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Effects of Drought Stress at Early Growth Stage on Response of Sugarcane to Different Nitrogen Application

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Abstract

The efficiency of nitrogen application may decline under the impact of drought stress at early growth stage. However, the information about the effects of nitrogen on sugarcane growth, yield and quality under such condition is still limited. In our study, the response of sugarcane to different nitrogen application levels under water stress condition was investigated. The experiment was conducted with four nitrogen application levels (0, 5.7, 11.4, 17.1 g pot−1) under two water regimes (well-watered at field capacity and drought stress at 1/3 available water). The result showed recovery of photosynthetic traits after re-watering from drought stress period at early growth stage. Drought stress significantly reduced the plant height, plant diameter, total leaves area, dry matter accumulation and sugar yield, but increased the concentration of Cl, NH4 + and K+ in sugar juice. Applying nitrogen had positive effects on growth, agronomical and sugar parameters with lower juice ion concentrations. However, the efficiency of nitrogen fertilization was declined under drought stress condition.

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Abbreviations

A max :

Potential photosynthetic rate

DAT:

Days after transplanting

gs:

stomatal conductance

NL:

specific leaf nitrogen content

NUE:

biomass nitrogen use efficiency

WUE:

biomass water use efficiency

References

  • Akinci, S., and D.M. Losel. 2012. Plant water-stress response mechanisms. In Rahman I.M.M., ed. ISBN: 978-953-307-963.9, In Tech, available from http://www.interchopen. com/books/water-stress/plant-water-stress-response-mechanisms.

  • Asokan, S., A.N. Murthi, and M. Mahadevaswamy. 2005. Effect of nitrogen levels and row spacing on yield, CCS and nitrogen uptake in different sugarcane varieties. Sugar Tech 7(2&3): 44–47.

    Article  Google Scholar 

  • Barbosa, A.M., K.A. Guidorizi, T.A. Catuchi, T.A. Marques, R.V. Ribeiro, and G.M. Souza. 2015. Biomass and bioenergy partitioning of sugarcane plants under water deficit. Acta Physiologiae Plantarum 37: 142. https://doi.org/10.1007/s11738-015-1887-7.

    Article  Google Scholar 

  • Basnayake, J., P.A. Jackson, N.G. Inman-Bamber, and P. Lakshmanan. 2012. Sugarcane for water-limited environments. Genetic variation in cane yield and sugar content in response to water stress. Journal of Experimental Botany 63(16): 6023–6033. https://doi.org/10.1093/jxb/ers251.

    Article  CAS  PubMed  Google Scholar 

  • Begum, M.K., and M.S. Islam. 2012. Effect of drought stress on yield and yield components of sugarcane. Journal of Agroforestry and Environment 6(1): 105–109.

    Google Scholar 

  • Bologna-Campbell, I., H.C.J. Franco, A.C. Vitti, C.E. Faroni, M.C.G. Costa, and P.C.O. Trivelin. 2012. Impact of nitrogen and sulphur fertilisers on yield and quality of sugarcane plant crop. Sugar Tech 15(4): 424–428.

    Article  Google Scholar 

  • Dinh, H.T., K. Watanabe, H. Takaragawa, M. Nakabaru, and Y. Kawamitsu. 2017. Photosynthetic response and nitrogen use efficiency of sugarcane under drought stress conditions. Plant Production Science. https://doi.org/10.1080/1343943X.2017.1371570.

    Google Scholar 

  • Du, Y.C., Y. Kawamitsu, A. Nose, S. Hiyane, S. Murayama, K. Wasano, and Y. Uchida. 1996. Effects of water stress on carbon exchange rate and activities of photosynthetic enzymes in leaves of sugarcane (Saccharum sp.). Australian Journal of Plant Physiology 23: 719–726.

    Article  CAS  Google Scholar 

  • Ethan, S., O. Olagoke, and A. Yunusa. 2016. Effect of deficit irrigation on growth and yield of sugarcane. Direct Research Journal of Agriculture and Food Science 4(6): 122–126.

    Google Scholar 

  • Ghannoum, O. 2009. C4 photosynthesis and water stress. Annals of Botany 103(4): 635–644.

    Article  CAS  PubMed  Google Scholar 

  • Graça, J.P., F.A. Rodrigues, J.R.B. Farias, M.C.N. Oliveira, C.B. Hoffmann-Campo, and S.M. Zingaretti. 2010. Physiological parameter in sugarcane cultivars submitted to water deficit. Brazilian Journal of Plant Physiology 22(3): 189–197.

    Article  Google Scholar 

  • Gupta, A.P., and B. Prasad. 1971. Studies on composition of cane juice. I. Effect of N manuring on various inorganic nonsugars in the juice of plant and ratoon crops. Proceeding of the IV Joint Convention of Sugar Technologists’ Association 4: 81–90.

    Google Scholar 

  • Hemaprabha, G., R. Nagarajan, and S. Alarmelu. 2004. Response of sugarcane genotypes to water deficit stress. Sugar Tech 6(3): 165–168.

    Article  CAS  Google Scholar 

  • Ilkaee, M.N., M. Shomeili, M. Banitorfizadeh, B. Mirshekarnejad, F. Golzardi, S.K.H. Ashrafi, and A. Baghdadi. 2016. Study the affiliation of SPAD and leaf nitrogen with total chlorophyll in Sugarcane. International Journal of Advanced Life Sciences 9(1): 19–23.

    CAS  Google Scholar 

  • Jangpromma, N., P. Songsri, S. Thammasirirak, and P. Jaisil. 2010. Rapid assessment of chlorophyll content in sugarcane using a SPAD chlorophyll meter across different water stress conditions. Asian Journal of Plant Sciences 9(6): 368–374.

    Article  CAS  Google Scholar 

  • Jangpromma, N., S. Thammasirirak, P. Jaisil, and P. Songsri. 2012. Effects of drought and recovery from drought stress on above ground and root growth, and water use efficiency in sugarcane (Saccharum officinarum L.). Australian Journal of Crop Science 6(8): 1298–1304.

    Google Scholar 

  • Jaiphong, T., J. Tominaga, K. Watanabe, M. Nakabaru, H. Takaragawa, R. Suwa, M. Ueno, and Y. Kawamitsu. 2016. Effects of duration and combination of drought and flood conditions on leaf photosynthesis, growth and sugar content in sugarcane. Plant Production Sciences 19: 427–437.

    Article  CAS  Google Scholar 

  • Kawamitsu, Y., R.K. Singh, B.J. Nelson, Y. Tamaki, and S. Murayama. 1999. Effects of nitrogen supply on growth characteristics and leaf photosynthesis in sugarcane. Academic report of the Faculty of Agriculture, University of the Ryukyus 46: 1–14.

    CAS  Google Scholar 

  • Kramer, P.J., and J.S. Boyer. 1995. Water relations of plants and soils. Cambridge: Academic Press.

    Google Scholar 

  • Lakshmanan, P., and N. Robinson. 2014. Stress physiology: Abiotic stress. In Sugarcane: Physiology, Biochemistry and Functional Biology, ed. P. Moore and F. Botha. Hoboken: Wiley.

    Google Scholar 

  • Larcher, W. 2003. Plant Under Stress. In Physiological Plant Ecology, 4th ed, ed. W. Larcher, 401–416. Stuttgart: Verlag Eugen Ulmer.

    Chapter  Google Scholar 

  • Madhuri, K.V.N., M.H. Kumar, and N.V. Sarala. 2011. Influence of higher doses of nitrogen on yield and quality of early maturing sugarcane varieties. Sugar Tech 13(1): 96–98.

    Article  Google Scholar 

  • Matsuoka, M. 2006. Sugarcane cultivation and sugar industry in Japan. Sugar Tech 8(1): 3–9.

    Article  Google Scholar 

  • Mederios, D.B., E.C.D. Silva, R.J.M.C. Nogueira, M.M. Teixira, and M.S. Buckeride. 2013. Physiological limitations in two sugarcane varieties under water suppression and after recovering. Theoretical and Experimental Plant Physiology 25(3): 213–222.

    Article  Google Scholar 

  • Millard, P., and D.K.L. Mackerron. 1986. The effects of nitrogen application on growth and nitrogen distribution within the potato canopy. Annals of Applied Biology 109: 427–437.

    Article  Google Scholar 

  • Nonami, H. 1998. Plant water relations and control of cell elongation at low water potentials. Journal of Plant Research 111: 373–382.

    Article  Google Scholar 

  • Rahman, A.A.A., A.F. Shalaby, and M.O. El Monayeri. 1971. Effect of moisture stress on metabolic products and ions accumulation. Plant and Soil 34: 65–90.

    Article  Google Scholar 

  • Robertson, M.J., N.G. Inman-Bamber, R.C. Muchow, and A.W. Wood. 1999. Physiology and productivity of sugarcane with early and mid-season water deficit. Field Crops Research 64: 211–227.

    Article  Google Scholar 

  • Shekinah, D.E., B. Sundara, and P. Rakkiyappan. 2012. Relative significance of N nutrition on yield, quality and ethanol in sugarcane (Saccharum species hybrid) plant: ratoon system. Sugar Tech 14(2): 134–137.

    Article  CAS  Google Scholar 

  • Singh, S. and K.M. Naidu. 1985. Effect of soil moisture stress on juice quality of early and late maturing varieties of sugarcane. Presented in National Seminar on Plant Physiology, Indian Society of Plant Physiology held at Varanasi, pp. 87.

  • Singh, N.P., R.D.N. Verma, R.G. Singh, and S.B. Singh. 2000. Effect of plant geometry and nitrogen level on yield and juice quality of sugarcane. Sugar Tech 2(1&2): 40–43.

    Article  Google Scholar 

  • Sinha, S.K. 1978. Influence of potassium on tolerance to stress. In Potassium in soils and crops, ed. G.S. Sekhon. New Delhi: Potash Research Institute.

    Google Scholar 

  • Tamaki, Y., and Y. Kawamitsu. 1998. Effects of soil nitrogen treatments on ion contents in stem and leaves of sugarcane. Okinawa Agriculture 33(1): 15–21. (In Japanese).

    Google Scholar 

  • Tangguilig, V.V., E.B. Yambao, J.C.O’. Toole, and S.K. De Datta. 1987. Water stress effects on leaf elongation, leaf water potential transpiration and nutrient uptake of rice, maize and soybean. Plant and Soil 103: 155–168.

    Article  Google Scholar 

  • Thangavelu, S., K.C. Rao, and P. Rakkiyappan. 2003. Sodium content in juice of sugarcane clones and its relationship with other traits at different stages of maturity. Sugar Tech 5(1&2):85–88.

    Article  CAS  Google Scholar 

  • Thorburn, P.J., J.S. Biggs, E.A. Meier, M. Empson, J. Palmer, K. Verburg, and D.M. Skocaj. Increasing nitrogen use efficiency in Australian sugarcane crops: Insights from simulation modeling. In Bell, M.J. 2014. A review of nitrogen use efficiency in sugarcane. Sugar Research Australia Ltd. http://elibrary.sugarreserach.com.au, pp. 183–220.

  • Watanabe, K., M. Nakabaru, E. Taiza, M. Ueno, and Y. Kawamitsu. 2016. Relationships between nutrients and sucrose concentrations in sugarcane juice and use of juice analysis for nutrient diagnosis in Japan. Plant Production Science 19(2): 215–222.

    Article  CAS  Google Scholar 

  • Wiedenfeld, R.P. 2000. Water stress during different sugarcane growth periods on yield and response to N fertilization. Agricultural Water Management 43: 173–182.

    Article  Google Scholar 

  • Wiedenfeld, R.P. 1995. Effects of irrigation and N fertilizer application on sugarcane yield and quality. Field Crops Research 43: 101–108.

    Article  Google Scholar 

  • Zhao, D., B. Glaz, and J.C. Comstock. 2010. Sugarcane response to water-deficit stress during early growth on organic and sand soils. American Journal of Agricultural and Biological Science 5: 403–414.

    Article  Google Scholar 

  • Zingaretti, S.M., F.A. Rodrigues, J.P. Graca, L.M. Pereira, and M.V. Lourenco. 2012. Sugarcane response at water deficit conditions. In Water stress, ed. P. Rhaman. Rijeka: InTech. https://doi.org/10.5772/30986.

    Google Scholar 

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Correspondence to Yoshinobu Kawamitsu.

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Dinh, H.T., Watanable, K., Takaragawa, H. et al. Effects of Drought Stress at Early Growth Stage on Response of Sugarcane to Different Nitrogen Application. Sugar Tech 20, 420–430 (2018). https://doi.org/10.1007/s12355-017-0566-y

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