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Diurnal vertical and seasonal changes in non-structural carbohydrates in Marandu palisade grass

Published online by Cambridge University Press:  31 May 2018

F. C. Leite De Oliveira
Affiliation:
Department of Animal Science, University of São Paulo, College of Animal Science and Food Engineering (FZEA/USP), Pirassununga, 13635-900 SP, Brazil
J. M. D. Sanchez
Affiliation:
Range Cattle Research and Education Center, University of Florida, Ona, 33865 FL, USA
J. M. B. Vendramini
Affiliation:
Range Cattle Research and Education Center, University of Florida, Ona, 33865 FL, USA
C. G. Lima
Affiliation:
Department of Basic Sciences, FZEA/USP, Pirassununga, 13635-900 SP, Brazil
P. H. C. Luz
Affiliation:
Department of Animal Science, University of São Paulo, College of Animal Science and Food Engineering (FZEA/USP), Pirassununga, 13635-900 SP, Brazil
C. O. Rocha
Affiliation:
Department of Animal Science, University of São Paulo, College of Animal Science and Food Engineering (FZEA/USP), Pirassununga, 13635-900 SP, Brazil
L. E. T. Pereira
Affiliation:
Department of Animal Science, University of São Paulo, College of Animal Science and Food Engineering (FZEA/USP), Pirassununga, 13635-900 SP, Brazil
V. R. Herling*
Affiliation:
Department of Animal Science, University of São Paulo, College of Animal Science and Food Engineering (FZEA/USP), Pirassununga, 13635-900 SP, Brazil
*
Author for correspondence: V.R. Herling, E-mail: vrherlin@usp.br

Abstract

Forage is the primary feed source for livestock in tropical regions and energy is one of the most important nutrients for ruminant nutrition. The effects of harvest management of Marandu palisade grass (Brachiaria brizantha cv. Marandu Syn. Urochloa brizantha cv. Marandu) on non-structural carbohydrate (NSC) concentrations were evaluated. A plot (Experiment 1) and a greenhouse study (Experiment 2) were conducted in 2013–14. In Experiment 1, treatments were the factorial arrangement of two harvest times and two vertical canopy layers (upper and intermediate), distributed in a completely randomized design with five replicates. In Experiment 2, treatments were the factorial arrangement of six harvest times and two morphological fractions (leaf blade and pseudostem). In both experiments, NSC concentration increased during the day. Upper and intermediate canopy layers had greater NSC concentration at 15.00 than 06.00 h during spring and summer. In addition, the magnitude of NSC increase was greater in the upper than intermediate canopy layer and in spring than summer. Marandu palisade grass shows greater digestibility in the afternoon than morning, representing an opportunity to optimize energy concentration through harvest management.

Type
Animal Research Paper
Copyright
Copyright © Cambridge University Press 2018 

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References

ABRASEM – Associação Brasileleira De Sementes E Mudas (2014) Anuário 2014 (Yearbook 2014). Brasília, DF, Brazil: ABRASEM. Available at http://www.abrasem.com.br/wp-content/uploads/2013/09/Anu%C3%A1rio-Abrasem-2014.pdf (Accessed 17 April 2018).Google Scholar
AOAC International (2012) Official Methods of Analysis of AOAC International. 19th Edn. Gaithersburg, Maryland, USA: AOAC International.Google Scholar
Bernardes, TF, Reis, RA and Moreira, AL (2005) Fermentative and microbiological profile of marandu-grass ensiled with citrus pulp pellets. Scientia Agricola 62, 214220.CrossRefGoogle Scholar
Brown, RH, Cooper, RB and Blaser, RE (1966) Effects of leaf age on efficiency. Crop Science 6, 206209.Google Scholar
Burner, DM and Belesky, DP (2004) Diurnal effects on nutritive value of alley-cropped orchardgrass herbage. Crop Science 44, 17761780.Google Scholar
CEPAGRI - Centro De Pesquisas Meteorológicas E Climáticas Aplicadas A Agricultura (2014) Clima dos Municípios Paulistas (Climate of Municipalities of Sao Paulo). Campinas, Brazil: UNICAMP. Available at http://www.cpa.unicamp.br/outras-informacoes/clima_muni_442.html (Accessed 17 April 2018).Google Scholar
De Oliveira, LP et al. (2014) Morning and afternoon sampling and herbage chemical composition of rotationally stocked elephant grass cv. Napier. Tropical Grasslands - Forrajes Tropicales 2, 106107.CrossRefGoogle Scholar
EMBRAPA (2006) Sistema Brasileiro de Classificação de Solos, 2nd Edn. Rio de Janeiro, Brazil: EMBRAPA-SPI.Google Scholar
Giacomini, AA et al. (2009) Growth of marandu palisade grass subjected to strategies of intermittent stocking. Scientia Agricola 66, 733741.Google Scholar
Gregorini, P et al. (2006) Timing of herbage allocation in strip grazing: effects on grazing pattern and performance of beef heifers. Journal of Animal Science 84, 19431950.Google Scholar
Griggs, TC et al. (2007) Temporal and vertical distribution of nonstructural carbohydrate, fiber, protein, and digestibility levels in orchard grass swards. Agronomy Journal 99, 755763.Google Scholar
Guo, G et al. (2014) Silage fermentation characteristics of Italian ryegrass (Lolium multiflorum Lam.) harvested at various times on a sunny day. Crop Science 54, 851858.CrossRefGoogle Scholar
Hall, MB (2000) Neutral Detergent-Soluble Carbohydrates: Nutritional Relevance and Analysis. A Laboratory Manual. University of Florida Extension Bulletin 339. Gainesville, FL, USA: University of Florida. Available online from: http://dairy.ifas.ufl.edu/other/files/Manual_-_Neutral_Detergent-Soluble_Carbohydrates_Nutritional_Relevance_and_Analysis.pdf (Accessed 17 April 2018).Google Scholar
Hall, MB (2003) Challenges with nonfiber carbohydrate methods. Journal of Animal Science 81, 32263232.CrossRefGoogle ScholarPubMed
Kagan, IA et al. (2011) Seasonal and diurnal changes in starch content and sugar profiles of bermudagrass in the piedmont region of the United States. Journal of Equine Veterinary Science 31, 521529.Google Scholar
Lechtenberg, VL, Holt, DA and Youngberg, HW (1971) Diurnal variation in nonstructural carbohydrates, in vitro digestibility, and leaf to stem ratio of alfalfa. Agronomy Journal 64, 719724.CrossRefGoogle Scholar
Littell, RC, Henry, PR and Ammerman, CB (1998) Statistical analysis of repeated measures data using SAS procedure. Journal of Animal Science 76, 12161231.Google Scholar
Moraes, MG et al. (2012) Diversity of non-structural carbohydrates in grasses (Poaceae) from Brazil. Grass and Forage Science 68, 165177.Google Scholar
Morin, C et al. (2011) Diurnal variation of nonstructural carbohydrates and nutritive value in alfalfa. Crop Science 51, 12971306.CrossRefGoogle Scholar
Morin, C et al. (2012) Diurnal variations of nonstructural carbohydrates and nutritive value in Timothy. Canadian Journal of Plant Science 92, 883887.Google Scholar
Orr, RJ et al. (2001) Matching grass supply to grazing for dairy cows. Grass and Forage Science 56, 352361.Google Scholar
Owens, VN, Albrecht, KA and Muck, RE (2002) Protein degradation and fermentation characteristics of unwilted red clover and alfalfa silage harvested at various times during the day. Grass and Forage Science 57, 329341.CrossRefGoogle Scholar
Pelletier, S et al. (2010 a) Forage nonstructural carbohydrates and nutritive value as affected by time of cutting and species. Agronomy Journal 102, 13881398.Google Scholar
Pelletier, S et al. (2010 b) Drying procedures affect nonstructural carbohydrates and other nutritive value attributes in forage samples. Animal Feed Science and Technology 157, 139150.Google Scholar
Ribeiro, AF et al. (2014) Chemical composition, in vitro digestibility and gas production of Brachiaria managed under different forage allowances. Italian Journal of Animal Sciences 13, 3643.Google Scholar
Robinson, PH, Campbell-Matthews, M and Fadel, JG (1999) Influence of storage time and temperature on in vitro digestion of neutral detergent fibre at 48 h, and comparison to 48 h in sacco neutral detergent fibre digestion. Animal Feed Science and Technology 80, 257266.Google Scholar
SAS Institute (2008) SAS/STAT Guide for Personal Computers, Version 9.2. Cary, NC, USA: SAS publishing.Google Scholar
Soria, LGT et al. (2003) Resposta do capim Tanzânia a aplicação do nitrogênio e de laminas de irrigação. I: Produção de forragem. [responses of Panicum maximum cv. Tanzânia to nitrogen and irrigation. I: forage production]. Revista Brasileira de Engenharia Agrícola e Ambiental 7, 430436.CrossRefGoogle Scholar
Souza, A et al. (2005) Diurnal variations of non-structural carbohydrates in vegetative tissues of Melinis minutiflora, Echinolaena inflexa and Lolium multiflorum (Poaceae). Brazilian Journal of Botany 28, 755763.Google Scholar
Taiz, L and Zeiger, E (2015) Plant Physiology and Development, 6th Edn. Sunderland, MA, USA: Sinauer Associates, Inc.Google Scholar
Tremblay, GF et al. (2014) Silage fermentation of PM- and AM-cut alfalfa wilted in wide and narrow swaths. Crop Science 54, 439452.Google Scholar
Valle, CB et al. (2010) Gênero Brachiaria [genus Brachiaria]. In Fonseca, DM and Martuscello, JA (eds) Plantas Forrageiras, Viçosa, Brazil: UFV, pp. 3077.Google Scholar
Van Soest, PJ, Robertson, JB and Lewis, BA (1991) Carbohydrate methodology, metabolism and nutritional implications in dairy cattle. Methods for dietary fiber, neutral detergent fiber and non-starch polysaccharides in relation to animal nutrition. Journal Dairy Science 74, 35833597.Google Scholar
Volenec, JJ (1986) Nonstructural carbohydrates in stem base components of tall fescue during regrowth. Crop Science 26, 122127.CrossRefGoogle Scholar
Youngberg, HW, Holt, DA and Lechtenberg, VL (1972) Diurnal variations in nitrogenous constituents of alfalfa (Medicago sativa L.). Agronomy Journal 64, 288291.Google Scholar
Zeeman, SC, Smith, SM and Smith, AM (2007) The diurnal metabolism of leaf starch. Biochemical Journal 401, 1328.Google Scholar