471048.CrossRefGoogle Scholar
7. Hopen, H. J., Splittstoesser, W. E., and Butler, J. D. 1966. Intra-species bentgrass selectivity of siduron. Proc. Amer. Soc. Hort. Sci. 89:631635.Google Scholar
8. Ingle, J. 1963. The extraction and estimate of nucleotides and nucleic acids from plant material. Phytochemistry 2:353370.CrossRefGoogle Scholar
9. Lips, S. H. and Beevers, H. 1966. Compartmentation of organic acids in corn roots. I. Differential labeling of two malate pools. Plant Physiol. 41:709712.CrossRefGoogle Scholar
10. Osborne, D. J. 1962. Effect of kinetin on protein and nucleic acid metabolism in Xanthium leaves during senescence. Plant Physiol. 37:595602.CrossRefGoogle ScholarPubMed
11. Rowan, K. S. 1957. Phosphorylated compounds in plants. I. Adenosine and uridine-5-phosphate in pea seedlings. J. Exp. Bot. 8:256271.CrossRefGoogle Scholar
12. Skoog, F. 1954. Substances involved in normal growth and differentiation of plants. Brookhaven Symposia 6. 21 p.Google Scholar
13. Splittstoesser, W. E. 1966. Dark CO2 fixation and its role in the growth of plant tissue. Plant Physiol. 41:755759.CrossRefGoogle ScholarPubMed
14. Splittstoesser, W. E. 1967. The metabolism of glutamate and leucine by maize tissues. Phytochemistry 6:933939.CrossRefGoogle Scholar
15. Splittstoesser, W. E. and Hopen, H. J. 1967. Response of bentgrass to siduron. Weeds 15:8283.CrossRefGoogle Scholar
16. Splittstoesser, W. E. and Hopen, H. J. 1968. Metabolism of siduron by barley and crabgrass. Weed Sci. 16 (In press).CrossRefGoogle Scholar
17. Van Overbeek, J. 1964. Survey of mechanism of herbicide action, p. 387400. In Audus, L. J. (ed.), The Physiology and Biochemistry of Herbicides. Academic Press, New York.Google Scholar