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RESEARCH ARTICLE

Seasonal variation in the quality of a lucerne-based pasture and its relationship with morphological and maturity estimates

C. F. Machado A B , S. T. Morris A C , J. Hodgson A , C. Matthew A and N. Auza B
+ Author Affiliations
- Author Affiliations

A College of Sciences, Massey University, Private Bag 11222, Palmerston North 4442, New Zealand.

B Facultad de Ciencias Veterinarias (UNCPBA-Tandil), Pinto 399, Tandil 7000, Argentina.

C Corresponding author. Email: s.t.morris@massey.ac.nz

Australian Journal of Experimental Agriculture 47(5) 575-582 https://doi.org/10.1071/EA05167
Submitted: 1 July 2005  Accepted: 9 August 2006   Published: 13 April 2007

Abstract

To monitor seasonal changes in herbage quality, a lucerne-based pasture (Medicago sativa, Bromus willdenowii and Dactylis glomerata) was sampled in Argentina every 2 weeks for 28 months. The pasture was strip-grazed and samples were taken from the regrowth of a previously grazed strip, ready for regrazing, for which herbage mass was estimated with a calibrated rising plate meter. Each sample was sorted into dead and green components, and the latter subsequently separated into grass and lucerne, and then into lamina plus leaflet and stem plus pseudostem fractions. Similarly, at each sampling date, quantitative maturity indexes – mean stage by count and mean stage by weight – were applied to grasses and lucerne. Samples were also analysed for in vitro dry matter digestibility (DMD), crude protein (CP), fibre and non-structural carbohydrates. The dataset was divided into morphological, maturity and nutritional variables. Analyses of variance by season for both groups of variables were carried out using year as a block. Multiple regression analyses were performed for each season between maturity indices and predictors of herbage quality. DMD, and consequently metabolisable energy (ME), was significantly lower in the autumn and CP was lower in the summer compared with overall averages, which were consistently high throughout the year (overall average of 11.5 MJ ME/kg dry matter and 20.6% CP). The sward had a higher proportion of lucerne during summer and autumn, than winter and spring (averages 59.3 and 48.8%, respectively). The highest leaf : stem ratio (2.82) was during winter and the highest green content (97.5%) was during spring. Grasses had a higher mean stage by count and mean stage by weight during spring–summer, whereas lucerne had a higher mean stage by count and mean stage by weight during summer–autumn. Morphological and maturity estimates predicted satisfactorily the changes in the energy and fibre within season, but CP content was not well predicted in summer or winter. These results provide the basis for tactical grazing practices with further calibration.


Acknowledgements

The senior author gratefully acknowledges The New Zealand Ministry of Foreign Affairs and Trade for providing the scholarship for this study, and the Facultad de Ciencias Veterinarias (UNCPBA), Tandil-Argentina and PICT 0809771 (National Agency of Science and Technology of Argentina) for funding the research. Thanks to all the staff of the Chacra Barrow Experimental Station, Argentina, particularly to Drs J. Duhalde and L. Di Nezio and the anonymous referees for their valuable contribution.


References


AOAC (1960) ‘Official methods of analysis.’ 9th edn. (AOAC: Washington DC) 957 pp.

Astigarraga L, Peyraud JL, Delaby L (2002) Effect of nitrogen fertiliser rate and protein supplementation on the herbage intake and the nitrogen balance of grazing dairy cows. Animal Research 51, 279–293.
Crossref | GoogleScholarGoogle Scholar | open url image1

Berg C, Hill R (1989) Maturity effect on yield and quality of spring harvested orchardgrass forage. Crop Science 29, 944–948. open url image1

Bray RH, Kurtz L (1945) Determination of total, organic, and available forms of phosphorous soils. Soil Science 59, 39–45.
Crossref | GoogleScholarGoogle Scholar | open url image1

Bush L, Burton H (1994) Intrinsic chemical factors in forage quality. In ‘Forage quality, evaluation, and utilization’. (Eds GC Fahey Jnr, M Collins, DR Mertens, LE Moser) pp. 367–405. (The American Society of Agronomy, Crop Science Society of America, and Soil Science Society of America: Madison, WI)

Buxton DR, Fales SL (1994) Plant-environment and quality. In ‘Forage quality, evaluation, and utilization’. (Eds GC Fahey Jnr, M Collins, DR Mertens, LE Moser) pp. 155–199. (The American Society of Agronomy, Crop Science Society of America, and Soil Science Society of America: Madison, WI)

Christian KR, Jones DB, Freer M (1970) Digestibility and chemical composition of fractions of lucerne during spring and summer. Journal of Agricultural Science, Cambridge 75, 213–222. open url image1

Clark EA (1995) Maintaining forage quality by intensive management. Proceedings of the Western Canadian Dairy Seminar 7, 135–146. open url image1

Corson DC, Waghorn GC, Ulyatt MJ, Lee J (1999) NIRS: Forage analysis and livestock feeding. Proceedings of the New Zealand Grassland Association 61, 127–132. open url image1

Di Nezio L, Duhalde J, Jensen M, Bertucci C (2003) Resultados la Unidad Ganadera de vacunos para carne en la zona mixta cerealera. Carpeta De Actualización En Ganadería 8, 52–53. open url image1

Dolling PJ, Latta RA, Ward PR, Robertson MJ, Asseng S (2005) Soil water extraction and biomass production by lucerne in the south of Western Australia. Australian Journal of Agricultural Research 56, 389–404.
Crossref | GoogleScholarGoogle Scholar | open url image1

Earle D, McGowan A (1979) Evaluation and calibration of an automated rising plate meter for estimating dry matter yield of pasture. Australian Journal of Experimental Agriculture and Animal Husbandry 19, 337–343.
Crossref | GoogleScholarGoogle Scholar | open url image1

Elizalde JC, Merchen NR, Faulkner DB (1999) Fractioning of fiber and crude protein in fresh forages during the spring growth. Journal of Animal Science 77, 476–484.
PubMed |
open url image1

Fick GW, Mueller SC (1989) Alfalfa: quality, maturity, and mean stage of development. College of Agriculture and Life Science Information Bulletin No.217. Cornell University, Ithaca, NY.

Fick GW, Wilkens PW, Cherney JH (1994) Modeling forage quality changes in the growing crop. In ‘Forage quality, evaluation, and utilization’. (Eds GC Fahey Jnr, M Collins, DR Mertens, LE Moser) pp. 757–795. (The American Society of Agronomy, Crop Science Society of America, and Soil Science Society of America: Madison, WI)

FitzGerald RD (1979) A comparison of four pastures types for the wheat belt of southern New South Wales. Australian Journal of Experimental Agriculture and Animal Husbandry 19, 216–224.
Crossref | GoogleScholarGoogle Scholar | open url image1

Frame H, Warn L, McLarty G (2002) Effects of grazing system and phosphorus application on pasture quality. Wool Technology and Sheep Breeding 50, 465–470. open url image1

Frank AB, Hofmann L (1989) Relationship among grazing management, growing degree days, and morpphological development for native grasses on the Northern Great Plains. Journal of Range Management 42, 199–202. open url image1

Goering HK, Van Soest P (1970) Forage fibre analysis (apparatus reagents, procedures and some applications). Agriculture handbook. No. 379. ARS, USDA, Washington, DC. 20 pp.

Hintz RW, Albretcht KA (1991) Prediction of lucerne chemical composition from maturity and plant morphology. Crop Science 31, 1561–1565. open url image1

Hodgson J, Brookes IM (1999) Nutrition of grazing animals. In ‘New Zealand pasture and crop science’. (Eds J White, J Hodgson) pp. 117–132. (Oxford University Press: Oxford).

Kloster AM, Latimori NJ, Amigone MA (2000) Evaluación de dos sistemas de pastoreo rotativo a dos niveles de asignación de forraje en una pastura de lucerne y gramíneas. Revista Argentina De Producción Animal 20, 187–198. open url image1

Litherland AJ, Woodward SJR, Stevens DR, Mcdougal DB, Boom CJ, Knight TL, Lambert MG (2002) Seasonal variations in pasture quality on New Zealand sheep and beef farms. Proceedings of the New Zealand Society of Animal Production 62, 138–142. open url image1

Lynk SO, Gee GW, Downs JL (1990) The effects of water stress on phenological and ecophysiological characteristics of cheatgrass and Sandberg's bluegrass. Journal of Range Management 43, 507–513. open url image1

Machado CF, Berger H, Morris ST, Hodgson J, Copes M, Duhalde J (2003) Calibración estacional de mediciones de altura del canopeo con plato y con bastón de altura para estimar la biomasa de forrajera de una pastura base lucerne. Revista Argentina De Producción Animal 23, 73–74. open url image1

Machado CF, Morris ST, Berger H, Hodgson J, Fathalla M (2005) Seasonal changes of herbage quality within a New Zealand beef finishing pasture. New Zealand Journal of Agricultural Research 48, 265–270. open url image1

Majak W, Hall JW, McAllister TA (2001) Practical measures for reducing risk of lucerne bloat in cattle. Journal of Range Management 54, 490–493. open url image1

Matthew C, Lawoko CRO, Korte CJ, Smith D (1994) Application of canonical discriminant analysis, principal component analysis, and canonical correlation analysis as a tool for evaluating differences in pasture botanical composition. New Zealand Journal of Agricultural Research 37, 509–520. open url image1

McKenzie BA, Valentine I, Matthew C, Harrington KC (1999) Plant interactions in pastures and crops. In ‘New Zealand pasture and crop science’. (Eds J White, J Hodgson) pp. 29–44. (Oxford University Press: Oxford)

Mowat DN, Fulkerson RS, Tossell WE, Winch JE (1965) The in vitro digestibility and protein content of leaf and stem portions of forages. Canadian Journal of Plant Science 45, 321–330. open url image1

Mueller SC, Fick GW (1989) Converting lucerne development measurements from mean stage by count to mean stage by weight. Crop Science 29, 416–420. open url image1

Nelson CJ, Moser LE (1994) Plant factors affecting forage quality. In ‘Forage quality, evaluation, and utilization’. (Eds GC Fahey Jr, M Collins, DR Mertens, LE Moser) pp. 115–154. (The American Society of Agronomy, Crop Science Society of America, and Soil Science Society of America: Madison, WI)

Owens VN, Albretch KA, Hintz RW (1995) A rapid method for predicting lucerne quality in the field. Journal of Production Agriculture 8, 491–495. open url image1

Pagella JH, Jouve VV, Strizler NP, Viglizzo EF (1996) Estimación de la digestibilidad in vitro de especies forrajeras utilizando parámetros de composición química. Revista Argentina de Producción Animal 16, 25–34. open url image1

Pearson CJ (1997) ‘Agronomy of grassland systems.’ 2nd edn. (Cambridge University Press: Cambridge) 222 pp.

Pichard G, Alcalde JA (1990) Determinación de carbohidratos no estructurales. In ‘Nutrición De Rumiantes: Guía metodológica de Investigación’. (Eds ME Ruiz, A Ruiz) pp. 3–20. (IICA: San José, De Costa Rica)

Reeve JL, Sharkey MJ (1980) Effect of stocking rate, time of lambing and inclusion of lucerne on prime lamb production in north-east Victoria. Australian Journal of Experimental Agriculture and Animal Husbandry 20, 637–653.
Crossref | GoogleScholarGoogle Scholar | open url image1

Romero LA, Comeron EA, Bruno OA, Diaz MC (1995) Efecto del nivel de asignación de pasturas de alfalfa sobre la respuesta de vacas lecheras. 1. Consumo y comportamiento ingestivo. Revista Argentina de Producción Animal 15, 623–626. open url image1

Sanderson M (1992) Morphological development of Switchgrass and Kleingrass. Agronomy Journal 84, 415–419. open url image1

Sanderson M, Wedin W (1989) Phenological stage and herbage quality relationship in temperature grasses and legumes. Agronomy Journal 81, 864–869. open url image1

Sanderson M, Hornstein J, Wedin W (1989) Alfalfa morphological stage and its relation to in situ digestibility of detergent fiber fractions of stems. Crop Science 29, 1315–1319. open url image1

SAS/STAT (2001) ‘SAS/STAT Release 8.’ (SAS Institute Inc.: Cary, NC)

Saul GR, Kearney GA, Flinn PC, Lescun CL (1999) Effects of superphosphate fertiliser and stocking rate on the nutritive value of perennial ryegrass and subterranean clover herbage. Australian Journal of Agricultural Research 50, 537–545.
Crossref | GoogleScholarGoogle Scholar | open url image1

Schlegel ML, Wachenheim CJ, Benson ME, Ames NK, Rust SR (2000) Grazing methods and stocking rates for direct-seeded lucerne pastures: II. Pasture quality and diet selection. Journal of Animal Science 78, 2202–2208.
PubMed |
open url image1

Simon U, Park B (1981) A descriptive scheme for stages of development in perennial forage grasses. In ‘Proceedings of the XIV International Grassland Congress, Lexington KY, June 15–24’. (Eds JA Smith, VW Hays) pp. 416–418. (Westview Press: Boulder, CO)

Smart AJ, Schacht WH, Moser LE (2001) Predicting leaf/stem ratio and nutritive value in grazed and nongrazed big bluestem. Agronomy Journal 93, 1243–1249. open url image1

Steel RGD, Torrie JH (1980) ‘Principles and procedures of statistics: a biometrical approach.’ 2nd edn. (McGraw-Hill Publishing Company: New York) 631 pp.

Sulc M, Albrecht KA, Cherney JH, Hall MH, Mueller SC, Orloff S (1997) Field testing – a rapid method for estimating lucerne quality. Agronomy Journal 89, 952–957. open url image1

Thompson DJ, Brooke BM, Garland GJ, Hall JW, Majak W (2000) Effect of stage of growth of lucerne on the incidence of bloat in cattle. Canadian Journal of Animal Science 80, 725–727. open url image1

Tilley JMA, Terry RA (1962) Two-stage technique for the in vitro digestion of forage crops. Journal of the British Grassland Society 18, 104–111. open url image1

Wheeler DM, Upsdell MP (2003) Flexi 3.0. In ‘Bayesian smoother. Reference manual’. (Deparment of Statistics, University of Waikato: Hamilton New Zealand) 306 pp.