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Plant sciences, sustainable farming systems and food quality
RESEARCH ARTICLE

Effect of defoliation interval on water-soluble carbohydrate and nitrogen energy reserves, regrowth of leaves and roots, and tiller number of cocksfoot (Dactylis glomerata L.) plants

L. R. Turner A C , D. J. Donaghy A , P. A. Lane B and R. P. Rawnsley A
+ Author Affiliations
- Author Affiliations

A Tasmanian Institute of Agricultural Research, University of Tasmania, PO Box 3523, Burnie, Tas. 7320, Australia.

B University of Tasmania, Hobart, Tas. 7000, Australia.

C Corresponding author. Email: wilsonlr@utas.edu.au

Australian Journal of Agricultural Research 57(2) 243-249 https://doi.org/10.1071/AR05130
Submitted: 27 April 2005  Accepted: 15 September 2005   Published: 24 February 2006

Abstract

This study investigated the influence of leaf stage-based defoliation interval on water-soluble carbohydrate and nitrogen energy reserve status, regrowth of leaves and roots, and tiller number of cocksfoot (Dactylis glomerata L.) cv. Kara plants up to 24 days (3.5-leaf stage) following defoliation. Treatments were based on defoliation intervals of 1-, 2-, and 4-leaf stages of regrowth, with treatments terminated when the 1-leaf defoliation interval had been completed 4 times, the 2-leaf interval 2 times, and the 4-leaf interval once.

Selected plants were destructively harvested prior to commencement of treatments (H0), immediately following cessation of treatments (H1), and at 5 days (H2), 10 days (H3), and 24 days (H4) following H1. Leaf, root, and tiller dry matter yield were determined at each harvest event, as well as tiller number/plant. Levels of water-soluble carbohydrate and nitrogen reserves in plant stubble and roots were determined at each destructive harvest. Initiation and death of daughter tillers were monitored from H0 to the completion of the study.

More frequent defoliation of cocksfoot plants resulted in reduced water-soluble carbohydrate assimilation and therefore leaf, root, and tiller dry matter accumulation during the subsequent recovery period. Defoliation at the 1-leaf stage severely limited the regrowth potential of cocksfoot plants, whereas defoliation at the 2-leaf stage was adequate for plant recovery, but did not maximise regrowth. The results of this study showed that a defoliation interval based on the 4-leaf stage maximises water-soluble carbohydrate reserves, tillering, and leaf and root dry matter yields. The priority sequence for allocation of water-soluble carbohydrate reserves followed the order of leaf growth, root growth, and tillering during the regrowth period. Nitrogen energy reserves were found to play a minor role in the regrowth of cocksfoot plants following defoliation.

Additional keyword: leaf stage.


Acknowledgments

The authors acknowledge that a partial data set from this study was presented in poster form at the XX International Grassland Congress in Dublin, Ireland, June 2005. The authors acknowledge financial support provided by Dairy Australia and technical assistance provided by Phil Andrews, Andrew Measham, and Andrew Turner.


References


Alberda T (1966) The influence of reserve substances on dry-matter production after defoliation. ‘Proceedings of the 10th International Grassland Congress’. Helsinki, Finland. (Finnish Grassland Association: Helsinki, Finland)


Barker DJ, Chu ACP, Korte CJ (1985) Some effects of spring defoliation and drought on perennial ryegrass swards. Proceedings of the New Zealand Grassland Association 46, 57–63. open url image1

Bell CC, Ritchie IM (1989) The effect of frequency and height of defoliation on the production and persistence of ‘Grasslands Matua’ prairie grass. Grass and Forage Science 44, 245–248. open url image1

Davidson JL, Milthorpe FL (1966) The effect of defoliation on the carbon balance in Dactylis glomerata. Annals of Botany 30, 185–198. open url image1

Davies A (1965) Carbohydrate levels and regrowth in perennial ryegrass. Journal of Agricultural Science 65, 213–221. open url image1

Dilz K (1966) The effect of nitrogen nutrition and clipping frequency on regrowth of perennial ryegrass. ‘Proceedings of the 10th International Grassland Congress’. Helsinki, Finland. (Finnish Grassland Association: Helsinki, Finland)


Donaghy DJ, Fulkerson WJ (1998) Priority for allocation of water-soluble carbohydrate reserves during regrowth of Lolium perenne. Grass and Forage Science 53, 211–218.
Crossref | GoogleScholarGoogle Scholar | open url image1

Fulkerson WJ, Donaghy DJ (2001) Plant soluble carbohydrate reserves and senescence—key criteria for developing an effective grazing management system for ryegrass-based pastures: a review. Australian Journal of Experimental Agriculture 41, 261–275.
Crossref | GoogleScholarGoogle Scholar | open url image1

Fulkerson WJ, Slack K (1994) Leaf number as a criterion for determining defoliation time for Lolium perenne. 1. Effect of water-soluble carbohydrates and senescence. Grass and Forage Science 49, 373–377. open url image1

Fulkerson WJ, Slack K (1995) Leaf number as a criterion for determining defoliation time for Lolium perenne. 2. Effect of defoliation frequency and height. Grass and Forage Science 50, 16–20. open url image1

Fulkerson WJ, Slack K, Lowe KF (1994) Variation in the response of Lolium genotypes to defoliation. Australian Journal of Agricultural Research 45, 1309–1317.
Crossref | GoogleScholarGoogle Scholar | open url image1

Gonzalez B, Boucaud J, Salette J, Langlois J, Duyme M (1989) Changes in stubble carbohydrate content during regrowth of defoliated perennial ryegrass (Lolium perenne L.) on two nitrogen levels. Grass and Forage Science 44, 411–415. open url image1

Hume DE (1991) Effect of cutting on production and tillering in prairie grass (Bromus willdenowii Kunth) compared to two ryegrass (Lolium) species. 1. Vegetative plants. Annals of Botany 67, 533–541. open url image1

Jacques WA (1937) The effect of different rates of defoliation on the root development of certain grasses. New Zealand Journal of Science and Technology 19, 441–450. open url image1

Mitchell KJ (1953) Influence of light and temperature on the growth of ryegrass (Lolium spp.). I. Pattern of vegetative development. Physiologia Plantarum 6, 21–46. open url image1

Ourry A, Bigot J, Boucaud J (1989a) Protein mobilisation from stubble and roots, and proteolytic activities during post-clipping regrowth of perennial ryegrass. Journal of Plant Physiology 134, 298–303. open url image1

Ourry A, Boucaud J, Salette J (1988) Nitrogen mobilisation from stubble and roots during regrowth of defoliated perennial ryegrass. Journal of Experimental Botany 39, 803–809. open url image1

Ourry A, Gonzalez B, Bigot J, Boucaud J, Salette J (1989) Nitrogen and carbohydrate mobilisations during regrowth of defoliated Lolium perenee L. ‘Proceedings of the 16th International Grassland Congress’. Nice, France. (Association Francaise pour la Production Fouragere: Versailles Cedex, France)


Rawnsley RP, Donaghy DJ, Fulkerson WJ, Lane PA (2002) Changes in the physiology and feed quality of cocksfoot (Dactylis glomerata L.) during regrowth. Grass and Forage Science 57, 203–211.
Crossref | GoogleScholarGoogle Scholar | open url image1

Smith D (1969) Removing and analysing total non-structural carbohydrates from plant tissue. Wisconsin Agricultural Experimental Station, Research Report 41, 1–11. open url image1

Smith D (1974) Growth and development of timothy tillers as influenced by level of carbohydrate reserves and leaf area. Annals of Botany 38, 595–606. open url image1

Steel, RGD ,  and  Torrie, JH (1960). ‘Principles and procedures of statistics.’ (McGraw-Hill Book Company: New York)

Sullivan JT, Sprague VG (1943) Composition of the roots and stubble of perennial ryegrass following partial defoliation. Plant Physiology 18, 656–670. open url image1

Sweeney RA, Rexroad PR (1987) Comparison of LECO FP-228 ‘Nitrogen Determinator’ with AOAC copper catalyst Kjeldahl method for crude protein. Journal - Association of Official Analytical Chemists 70, 1027. open url image1

Troughton, A (1957). ‘The underground organs of herbage grasses.’ (Commonwealth Agricultural Bureux: Farnham Royal, UK)

Van Loo EN (1992) Tillering, leaf expansion and growth of plants of two cultivars of perennial ryegrass grown using hydroponics at two water potentials. Annals of Botany 70, 511–518. open url image1

Vartha EW, Bailey RW (1980) Soluble carbohydrate content and composition in above- and below-ground tissues of Westerwolds ryegrass during winter. New Zealand Journal of Agricultural Research 23, 93–96. open url image1

White LM (1973) Carbohydrate reserves of grasses: a review. Journal of Range Management 26, 13–18. open url image1

Wilson DB, Robson MJ (1970) Regrowth of S24 ryegrass and its relation to yield measurement of grazed swards. Journal of the British Grasslands Society 25, 220–227. open url image1