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RESEARCH ARTICLE

Nitrogen fertiliser requirements of high-yielding irrigated transgenic cotton

Ian J. Rochester A and Michael Bange A B
+ Author Affiliations
- Author Affiliations

A CSIRO Agriculture and Food, Locked Bag 59, Narrabri, NSW 2390, Australia.

B Corresponding author. Email: Michael.Bange@csiro.au

Crop and Pasture Science 67(6) 641-648 https://doi.org/10.1071/CP15278
Submitted: 23 July 2015  Accepted: 20 January 2016   Published: 28 June 2016

Abstract

Nitrogen (N) fertiliser is almost universally used in high-yielding irrigated cotton, but it is not used efficiently in many instances. Predicting the economic optimal amount of N fertiliser is difficult and often little N fertiliser is required where situations have provided access to N through excessive N fertiliser being applied to previous cotton crops, conditions promoting significant N mineralisation, or if legume rotation crops were grown. The economic optimum N fertiliser rate (Nopt – where the marginal cost of N fertiliser (at $1.50 kg–1 N) equalled the return on cotton lint (at $2.20 kg–1) was determined in eight experiments conducted over 8 years; Nopt ranged from 0 to 248 kg N ha–1, lint yields ranged from 1.3 to 3.4 t ha–1, crop N uptake ranged from 96 to 321 kg N ha–1 and apparent N fertiliser recovery (calculated by dividing the difference in crop N uptake between N-fertilised and unfertilised plots by the N fertiliser applied) ranged from 20% to 98% of N applied. A positive response to N fertiliser application in lint yield was evident in 7 of the 8 years. Both lint yield and crop N uptake were positively correlated with pre-sowing soil nitrate concentration. Cotton that yielded 1.4 t lint ha–1 derived 78% of crop N from the soil, whereas at 3.4 t lint ha–1, 69% of crop N was derived from soil; this indicated the importance of N supplied from the soil and the relatively lesser reliance on the N fertiliser applied, even for very high-yielding cotton. A multiple regression model, using the parameters of pre-sowing soil nitrate, crop N uptake and lint yield, more accurately represented the data generated in this study in estimating the economic optimum N fertiliser rate (r2 = 0.80).

Additional keywords: fertiliser use-efficiency, nitrogen nutrition.


References

Bauer PJ, Camberto JJ, Roach SH (1993) Cotton yield and fiber quality response to green manures and nitrogen. Agronomy Journal 85, 1019–1023.
Cotton yield and fiber quality response to green manures and nitrogen.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK2cXisVensrk%3D&md5=87297b8ac096279c7af2f4c4e634802bCAS |

Bronson K (2008) Nitrogen use efficiency of cotton varies with irrigation system. Better Crops with Plant Food 92, 20–22.

Constable GA, Rochester IJ (1988) Nitrogen application to cotton on clay soil: timing and soil testing. Agronomy Journal 80, 498–502.
Nitrogen application to cotton on clay soil: timing and soil testing.Crossref | GoogleScholarGoogle Scholar |

Deutscher S, Wilson LJ, Mensah RK (2005) ‘Integrated pest management guidelines for cotton production systems in Australia.’ (Australian Cotton Cooperative Research Centre: Narrabri)

Dowling D (2015) Yield records broken… again. The Australian Cottongrower 36, 6–7.

Janat M (2008) Response of cotton to irrigation methods and nitrogen fertilization: yield components, water-use efficiency, nitrogen uptake, and recovery. Communications in Soil Science and Plant Analysis 39, 2282–2302.
Response of cotton to irrigation methods and nitrogen fertilization: yield components, water-use efficiency, nitrogen uptake, and recovery.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1cXhtVaisLfE&md5=5cc5dac306c275ac8ab8e87129677115CAS |

Macdonald B, Rochester I, Nadelko A (2015) High yielding cotton produced without excessive nitrous oxide emissions. Agronomy Journal 107, 1–9.

Ockerby SE, Lyons DJ, Keefer GD, Blamey FPC, Yule DF (1993) Irrigation frequency and nitrogen fertilizers modify cotton yield at Emerald, Central Queensland. Australian Journal of Agricultural Research 44, 1389–1402.
Irrigation frequency and nitrogen fertilizers modify cotton yield at Emerald, Central Queensland.Crossref | GoogleScholarGoogle Scholar |

Payne RW, Murray DA, Harding SA, Baird DB, Soutar DM (2011) ‘An introduction to Genstat for Windows.’ 14th edn. (VSN International: Hemel Hempstead, UK)

Rochester IJ (2003) Estimating nitrous oxide emissions from flood-irrigated alkaline grey clays. Australian Journal of Soil Research 41, 197–206.
Estimating nitrous oxide emissions from flood-irrigated alkaline grey clays.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3sXktFKisrw%3D&md5=04f5b241dad2ae85401777b479acb1acCAS |

Rochester IJ (2011) Assessing internal crop nitrogen use efficiency in high-yielding irrigated cotton. Nutrient Cycling in Agroecosystems 90, 147–156.
Assessing internal crop nitrogen use efficiency in high-yielding irrigated cotton.Crossref | GoogleScholarGoogle Scholar |

Rochester IJ (2012) Using seed nitrogen concentration to estimate crop N use efficiency in high-yielding irrigated cotton. Field Crops Research 127, 140–145.
Using seed nitrogen concentration to estimate crop N use efficiency in high-yielding irrigated cotton.Crossref | GoogleScholarGoogle Scholar |

Rochester IJ, Constable GA (2015) Changes in nutrient uptake and nutrient use-efficiency in Australian cotton cultivars released between 1973 and 2006. Field Crops Research 173, 14–21.
Changes in nutrient uptake and nutrient use-efficiency in Australian cotton cultivars released between 1973 and 2006.Crossref | GoogleScholarGoogle Scholar |

Rochester IJ, Constable GA, MacLeod DA (1993) Cycling of fertilizer and cotton crop residue N. Australian Journal of Soil Research 31, 597–609.
Cycling of fertilizer and cotton crop residue N.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK2cXhs1altL0%3D&md5=4c2109279b306713e954dc018079b1c5CAS |

Rochester IJ, Gaynor H, Constable GA, Saffigna PG (1994) Etridiazole may conserve fertilizer N and increase lint yield of irrigated cotton. Australian Journal of Soil Research 32, 1287–1300.
Etridiazole may conserve fertilizer N and increase lint yield of irrigated cotton.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK2MXis1GitL8%3D&md5=e1e12893fc1c5861eedac7d3f7f9ab55CAS |

Rochester IJ, Constable GA, Saffigna PG (1996) Effective nitrification inhibitors may improve fertilizer recovery in irrigated cotton. Biology and Fertility of Soils 23, 1–6.
Effective nitrification inhibitors may improve fertilizer recovery in irrigated cotton.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK28Xmtlygsrc%3D&md5=969344d0f3a0a85562e8c2154120eb0dCAS |

Rochester IJ, Peoples MB, Constable GA (2001a) Estimation of the N fertilizer requirement of cotton grown after legume crops. Field Crops Research 70, 43–53.
Estimation of the N fertilizer requirement of cotton grown after legume crops.Crossref | GoogleScholarGoogle Scholar |

Rochester IJ, Peoples MB, Hulugalle NR, Gault RR, Constable GA (2001b) Using legumes to enhance nitrogen fertility and improve soil condition in cotton cropping systems. Field Crops Research 70, 27–41.
Using legumes to enhance nitrogen fertility and improve soil condition in cotton cropping systems.Crossref | GoogleScholarGoogle Scholar |

Snyder CS, Bruulsema TW, Jensen TL (2007) ‘Greenhouse gas emissions from cropping systems and the influence of fertilizer management – a literature review.’ (International Plant Nutrition Institute: Norcross, GA)

Soil Survey Staff (1996) ‘Keys to soil taxonomy.’ 7th edn. (Natural Resources Conservation Service of USDA: Washington, DC)

Stiller W (2007) Sicot 80BRF. Plant Varieties Journal 20, 125–128.

Stiller W (2008) Sicot 71BRF. Plant Varieties Journal 21, 194–197.

Stiller W (2010) Sicot 74BRF. Plant Varieties Journal 23, 143–146.

Systat Software Systems (2004) SigmaPlot for Windows. Version 6.00. San Jose, CA, USA.

Ward WT, McTainsh G, McGarry D, Smith KJ (1999) ‘The soils of the Agricultural Research Station at “Myall Vale”, near Narrabri, NSW, with data analysis by fuzzy k-means.’ Technical Report 21/99. (CSIRO Land and Water: Canberra, ACT)

Welsh J, Powell J, Scott F (2015) Optimising nitrogen fertiliser in high yielding irrigated cotton: A benefit-cost analysis and the feasibility of participation in the ERF. Australasian Farm Business Management Network Journal 12, 51–69.

Zhang Y, Hu W, Gao Y, Yao Y, Tang M, Hu G (2008) Fertilising irrigated cotton for high yield and high nitrogen use efficiency. Better Crops with Plant Food 92, 6–7.