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Growth regulators and mowing heights enhance the morphological and physiological performance of Seaspray turfgrass during drought conditions

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Abstract

With the unusually prolonged drought that results from climate change, increasing the ability of plants to resist drought become a necessity. The objectives of this study were to investigate the effects of two plant growth regulators [(trinexapac-ethyl (TE) and abscisic acid (ABA)], three mowing heights (MH) (25, 35 and 45 mm), and four irrigation levels of 30, 50, 70, and 100 % of the daily evapotranspiration (ET) on the turf performance of seashore paspalum [Paspalum vaginatum (Swartz)] grown in PVC container under greenhouse conditions. After 10 weeks of water regimes and MHs initiation, the application of TE/ABA increased turf quality (TQ), leaf photochemical efficiency (Fv/Fm), maximum root length (MRL) and dry weight (RDW), total nonstructural carbohydrates (TNC), and Ca and K contents but reduced ET under drought conditions. Increasing MH increased TQ, ET, Fv/Fm, MRL, RDW, TNC, and proline as well as leaves K and Ca under drought conditions. The co-application of TE/ABA and higher MH will significantly alleviate the negative effects of drought and maintain acceptable quality in Seaspray at 50 % ET. Osmotic adjustment, the accumulation of carbohydrates and protective effects of TE/ABA on photosynthetic efficiency play a major role in drought resistance in ‘Seaspray’.

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References

  • Adams R, Kerber E, Pfister K, Weiler EW (1992) Studies on the action of the new growth retardant CGA 163′935 (Cimectacarb). In: Karassen CM, van Loon LC, Vreugdenhil D (eds) Progress in plant growth regulation: current plant science and biotechnology in agriculture, vol 13. Springer, Netherlands, pp 818–827

    Chapter  Google Scholar 

  • Arghavani M, Kafi M, Babalar M, Naderi R, Hoque MA, Murata Y (2012) Improvement of salt tolerance in Kentucky bluegrass by Trinexapac-ethyl. HortScience 47:1163–1170

    Google Scholar 

  • Assmann SM (2010) Abscisic acid signal transduction in stomatal responses. In: Davies PJ (ed) Plant hormones: biosynthesis, signal transduction, action, 3rd edn. Springer, New York, pp 399–401

    Chapter  Google Scholar 

  • Baldwin CM, Liu H, McCarty LB, Bauerle WL, Toler JE (2006) Effects of trinexapac-ethyl on the salinity tolerance of two bermudagrass cultivars. HortScience 41:808–814

    CAS  Google Scholar 

  • Bates LS, Waldren RP, Teare ID (1973) Rapid determination of free proline for water stress studies. Plant Soil 39:205–207

    Article  CAS  Google Scholar 

  • Beard JB (1973) Turfgrass: Science and culture. Prentice Hall, Englewood Cliffs

    Google Scholar 

  • Beard JB (1982) Turf management for golf courses. Burgess Publ. Company, Minneapolis

    Google Scholar 

  • Bethke P, Schuurink R, Jones R (1997) Hormonal signaling in cereal aleurone. J Exp Bot 48:1337–1356

    Article  CAS  Google Scholar 

  • Bian X, Merewitz E, Bingru H (2009) Effect of Trinexapac-ethyl on drought responses in creeping bentgrass associated with water use and osmotic adjustment. J Amer Soc Hortic Sci 134:505–510

    Google Scholar 

  • Borel C, Simonneau T, This D, Tardieu F (1997) Stomatal conductance and ABA concentration in the xylem sap of barley lines of contrasting genetic origins. Aust J Plant Physiol 24:607–615

    Article  CAS  Google Scholar 

  • Cathey SE, Kruse JK, Sinclair TR, Dukes MD (2013) Transpiration and visual appearance of warm season turfgrasses during soil drying. J Environ Exp Bot 89:36–43

    Article  Google Scholar 

  • Chatterton NJ, Bennett JH, Thornley WR (1987) Fructan, starch, and sucrose concentrations in crested wheatgrass and redtop as affected by temperature. Plant Physiol Biochem 25:617–623

    CAS  Google Scholar 

  • Davies WJ, Tardieu F, Trejo CL (1994) How do chemical signals work in plants that grow in drying soil? Plant Physiol 104:309–314

    PubMed Central  CAS  PubMed  Google Scholar 

  • Davies WJ, Wilkinson S, Loveys B (2002) Stomatal control by chemical signaling and the exploitation of this mechanism to increase water use efficiency in agriculture. New Phytol 153:449–460

    Article  CAS  Google Scholar 

  • Elansary HO (2015) Basil morphological and physiological performance under trinexapac-ethyl foliar sprays and prolonged irrigation intervals. Acta Physiol Plant. doi:10.1007/s11738-015-1839-2

    Google Scholar 

  • Elansary HO, Salem MZM (2015) Morphological and physiological responses and drought resistance enhancement of ornamental shrubs by trinexapac-ethyl application. Scientia Hortic 189:1–11

    Article  CAS  Google Scholar 

  • Ervin EH, Koski AJ (1998) Growth responses of Lolium perenne L. to trinexapac-ethyl. HortScience 33:1200–1202

    CAS  Google Scholar 

  • Ervin EH, Koski AJ (2001) Trinexapac-ethyl effects on Kentucky bluegrass evapotranspiration. Crop Sci 41:247–250

    Article  CAS  Google Scholar 

  • Ervin EH, Ok C (2001) Influence of plant growth regulators on suppression and quality of ‘Meyer’ zoysiagrass. J Environ Hortic 19:57–60

    Google Scholar 

  • Ervin EH, Zhang X (2007) Influence of sequential Trinexapac-Ethyl applications on cytokinin content in creeping bentgrass, Kentucky bluegrass, and hybrid bermudagrass. Crop Sci 47:2145–2151

    Article  CAS  Google Scholar 

  • Fu JM, Koski AJ, Qian YL (2005) Responses of creeping bentgrass to salinity and mowing management: growth and turf quality. HortScience 40:463–467

    Google Scholar 

  • Guicherd P, Peltier JP, Gout E, Bligny R, Marigo G (1997) Osmotic adjustment in Fraxinum excelsior L.: malate and mannitol accumulation in leaves under drought conditions. Trees 11:155–161

    Google Scholar 

  • Hanna W, Raymer P, Schwartz B (2013) Warm-season grasses: Biology and breeding. In: Stier JC, Horgan BP, Bonos SA (eds) Turfgrass biology, use and management. Amer Soc Agron, Madison, pp 563–570

    Google Scholar 

  • Heringa JW, Groenwold J, Schoonderbeek D (1980) An improved method for the isolation and the quantitative measurement of crop roots. Netherlands J Agric Sci 28:127–134

    Google Scholar 

  • Johnson BJ (1994) Influence of plant growth regulators and mowing on two bermudagrasses. Agron J 86:805–810

    Article  Google Scholar 

  • Kang MS (2002) Crop improvement: challenges in the twenty-first century. Haworth Press, Binghamton

    Google Scholar 

  • Kashem MA, Hori H, Itoh K, Hayakawa T, Todoroki Y, Hirai N, Ohigashi H, Mitsui T (1998) Effect of (+)-8′,8′,8′-trifluoroabscisic acid on ά-amalyse expression and sugar accumulation in rice cells. Planta 205:319–326

    Article  CAS  PubMed  Google Scholar 

  • Kim KS, Beard JB (1988) Comparative turfgrass evapotranspiration rates and associated plant morphological characteristics. Crop Sci 28:328–331

    Article  Google Scholar 

  • Kowalewski AR, Schwartz BM, Richardson MD, Karcher DE, Mccalla JH, Patton AJ, Hanna WW (2012) Effects of nitrogen, growth regulators, and mowing height on ball lie in TifSport bermudagrass. Appl Turfgrass Sci. doi:10.1094/ATS-2012-0625-01-RS

    Google Scholar 

  • Krishnan S, Merewitz EB (2015) Drought stress and trinexapac-ethyl modify phytohormone content within Kentucky bluegrass leaves. J Plant Growth Regul 34:1–12

    Article  CAS  Google Scholar 

  • Lee GJ, Carrow RN, Duncan RR (2004) Photosynthetic responses to salinity stress in halophytic seashore paspalum genotypes. Plant Sci 166:1417–1425

    Article  CAS  Google Scholar 

  • Li J, Wang XO, Watson MB, Assmann SM (2000) Regulation of abscisic acid-induced stomatal closure and anion channels by guard cell AAPK kinase. Sci 287:300–303

    Article  CAS  Google Scholar 

  • Liu X, Huang B (2003) Mowing height effects on summer turf growth and physiological activities for two creeping bentgrass cultivars. HortScience 38:444–448

    Google Scholar 

  • Lu S, Peng X, Guo Z, Zhang G, Fan Z, Pang C, Wang C, Wang J (2007) In vitro selection of salinity tolerant variants from triploid bermudagrass (Cynodon transvaalensis · C. dactylon) and their physiological responses to salt and drought stress. Plant Cell Rep 26:1413–1420

    Article  CAS  PubMed  Google Scholar 

  • Lu S, Su W, Li H, Guo Z (2009) Abscisic acid improves drought tolerance of triploid bermudagrass and involves H2O2 and NO-induced antioxidants enzyme activity. Plant Physiol Biochem 47:132–138

    Article  CAS  PubMed  Google Scholar 

  • McCann SE, Huang B (2008a) Drought responses of kentucky bluegrass and creeping bentgrass as affected by abscisic acid and trinexapac-ethyl. J Amer Soc Hortic Sci 133:20–26

    CAS  Google Scholar 

  • McCann SE, Huang B (2008b) Turfgrass drought physiology and irrigation management. In: Pessarakli M (ed) Handbook of turfgrass management and physiology. CRC Press, Taylor and Francis Group, pp 431–437

    Google Scholar 

  • McCarty LB, Willis TG, Toler JE, Whitwell T (2011) TifEagle bermudagrass response to plant growth regulators and mowing height. Agron J 130:988–994

    Article  Google Scholar 

  • McCullough PE, Liu H, McCarty LB, Whitwell T (2004) Response of ‘TifEagle’ bermudagrass to seven plant growth regulators. HortScience 39:1759–1762

    CAS  Google Scholar 

  • Merewitz EB, Du H, Yu W, Liu Y, Gianfagna T, Huang B (2012) Elevated cytokinin content in transgenic creeping bentgrass promotes drought tolerance through regulating metabolite accumulation. J Exp Bot 63:1315–1328

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  • Munns R (1988) Why measure osmotic adjustment? Aust J Plant Physiol 15:717–726

    Article  Google Scholar 

  • Nakayama I, Miyazawa T, Kobayashi M, Kamiya Y, Abe H, Sakurai A (1991) Studies on the action of the plant growth regulators BX-112, DOCHC, and DOCHC-Et. In: Takahashi N, Phinney BO, MacMillan J (eds) Gibberellins. Springer-Verlag, NewYork, pp 311–319

    Chapter  Google Scholar 

  • Nilsen ET, Orcutt DM (1996) Physiology of plants under stress: abiotic factors. Wiley, New York

    Google Scholar 

  • Ondrasek G (2014) Water scarcity and water stress in agriculture. In: Ahmad P, Wani MR (eds) Physiological mechanisms and adaptation strategies in plants under changing environment. Springer, New York, p 74

    Google Scholar 

  • Rademacher W (2000) Growth retardants: effect of gibberellin biosynthesis and other metabolic pathways. Ann Rev Plant Physiol Plant Mol Biol 51:501–531

    Article  CAS  Google Scholar 

  • Rajasekaran LR, Blake TJ (1999) New plant growth regulators protect photosynthesis and enhance growth under drought of jack pine seedlings. J Plant Growth Regul 18:175–181

    Article  CAS  PubMed  Google Scholar 

  • Sakr WRA (2009) Response of paspalum turfgrass grown in sandy soil to trinexapac-ethyl and irrigation water salinity. J Hortic Sci Ornamental Plants 1:15–26

    Google Scholar 

  • Shahba MA, Alshammary SF, Abbas MS (2012) Effects of salinity on seashore paspalum cultivars at different mowing heights. Crop Sci 52:1358–1370

    Article  CAS  Google Scholar 

  • Shahba MA, Abbas MS, Alshammary SF (2014) Drought resistance strategies of seashore Paspalum cultivars at different mowing heights. HortScience 49:221–229

    Google Scholar 

  • Sharp RE, Wu Y, Voetberg GS, Saab IN, LeNobel ME (2000) Confirmation that abscisic acid accumulation is required for maize primary root elongation at low water potentials. J Exp Bot 45:1743–1751

    Google Scholar 

  • Spollen WG, LeNoble ME, Samuel TD, Bernstein N, Sharp RE (2000) Abscisic acid accumulation maintains maize primary root elongation at low water potentials by restricting ethylene production. Plant Physiol 122:967–976

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  • Torello WA, Rice LA (1986) Effects of NaC1 stress on proline and cation accumulation in salt sensitive and tolerant turfgrasses. Plant Soil 93:241–247

    Article  CAS  Google Scholar 

  • Tseng I-C, Hong C-Y, Yu S-M, Ho T-HD (2013) Abscisic Acid- and stress-induced highly proline-rich glycoproteins regulate root growth in rice. Plant Physiol 163:118–134

    Article  PubMed Central  CAS  PubMed  Google Scholar 

  • Turgeon AJ (2008) Turfgrass management, 8th edn. Prentice Hall, Upper Saddle Brook

    Google Scholar 

  • Wang Z, Huang B, Xu Q (2003) Effects of abscisic acid on drought responses of Kentucky bluegrass. J Amer Soc Hortic Sci 128:36–41

    CAS  Google Scholar 

  • Watschke TL, Prinster MG, Breuninger JM (1992) Plant growth regulators and turfgrass management. In: Waddington DV, Carrow RN, Shearman RC, eds. Turfgrass. Amer Soc Agron, Madison, WI, chap.16

  • Zhang J, Zhang X, Liang J (1995) Exudation rate and hydraulic conductivity of maize roots are enhanced by soil drying and abscisic acid treatment. New Phytol 131:329–336

    Article  CAS  Google Scholar 

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Correspondence to Hosam O. Elansary.

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The work was funded by the Egyptian Department of Missions (2013), Henry Farms Canada, and the Faculty of Agriculture, Alexandria University (2013–2014).

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Communicated by Z.-L. Zhang.

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Elansary, H.O., Yessoufou, K. Growth regulators and mowing heights enhance the morphological and physiological performance of Seaspray turfgrass during drought conditions. Acta Physiol Plant 37, 232 (2015). https://doi.org/10.1007/s11738-015-1986-5

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  • DOI: https://doi.org/10.1007/s11738-015-1986-5

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