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Effects of root applications of gibberellic acid on photosynthesis and growth in C3 and C4 plants

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Abstract

The effects of root applications of gibberellic acid (GA3) on growth and photosynthesis of 12 species of plants including C3 monocots (Triticum aestivum L., wheat, Hordeum vulgare L., barley and Avena sativa L., oat), C3 dicots (Vigna radiata L., mung bean, Cucurbita moschata L., squash and Capsicum annuum L., pepper), C4 monocots (Zea mays L., corn, Sorghum vulgare L., sorghum and Panicum ramosum L., millet) and C4 dicots (Amaranthus retroflexus L., pigweed, Kochia scoparis L., kochia and Gomphrena celosoides L., gomphrena) were evaluated. Relative growth rates (RGR) of barley, oat, squash, pepper, corn, sorghum, millet, pigweed and kochia were increased above the control by 12.7%, 9.9%, 11.3%, 10.7%, 19.2% 10.1%, 11.5%, 16.4% and 32.7% respectively, four days following optimum GA3 treatments. There was no effect of GA3 on RGR in wheat, mung bean, and gomphrena. Gibberellic acid decreased the chlorophyll content expressed on an area basis by 20.0%, 13.9%, 20.9%, 17.1%, 11.9% and 28.0% in barley, squash, pepper, sorghum, pigweed and kochia, respectively, while that of oat, wheat, mung bean, corn, millet and gomphrena remained unchanged. When photosynthetic rates were expressed per mg of chlorophyll, it showed that GA3 could stimulate photosynthesis in barley, squash, pepper, sorghum, millet, pigweed and kochia by 20.4%, 20.6%, 16.5%, 17.4%, 10.4%, 24.2%, and 29.4%; while there was no effect in oat, wheat, mung bean, corn and gomphrena. An increase in leaf blade area and/or length of sheath were observed in GA3 treated plants of oat, barley, mung bean, squash, pepper, corn, sorghum, millet and kochia. The transpiration rate remained unchanged following GA3 treatment in all 12 species.

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References

  1. Arnold, CW, Bennet, D, Williams, CN (1967) The promotion of winter growth in pastures through growth substances and photoperiod. Aust J Agric Res 18: 245–257

    Google Scholar 

  2. Arteca, RN, Dong, CN (1982) Increased photosynthetic rates following gibberellic acid treatments to the roots of tomato plants. Photosynthesis Res 2: 243–249

    Google Scholar 

  3. Bachelard, EP (1968) Effects of seed treatments with gibberellic acid on subsequent growth of some eucalypt seedlings. New Phytol 67: 595–604

    Google Scholar 

  4. Coulombe, LJ, Paquim, R (1959) Effects de lacide gibberellique surle metabolisme des plantes. Can J Bot 37: 897–901

    Google Scholar 

  5. Craigmiles, JP, Newton, JP (1962) Effect of gibberellin on forage crops. Crop Sci 2: 167–168

    Google Scholar 

  6. Dunnett, CW (1955) A multiple comparison procedure for comparing several treatments with a control. J Am Stat Assn 50: 1096–1121

    Google Scholar 

  7. Fisher, RA (1921) Some remarks on the methods formulated in a recent article on the quantitative analysis of plant growth. Ann Appl Biol 7: 367–372

    Google Scholar 

  8. Gaastra, P (1959) Photosynthesis of crop plants as influenced by light, carbon dioxide, temperature, and stomatal diffusion resistance. Landouwhogesch (Wageningen) 59 (13): 1–68

    Google Scholar 

  9. Gale, MD, Edrich, J, Lupton, FGH (1974) Photosynthetic rates and the effects of applied gibberellin in some dwarf, semidwarf and tall wheat varieties (Triticum aestivum). J Agric Sci, Camb 83: 43–46

    Google Scholar 

  10. Haber, AH, Tolbert, NE (1957) Photosynthesis in gibberellin treated leaves. Plant Physiol 32: 152–153

    Google Scholar 

  11. Hayashi T (1961) The effect of gibberellin treatment on the photosynthetic activity of plants. IVth Intern Conf Plant Growth Regulation Iowa State Press, pp. 579–587

  12. Hoagland DR, Arnon DI (1938) The water culture method for growing plant without soil. Univ of Calif Agric Exp Cir 347

  13. Huber, W and Sankhia, N (1974) Effect of gibberellic acid on the activities of photosynthetic enzymes and CO2 fixation products in leaves of Pennisetum typhoides seedlings. Z. Pflanzenphysiol Bd 71. S: 275–280

    Google Scholar 

  14. Jensen, KF, Dochinger, LS (1972) Gibberellic acid and height growth of white pine seedlings. For Sci 18: 196–197

    Google Scholar 

  15. Kazaryan, VO, Akopova, ZHM (1978) Effect of vitamins and gibberellin on chlorophyll formation, photosynthesis activity, and life of isolated leaves. Dokl Akad Nauk Arm SSR (USSR) 67 (4): 237–242

    Google Scholar 

  16. Kennedy, RA (1977) The effects of NaCl2 polyethyleneglycol, and naturallyintroduced water stress on photosynthetic products, photosynthetic rates and CO2 compensation points in C3 plants. Z Pflanzenphysiol 83: 11–24

    Google Scholar 

  17. Larson, MM, Palashev, I (1973) Effects of osmotic water stress and gibberellic acid on initial growth of oak seedlings. Can J For Res 3: 79–82

    Google Scholar 

  18. Lester, DC, Carter, OG, Kelleher, FM, Laing, DR (1972) The effect of gibberellic acid on apparent photosynthesis and dark respiration of stimulated swards of Pennisetum clandestinum Hochst. Aust J Agric Res 23: 205–213

    Google Scholar 

  19. Little, CWA, Loach, K (1975) Effect of gibberellic acid on growth and photosynthesis in Abies balsamea. Can J Bot 53: 1805–1810

    Google Scholar 

  20. Mackinney, G (1941) Absorption of light by chlorophyll solutions. J Biol Chem 140: 315–322

    Google Scholar 

  21. Marcelle RH, Clijsters H, Oben G, Bronchart R, Michel JM (1974) Effects of CCC and GA3 on photosynthesis of primary bean leaves. Plant Growth Subst, Proc Int Conf, 8th: 1169–1174

    Google Scholar 

  22. Marcelle, R, Oben, G (1972) Effects of some growth regulators on the CO2 exchanges of leaves. Acta Horticulturae 34: 55–58

    Google Scholar 

  23. Sankhla, N, Huber, W (1974) Eco-physiological studies on India arid zone plants. IV Effect of salinity and gibberellin on the activities of photosynthetic enzymes and CO2 fixation products in leaves of Pennisetum typhoides seedlings. Biochem Physiol Pflanzen (BPP) 166: 181–187

    Google Scholar 

  24. Treharne, KJ, Stoddart, JL (1968) Effects of gibberellin on photosynthesis in red clover (Trifolium pratense L). Nature 220: 257–258

    Google Scholar 

  25. Treharne, KJ, Stoddart, JL, Pughe, J, Paranjothy, K, Waring, PF (1970) Effects of gibberellins and cytokinins on the activity of photosynthetic enzymes and plastid ribosomal RNA synthesis of Phaseolus vulgaris L. Nature 228: 129–131

    Google Scholar 

  26. Wareing, PF, Khalifa, MM, Treharne, KJ (1968) Rate limiting processes in photosynthesis at saturating light intensities. Nature 22: 453–457

    Google Scholar 

  27. Wellburn, FAM, Wellburn, AR, Stoddart, JL, Treharne, KJ (1973) Influence of gibberellic and abscisic acids and the growth retardant, CCC, upon plastid development. Planta 111: 337–346

    Google Scholar 

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This work was supported in part by the Fair Funds administered by the Pennsylvania Department of Agriculture. Contribution No. 39, Department of Horticulture, The Pennsylvania State University. Authorized for publications as paper no. 6886 in the journal series of the Pennsylvania Agricultual Experiment Station.

Research assistant and assistant professor respectively.

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Tsai, DS., Arteca, R.N. Effects of root applications of gibberellic acid on photosynthesis and growth in C3 and C4 plants. Photosynth Res 6, 147–157 (1985). https://doi.org/10.1007/BF00032789

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  • DOI: https://doi.org/10.1007/BF00032789

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