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Influence of increasing carbon dioxide concentration on the photosynthetic and growth stimulation of selected C4crops and weeds

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Abstract

Plants of six weedy species (Amaranthus retroflexus, Echinochloa crus-galli, Panicum dichotomiflorum, Setaria faberi, Setaria viridis, Sorghum halapense) and 4 crop species (Amaranthus hypochondriacus, Saccharum officinarum, Sorghum bicolor and Zea mays) possessing the C4type of photosynthesis were grown at ambient (38 Pa) and elevated (69 Pa) carbon dioxide during early development (i.e. up to 60 days after sowing) to determine: (a) if plants possessing the C4photosynthetic pathway could respond photosynthetically or in biomass production to future increases in global carbon dioxide and (b) whether differences exist between weeds and crops in the degree of response. Based on observations in the response of photosynthesis (measured as A, CO2assimilation rate) to the growth CO2condition as well as to a range of internal CO2(Ci) concentrations, eight of ten C4species showed a significant increase in photosynthesis. The largest and smallest increases observed were for A. retroflexus (+30%) and Z. mays (+5%), respectively. Weed species (+19%) showed approximately twice the degree of photosynthetic stimulation as that of crop species (+10%) at the higher CO2concentration. Elevated carbon dioxide also resulted in significant increases in whole plant biomass for four C4weeds (A. retroflexus, E. crus-galli, P. dichotomiflorum, S. viridis) relative to the ambient CO2condition. Leaf water potentials for three selected species (A. retroflexus, A. hypochondriacus, Z. mays) indicated that differences in photosynthetic stimulation were not due solely to improved leaf water status. Data from this study indicate that C4plants may respond directly to increasing CO2concentration, and in the case of some C4weeds (e.g. A. retroflexus) may show photosynthetic increases similar to those published for C3species.

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References

  • Acock B and Allen LH Jr. Crop responses to elevated carbon dioxide concentrations. In: Strain BR and Cure JD (eds) Direct Effects of Increasing Carbon Dioxide on Vegetation. United States Department of Energy, DOE/ER-0238, pp 286

  • Black CC (1986) Effects of CO2concentration on photosynthesis and respiration of C4and CAM plants. In: Enoch HZ and Kimball BA (eds) Physiology, Yield and Economics, pp 29-40. CRC Press, Boca Raton, FL

    Google Scholar 

  • Carter DR and Peterson KM (1983) Effects of a CO2-enriched atmosphere on the growth and competitive interaction of a C3and a C4grass. Oecologia 58: 188-193

    Google Scholar 

  • De Wit CT (1978) Stimulation of Assimilation, Respiration and Transpiration of Crops. Halsted Press, John Wiley and Sons, New York, 140 pp

    Google Scholar 

  • Ehleringer J and Pearcy RW (1983) Variation in quantum yield for CO2uptake among C3and C4plants. Plant Physiol 73: 555-559

    Google Scholar 

  • Greer DH, Laing WA and Campbell BD (1995) Photosynthetic responses of thirteen pasture species to elevated CO2and temperature. Austr J Plant Physiol 22: 713-722

    Google Scholar 

  • Harley PC and Ehleringer J (1987) Gas exchange characteristics of leaves of four species of grain amaranth. Field Crops Res 17: 141-153

    Google Scholar 

  • Johnson HB, Polley HW and Mayeux HS (1993) Increasing CO2and plant-plant interactions: Effects on natural vegetation. Vegetatio 104/105: 157-170

    Google Scholar 

  • Kimball BA (1983) Carbon dioxide and agricultural yield: An assemblage and analysis of 430 prior observations. Agronomy J 75: 779-788

    Google Scholar 

  • Knapp AK, Hamerlyn CK and Owensby CE (1993) Photosynthetic and water relations response to elevated CO2in the C4grass, Andropogon gerardii. Int J Plant Sc 154: 459-466

    Google Scholar 

  • Lin ZF and Ehleringer J (1983) Photosynthetic characteristics of Amaranthus tricolor, a C4tropical leafy vegetable. Photosynth Res 4: 171-178

    Google Scholar 

  • Ludlow MM and Wilson GL (1971) Photosynthesis of tropical pasture plants. I. Illuminance, carbon dioxide concentration, leaf temperature, and leaf air vapor pressure difference. Aust J Biol Sci 24: 449-470

    Google Scholar 

  • Mauney JR, Guinn G, Fry KE and Hesketh JD (1979) Correlation of photosynthetic carbon dioxide uptake and carbohydrate accumulation in cotton, soybean, sunflower and sorghum. Photosynthetica 13: 260-266

    Google Scholar 

  • Moss DN, Musgrave RB and Lemon EF (1961) Photosynthesis under field conditions. III. Some effects of light, carbon dioxide, temperature and soil moisture on photosynthesis, respiration and transpiration of corn. Crop Sci 1: 83-87

    Google Scholar 

  • Paterson DT (1985) Comparative eco-physiology of weeds and crops. In: Duke SO (ed) Reproduction and Ecophysiology, pp 101-129. CRC Press, Boca Raton, FL

    Google Scholar 

  • Pearcy RW (1977) Acclimation of photosynthetic and respiratory carbon dioxide exchange to growth temperature in Atriplex lentiformis(Torr.) Wats. Plant Physiol 59: 795-799

    Google Scholar 

  • Poorter H (1993) Interspecific variation in the growth response of plants to an elevated ambient CO2concentration. Vegetatio 104/105: 77-97

    Google Scholar 

  • Potvin C and Strain BR (1985) Effects of CO2enrichment and temperature on growth in two C4weeds, Echinochloa crus-galliand Eleusine indica. Can J Bot 63: 1495-1499

    Google Scholar 

  • Robinson JM (1984) Photosynthetic carbon metabolism in leaves and isolated chloroplasts from spinach plants grown under short and intermediate photosynthetic periods. Plant Physiol 75: 397-409

    Google Scholar 

  • Rogers HH, Bingham GE, Cure HD, Smith JM and Suran KA (1983) Responses of selected plant species to elevated carbon dioxide in the field. J Environ Quality 12: 569-74

    Google Scholar 

  • Sionit N and Paterson DT (1984) Responses of C4grasses to atmospheric CO2enrichment. I. Effect of irradiance. Oecologia 65: 30-34

    Google Scholar 

  • Taiz L and Zeiger E (1991) Plant Physiology. Benjamin Cummings, New York, 559 pp

    Google Scholar 

  • Tissue DT, Griffin KL, Thomas RB and Strain BR (1995) Effects of low and elevated CO2on C3and C4annuals. II. Photosynthesis and leaf biochemistry. Oecologia 101: 21-28

    Google Scholar 

  • Ward DA (1987) The temperature acclimation of photosynthetic responses to CO2in Zea maysand its relationship to the activities of photosynthetic enzymes and the CO2concentrating mechanism of C4photosynthesis. Plant, Cell Environ 10: 407-411

    Google Scholar 

  • Wong SC (1979) Elevated atmospheric partial pressure of CO2and plant growth. I. Interactions of nitrogen nutrition and photosynthetic capacity in C3and C4plants. Oecologia 44: 68-74

    Google Scholar 

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Ziska, L.H., Bunce, J.A. Influence of increasing carbon dioxide concentration on the photosynthetic and growth stimulation of selected C4crops and weeds. Photosynthesis Research 54, 199–208 (1997). https://doi.org/10.1023/A:1005947802161

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