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Exogenous Application of Ethrel and Gibberellic Acid Stimulates Physiological Growth of Late Planted Sugarcane with Short Growth Period in Sub-tropical India

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Abstract

Physiological growth of late planted sugarcane crop is restricted by high temperature and a short growth period. This causes considerable reduction in crop and sucrose yields. Improving physiological growth within the short period is, therefore, highly desirable. Two field experiments were undertaken to determine the effect of exogenous applications of Ethrel and gibberellic acid (GA3) on sprouting, shoot population and physiological growth. Sugarcane setts were soaked overnight in Ethrel before planting. Foliar application of GA3 was performed at 90, 120 and 150 days after planting (DAP). Ethrel soaking led to 100% sprouting and high settling population at 20 DAP, due to a significant increase in bud moisture and activities of acid invertase (AI), indole acetic acid oxidase (IAAO), adenosine triphosphatase (ATPase), superoxide dismutase (SOD) and nitrate reductase (NR) activity in vivo. Early sprouting increased the growth period to 245 days compared to 220 days in the unsoaked setts. The applications increased leaf area (57%), leaf area index (76%), leaf area ratio (71%), leaf area duration (48%), biomass duration (52%) and net assimilation rate (69.64%) at the grand growth stage. The changes led to increased shoot numbers (26.3%), internodal numbers stalk−1 (40.74%), internodal length (40%), internodal girth (46.15%) and stalk length (42%) at the harvest stage. The stimulated physiological growth augmented dry matter content, oBrix and purity of cane juice by 24.2, 3 and 0.3%, respectively. The study demonstrates that the induction of higher shoot numbers together with increased leaf area index (LAI) and stalk elongation within a short growth period through Ethrel soaking and gibberellic acid applications is positively associated with enhanced dry matter and sucrose contents.

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References

  • Bakker H (1999) Sugar cane cultivation and management. Kluwer Academic, Plenum Publishers, New York, p 327

    Book  Google Scholar 

  • Beauchamp C, Fridovich I (1971) Super oxide dismutase: improved assays and assays applicable to acrylamide gels. Anal Biochem 44:276–287

    Article  CAS  PubMed  Google Scholar 

  • Bell MJ, Garside AJ (2005) Shoot and stalk dynamics and yield of sugarcane crops in tropical and sub-tropical Queensland, Australia. Field Crops Res 92:231–248

    Article  Google Scholar 

  • Bhullar MS, Saini LK, Kapur ML, Singh S (2002) Effect of Method and Density of Planting on Growth and Yield of Late Planted Sugarcane. Sugar Tech 4(3–4):181–184

    Article  Google Scholar 

  • Bita CE, Gerats T (2013) Plant Tolerance to high temperature in a changing environment: Scientific fundamentals and production of heat stress -tolerant crops. Front Plant Sci 4:273. Doi:10.3389/fpls.2013.00273

    Article  PubMed  PubMed Central  Google Scholar 

  • Bonnett GD, Hewit ML, Glassop D (2006) Effects of high temperature on the growth and composition of sugarcane internodes. Aust J Agric Res 57:1087–1095

    Article  Google Scholar 

  • Bray EA, Bailey-Serres J, Weretilnyk E (2000) Responses to abiotic stresses. In: Gruissem W, Buchannan BB, Jones RL (eds) Biochemistry and molecular biology of plants. American Society of Plant Physiologists, Rockville, pp 1158–1203

    Google Scholar 

  • Dhawan AK, Sahtiya HL, Dendsay JPS (1997) Low germination of sugarcane setts in Indian sub-tropics: Constraints and their management. Indian J SugTech 12:17–21

    Google Scholar 

  • Donaldson RA (2009) Seasons effect on the potential of biomass and sucrose accumulation of some commercial cultivars of sugarcane. PhD Thesis, University of Kwazulu Natal South Africa pp 173

  • Fernandis AC, Benda GTA (1985) Distribution pattern of brix and fibre in primary stalk of sugarcane. Sugarcane 5:8–13

    Google Scholar 

  • Finch-Savage WE, Leubner-Metzger G (2006) Seed dormancy and the control of germination. New Phytol 171:501–523

    Article  CAS  PubMed  Google Scholar 

  • Fischer J, Hodges TK (1959) Monovalent ion stimulated adenosine triphosphatase from oat roots. Plant Physiol 44:385–395

    Article  Google Scholar 

  • Fiske CH, Subbarow Y (1925) The colorimetric determination of phosphorus. J Biol Chem 66:375–400

    CAS  Google Scholar 

  • Gordon SA, Weber, RP (1951) Colorimetric estimation of indole acetic acid. Plant Physiol 26:192–195

  • Guy C (1999) Molecular response of plants to cold shock and cold acclimation. J Mol Microbial Biotechnol 1:231–242

    CAS  Google Scholar 

  • Hasegawa R, Maruyama A (1995) The presence of two types of bcyanoalanine sythase in germinating seeds and their response to ethylene. Physiol Plant 93:713–718

    Article  CAS  Google Scholar 

  • Hatch MD, Glasziou KT (1963) Sugar accumulation cycle in sugarcane II. Relationship of invertase activity to sugar content & growth rate in storage tissue of plants grown in controlled environments. Plant Physiol 38(3):344–348

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Ho WJ, Vasil IK (1983) Somatic embryogenesis in sugarcane (Saccharum officinarum L.) I. The morphology and physiology of callus formation and the ontogeny of somatic embryos. Protoplasm 118(3):169–180

    Article  Google Scholar 

  • Howell SH (1998) Molecular Genetics of plant development. Cambridge Univ Press, Cambridge, p 367

    Google Scholar 

  • Inman-Bamber NG, Smith DM (2005) Water relations in sugarcane and response to water deficits. Field Crops Res 92(2):185–202

    Article  Google Scholar 

  • Jaworski EG (1971) Nitrate reductase assay in intact plant tissue. Biochem Biophys Res Commun 43:1272–1279

    Article  Google Scholar 

  • Kapur R, Duttamajumder SK, Rao KK (2011) A breeder’s perspective on the tiller dynamics in sugarcane. Curr Sci 100(2):183–189

    Google Scholar 

  • Kromer E (2000) Source physiology and assimilate transport: the interaction of sucrose metabolism, starch storage and phloem export in source leaves and effects of sugar status in phloem. Aust J Plant Physiol 27:497–505

    Google Scholar 

  • Kvet J, Ondok JP, Necas J, Jarvis PG (1971) Methods of growth analysis. Plant Photosynthetic Production. The Hague Publisher, The Hague, pp 343–391

    Google Scholar 

  • Lerch GR, Reyes R, Garcia R, Leal P (1977) Crecimiento, desarrollo y variacio´ndelı´ndicerefractome´trico (Brix) en seisvariedades de can˜a de azu´car. Cien. Agric 1:79–105

    Google Scholar 

  • Leuning R, Wang YP, Cromer RN (1991) Model simulations of spatial distributions and daily totals of photosynthesis in Eucalyptus grandis canopies. Oecologia 88:494–503

    Article  CAS  PubMed  Google Scholar 

  • Li YR, Solomon S (2003) Ethephon: a versatile growth regulator for sugarcane industry. Sugar Tech 5:213–223

    Article  CAS  Google Scholar 

  • Li ZG, Lin YR, Lin YK, Lin JZ, Lin SL, Zhou WY (2003) Effects of foliar spray of ethephon on some enzyme activities in stem cells of sugarcane. Sugarcane 9(1):12–18

    Google Scholar 

  • Lingle SE (1999) Sugar metabolism during growth and development in sugarcane internodes. Crop Sci 39:480–486

    Article  CAS  Google Scholar 

  • Liu X, Huang B (2000) Heat stress injury in relation to membrane lipid peroxidation in creeping bentgrass. Crop Sci 40:503–510

    Article  CAS  Google Scholar 

  • Lowry OH, Rosebrough NJ, Farr AL, Randall RJ (1951) Protein measurement with Folin-phenol reagent. J Biol Chem 193:265–275

    CAS  PubMed  Google Scholar 

  • Maddonni GA, Chelle M, Drouet JL, Andrieu B (2001) Light interception of contrasting azimuth canopies under square and rectangular plant spatial distributions: simulations and crop measurements. Field Crops Res 70:1–13

    Article  Google Scholar 

  • Maestri E, Klueva N, Perrotta C, Gulli M, Nguyen HT, Marmiroli N (2002) Molecular genetics of heat tolerance and heat shock proteins in cereals. Plant Mol Biol 48:667–681

    Article  CAS  PubMed  Google Scholar 

  • Meade GP, Chen JGP (1977) Cane Sugar handbook. 10th edn, A Wiley Inter Science Publication, Wiley, New York

    Google Scholar 

  • Moore PH (1980) Additive and non-additive effects of serial applications of GA3 on sugarcane internodal growth. Physiol Plant 49:271–276

    Article  CAS  Google Scholar 

  • Moore PH, Botha FC (2014) Sugarcane: physiology, biochemistry and functional biology. Wiley-Blackwell, New Jersey, pp 716

    Google Scholar 

  • Moore PH, Botha FC, Furbank R, Grof C (1997) Potential for overcoming physio biochemical limits to sucrose accumulation intensive sugarcane production: Meeting the challenges beyond 2000. CAB Int Wallingford, UK 141–155

  • Nagar PK (1995) Changes in abscisic acid, phenols and indole acetic acid in bulbs of tuberose (Polianthes tuberosa L.) during dormancy and sprouting. Sci Hortic 63:77–82

    Article  CAS  Google Scholar 

  • Nelson NA (1944) Photometric adaptation of Somogyi method for the determination of glucose. J Biol Chem 153:315–380

    Google Scholar 

  • Oh-e I, Saitoh K, Kuroda T (2007) Effects of high temperature on growth, yield and dry-matter production of rice grown in the paddy field. Plant Prod Sci 10:412–422

    Article  Google Scholar 

  • Pribil M, Hermann SR, Dun GD (2007) Altering sugarcane shoot architecture through genetic engineering: Prospects for increasing cane and sugar yield. Proc Aust Soc Sugar Cane Technol 29:251–257

    Google Scholar 

  • Rae AL, Bonnett GD, Karno (2006) Understanding stem development and sucrose accumulation to increase CCS. Proc Aust Soc Sugarcane Technol 28:327–335

    Google Scholar 

  • Rai RK, Singh P, Srivastava AK, Suman A (2008) Modulation of low-temperature-induced biochemical changes in bud and root band zones of sugar cane sets by potassium, zinc, and Ethrel for improving sprouting. J Agric Food Chem 56(24):11976–11982

    Article  CAS  PubMed  Google Scholar 

  • Raji IY, Siemens JC, Bullock DG (1999) Growth analysis of soybean under no-tillage and conventional tillage systems. Agron J 91:928–933

    Article  Google Scholar 

  • Rao M, Krishnamurti M, Weerthaworn P (2005) Beneficial effects of ethephon on yields and sucrose productivity of sugarcane cultivars in Thailand. Sugar Tech 7:48–52

    Article  CAS  Google Scholar 

  • Roe JH, Papadopoulos NM (1954) The determination of fructose-6-phosphate and fructose 1,6-diphosphate. J Biol Chem 210–703

  • Savchenko G, Klyuchareva E, Abramchik L, Serdyuchenko E (2002) Effect of periodic heat shock on the inner membrane system of etioplasts. Russ J Plant Physiol 49:349–359

    Article  CAS  Google Scholar 

  • Sehgal JL, Mandal DR, Mandal C, Vadivelu S (1990) Agro-ecological regions of India. NBSS & LUP, Nagpur

    Google Scholar 

  • Shimabuku MM, Kudo M, Tamaki K (1980) The influence of growth parameters and climatic factors on efficiencies of solar energy utilization in sugarcane. In: Lopez MB, Madrazo CM(eds.), Proc Int Soc Sugar Cane Technol Manila, Philippines pp 526–533

  • Singh A (2000) Influence of seed rates and row spacing’s on growth and yield of late planted cane. Sugar Tech 2(3):49–50

    Article  Google Scholar 

  • Singh I, Rai RK, Solomon S, Shrivastava AK (2003) Role of Indole-3-Acetic Acid in sprouting of subterranean buds in winter initiated sugarcane ratoon. Sugar Tech 5:181

    Article  CAS  Google Scholar 

  • Snedecor GW, Cochran WG (1967) Statistical Methods. Oxford and IBH Publ, India pp 593

  • Somogyi MA (1945) New reagent for determining sugar. J Biol Chem 16061

  • Srivastava AK, Mahindra RK (2012) Sugarcane production: impact of climate change and its mitigation. Biodiversitas 13(4):214–227

    Article  Google Scholar 

  • Swain T, Hillis WE (1999) The phenolic constituents of Prunus domestica I. The quantitative analysis of phenolic constituent. J Sci Food Agric 10:63–68

    Article  Google Scholar 

  • Takahashi N, Yamaguchi I, Yamane H (1986) Gibberellins. In: Takahashi N (ed) Chemistry of Plant Hormones. CRC Press, Boca Raton, pp 57–151

    Google Scholar 

  • van Dillewijn C (1952) Botany of Sugarcane. The Chronica Botanica Co Waltham Massachusetts pp 371

  • van Andel OM (1973) Morphological effects on vegetative plants of Poa pratensis L. of 6 Z-azauracil, 2-chloro ethyl phosphonic acid and 2 chloroethyl trimethyl ammonium chloride and their interaction with gibberellic acid. J Exp Bot 24:245–257

    Article  Google Scholar 

  • van Antwerpen R (1999) Sugarcane root growth and relationships to above-ground biomass. Proc. South Afr Sug Technol Ass 73:89–95

    Google Scholar 

  • Wahid A, Close TJ (2007) Expression of dehydrins under heat stress and their relationship with water relations of sugarcane leaves. Biol Plant 51:104–109

    Article  CAS  Google Scholar 

  • Yadav RL, Prasad SR (1988) Moisture use characteristics of sugarcane genotypes under different available soil moisture regimes in alluvial entisols. J Agric Sci 110:5–11

    Article  Google Scholar 

  • Yadav RL, Kumar R, Verma RS (1991) Effect of planting technique and planting density on yield of late planted sugarcane in North Central India. Exp Agric 27(03):281–286

    Article  Google Scholar 

  • Yadav RL, Singh RV, Singh R, Srivastava VK (1997) Effect of planting geometry and fertilizer N on nitrate leaching, NUE and sugarcane yield. Trop Agric 74:115–120

    Google Scholar 

  • Yang T, Davies PJ, Reid JB (1996) Genetic dissection of relative roles of auxin and gibberellin in the regulation of stem elongation in intact brown peas. Plant Physiol 110:1029–1034

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Ye YP, Tang J, Li YR, Li YJ, Yang LT (2003) Effects of ethephon on ATPase and invertase activities in internodes of sugarcane at boom growth stage. Chin J Trop Crops 23 (2):66–71

    Google Scholar 

  • Zamski E, Schaffer AA (1996) Photoassimilate distribution in plants and crops: source–sink relationships. CRC Press, Boca Raton, p 928

    Google Scholar 

  • Zhang XJ, Li YR, Lin YK (2001) Effects of different concentrations of ethephon soaking seed cane on plant growth and some physiological and biochemical characters in sugarcane. Sugar Crops China 3:9–13

    Google Scholar 

  • Zhao ZG, Chen GC, Zhang CL (2001) Interaction between reactive oxygen species and nitric oxide in drought induced abscisic acid synthesis in root tips of wheat seedlings. Aust J Plant Physiol 28:1055–1061

    CAS  Google Scholar 

Download references

Acknowledgements

We thank our Director, ICAR-IISR, for his support and encouragement. We are also thankful to University Grants Commission (UGC), New Delhi, India for their financial support under UGC Junior Research Fellowship (JRF) scheme. We extend our sincere thanks to Mr Abhilash Kumar Shukla and Mr CP Singh, farm manager for providing the weather data and farm facilities. The help provided by Mr Ram Singh, Dr Namita Arya, Mr Chatarpal, Mr. Santosh, Mr Surender and Mr Raj Kumar during the field experiment and the studies in the laboratory is duly acknowledged.

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Rai, R.K., Tripathi, N., Gautam, D. et al. Exogenous Application of Ethrel and Gibberellic Acid Stimulates Physiological Growth of Late Planted Sugarcane with Short Growth Period in Sub-tropical India. J Plant Growth Regul 36, 472–486 (2017). https://doi.org/10.1007/s00344-016-9655-5

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