Growth and physiological responses of creeping bentgrass (Agrostis stolonifera) to elevated carbon dioxide concentrations

Patrick Burgess , Bingru Huang

Horticulture Research ›› 2014, Vol. 1 ›› Issue (1) : 14021

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Horticulture Research ›› 2014, Vol. 1 ›› Issue (1) :14021 DOI: 10.1038/hortres.2014.21
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Growth and physiological responses of creeping bentgrass (Agrostis stolonifera) to elevated carbon dioxide concentrations
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Abstract

The atmospheric carbon dioxide level has increased and is predicted to continue increasing, which may affect various aspects of plant growth. The objective of this study was to investigate the effects of doubling the carbon dioxide level on the growth and physiological activities of a widely utilized cool-season turfgrass species, creeping bentgrass (Agrostis stolonifera L. ‘Penncross’). ‘Penncross’ plants were established in fritted clay medium and maintained under well-irrigated and well-fertilized conditions in growth chambers. The plants were exposed to either ambient carbon dioxide concentrations (400±10 mmol L-1) or elevated carbon dioxide concentrations (800±10 mmol L-1) for 12 weeks. Plants grown under elevated carbon dioxide displayed a significantly faster growth rate of their lateral stems (stolons) and increased shoot and root dry weight but a reduced specific leaf area compared to those plants at ambient carbon dioxide levels. Fast stolon growth is a highly desirable trait for turfgrass establishment and recovery from physical damage. The root length and surface area were also increased due to the elevated CO2, which may facilitate water uptake and serve critical drought-avoidance roles when irrigation water is limited. Elevated carbon dioxide caused an increase in the leaf net photosynthetic rate but a reduction in the stomatal conductance and transpiration rate, contributing to improved water use efficiency in creeping bentgrass. Efficient water use is especially important for turfgrass plant survival when irrigation water is limited. Our results suggested that cool-season turfgrass species may greatly benefit from increasingly elevated carbon dioxide concentrations via growth promotion and increasing water use efficiency.

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Patrick Burgess, Bingru Huang. Growth and physiological responses of creeping bentgrass (Agrostis stolonifera) to elevated carbon dioxide concentrations. Horticulture Research, 2014, 1 (1) : 14021 DOI:10.1038/hortres.2014.21

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References

[1]

Dlugokencky EJ . Carbon dioxide [in ‘‘State of the Climate in 2008’’]. Bull Am Meteorol Soc 2009; 90: S34-S35.

[2]

Houghton JT, Ding Y, Griggs DJ et al. IPCC, 2001: Climate Change 2001: The Scientific Basis, Intergovernmental Panel on Climate Change. Cambridge and New York: Cambridge University Press, 2001.

[3]

Kirkham MB . Elevated Carbon Dioxide, Impacts on Soil and Plant Water Relations. Boca Raton, FL: CRC Press, 2011.

[4]

Wand SJE, Midgley GF, Jones MH et al. Responses of wild C3 and C4 grasses (Poaceae) species to elevated atmospheric CO2 conditions: a meta-analytic test of current theories and perceptions . Global Change Biol 1999; 5: 723-741.

[5]

Morison JI . Stomatal response to increased CO2 concentration . J Exp Bot 1998; 49(Special Issue): 443-452.

[6]

Lee TD, Barrott SH, Reich PB . Photosynthetic responses of 13 grassland species across 11 years of free-air CO2 enrichment is modest, consistent and independent of N supply . Global Change Biol 2011; 17: 2893-2904.

[7]

Reddy AR, Rasineni GK, Raghavendra AS . The impact of global elevated CO2 concentration on photosynthesis and plant productivity . Curr Sci 2010; 99: 46-57.

[8]

Pritchard S, Rogers H, Prior SA et al. Elevated CO2 and plant structure: a review . Global Change Biol 1999; 5: 807-837.

[9]

Taylor G, Ranasinghe S, Bosac C et al. Elevated CO2 and plant growth: cellular mechanisms and responses of whole plants . J Exp Bot 1994; 45(Special Issue): 1761-1774.

[10]

Yu JJ, Chen LH, Xu M et al. Effects of elevated CO2 on physiological responses of Tall Fescue to elevated temperature, drought stress, and the combined stresses . Crop Sci 2012; 52: 1848-1858.

[11]

Yu J, Du H, Xu M et al. Metabolic responses to heat stress under elevated atmospheric CO2 concentration in a cool-season grass species . J Am Soc Hort Sci 2012; 137: 221-228.

[12]

Yu J, Yang Z, Jespersen D et al. Photosynthesis and protein metabolism associated with elevated CO2-mitigation of heat stress damages in tall fescue . Environ Exp Bot 2014; 99: 75-85.

[13]

Milesi C, Running SW, Elvidge CD et al. Mapping and modeling the biogeochemical cycling of turfgrasses in the United States. Environ Manage 2005; 36: 426-438.

[14]

Beard JB, Green RL . The role of turfgrasses in environmental protection and their benefits to humans. J Environ Qual 1994; 23: 452-460.

[15]

Stier JC, Horgan BP, Bonos SA (eds.). Turfgrass: Biology, Use, and Management. Agronomy Monograph Number 56.Madison, WI: American Society of Agronomy, 2013.

[16]

Vickers A. Water Use and Conservation. Amherst, MA: Water Plow Press, 2001.

[17]

Hoagland DR, Arnon DI . The water-culture method for growing plants without soil. Calif. Agric Exp Station Circ 1950; 347: 1-32.

[18]

Turgeon AJ . Turfgrass Management. 8th ed. Upper Saddle River, NJ and Columbus, OH: Pearson Prentice Hall, 2008.

[19]

Taiz L, Zeiger E . Plant Physiology. 5th ed. Sunderland, MA: Sinauer Associates Inc., 2010.

[20]

Hoffmann WA, Franco AC, Moreira MZ et al. Specific leaf area explains differences in leaf traits between congeneric savanna and forest trees. Funct Ecol 2005; 19: 932-940.

[21]

Fry J, Huang B . Applied Turfgrass Science and Physiology. Hoboken, NJ: John Wiley & Sons, 2004.

[22]

Radoglou KM, Jarvis PG . Effects of CO2 enrichment on four poplar clones. I. Growth and leaf anatomy . Ann Bot 1990; 65: 617-626.

[23]

Giuliani R, Koteyeva N, Voznesenskaya E et al. Coordination of leaf photosynthesis, transpiration, and structural traits in rice and wild relatives (genus Oryza). Plant Physiol 2013; 162: 1632-1651.

[24]

Kimball BA . Carbon dioxide and agricultural yield: an assemblage and analysis of 430 prior observations. Agron J 1983; 75: 779-788.

[25]

Ainsworth EA, Long SP . What have we learned from 15 years of free-air CO2 enrichment (FACE)? A meta-analytic review of the responses of photosynthesis, canopy properties and plant production to rising CO2 . New Phytol 1980; 165: 351-372.

[26]

Baxter R, Ashenden TW, Sparks TH et al. Effects of elevated carbon dioxide on three montane grass species. I. Growth and dry matter partitioning. J Exp Bot 1994; 45: 305-315.

[27]

Beard JB . Turfgrass: Science and Culture. Englewood Cliffs, NJ: Prentice Hall, 1973.

[28]

Owensby CE, Coyne PI, Ham LM et al. Biomass production in a tallgrass prairie ecosystem exposed to ambient and elevated CO2 . Ecol Appl 1993; 3: 644-653.

[29]

Fitter AH, Graves JD, Wolfenden J et al. Root production and turnover and carbon budgets of two contrasting grasslands under ambient and elevated atmospheric carbon dioxide concentrations. New Phytol 1997; 197: 247-255.

[30]

Farrar JF, Williams ML . The effects of increased atmospheric carbon dioxide and temperature on carbon partitioning, source-sink relations and respiration. Plant Cell Environ 1991; 14: 819-830.

[31]

BassiriRad H, Gutschick VP, Lussenhop J . Root system adjustments: regulation of plant nutrient uptake and growth responses to elevated CO2 . Oecologia 2001; 126: 305-320.

[32]

Rogers HH, Runion GB, Krupa SV . Plant responses to atmospheric CO2 enrichment with emphasis on roots and the rhizosphere . Environ Pollut 1994; 83: 155-189.

[33]

Baker JT, Allen LH Jr., Boote KJ . Growth and yield responses of rice to carbon dioxide concentration. J Agric Sci 1990; 115: 313-320.

[34]

Carrow RN . Drought avoidance characteristics of diverse tall fescue cultivars. Crop Sci 1996; 36: 371-377.

[35]

Marcum KB, Engelke MC, Morton SJ et al. Rooting characteristics and associated drought resistance of zoysiagrasses. Agron J 1995; 87: 534-538.

[36]

Sage RF, Sharkey TD, Seemann JR . Acclimation of photosynthesis to elevated CO2 in five C3 species . Plant Physiol 1989; 89: 590-596.

[37]

Ainsworth EA, Davey PA, Bernacchi CJ et al. A meta-analysis of elevated [CO2] effects on soybean (Glycine max) physiology, growth and yield . Global Change Biol 2002; 8: 695-709.

[38]

Habash DZ, Paul MJ, Parry MA et al. Increased capacity for photosynthesis in wheat grown at elevated CO2: the relationship between electron transport and carbon metabolism . Planta 1995; 197: 482-489.

[39]

Tuba Z, Szente K, Koch J . Response of photosynthesis, stomatal conductance, water use efficiency and production to long-term elevated CO2 in winter wheat . J Plant Physiol 1994; 144: 661-668.

[40]

Bunce JA . Effects of doubled atmospheric carbon dioxide concentration on the responses of assimilation and conductance to humidity. Plant Cell Environ 1993; 16: 189-197.

[41]

Allen LH Jr, Jones P, Jones JW . Rising atmospheric CO2 and evapotranspiration . In: Advances in Evapotranspiration: Proceedings of the National Conference on Advances in Evapotranspiration. St Joseph, MI: ASAE, 1985: 13-27.

[42]

Nijs I, Impens I, Behaeghe T . Effects of long-term elevated CO2 concentration on Lolium perenne and Trifolium repens canopies in the course of a terminal drought stress period . Can J Bot 1989; 67: 2720-2725.

[43]

Radoglou KM, Jarvis PG . Effects of CO2 enrichment on four poplar clones. II. Leaf surface properties . Ann Bot 1990; 65: 627-632.

[44]

Estiarte M, Penuelas J, Kimball BA et al. Elevated CO2 effects on stomatal density of wheat and sour orange trees . J Exp Bot 1994; 45: 1665-1668.

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