Literature DB >> 25349351

The effect of incremental levels of dietary nitrate on methane emissions in Holstein steers and performance in Nelore bulls.

J R Newbold1, S M van Zijderveld2, R B A Hulshof2, W B Fokkink3, R A Leng4, P Terencio5, W J Powers6, P S J van Adrichem2, N D Paton3, H B Perdok2.   

Abstract

Two experiments were conducted to study effects of dietary nitrate on enteric methane production, blood methemoglobin concentration, and growth rate in cattle. In Exp. 1, 36 Holstein steers (288 ± 25 kg BW) were fed increasing levels of dietary nitrate (6 levels; 0 to 3.0% of feed DM) in corn silage-based total mixed rations. Nitrate was introduced gradually in a 25-d adaptation period before methane production was determined in environmentally controlled rooms. In the rooms, feed intake was restricted and similar among all treatments. Methane production (g/d) decreased linearly as dietary nitrate concentration increased (P < 0.01). The apparent efficiency (measured methane reduction divided by potential methane reduction) with which enteric methane was mitigated was 49%. Blood methemoglobin levels increased with increasing nitrate dose. In Exp. 2, 300 Nelore bulls (392 ± 28 kg) were fed increasing levels of nitrate (6 levels; 0 to 2.4% of feed DM) in high-concentrate total mixed rations offered ad libitum. Feed intake decreased linearly with increasing level of dietary nitrate (P < 0.01). However, ADG was not affected by nitrate dose (P = 0.54), resulting in a linear improvement in G:F (P = 0.03) as dietary nitrate level increased. Carcass dressing percentage showed a quadratic response to incremental dietary nitrate, reaching the highest value at 0.96% of NO3/kg DM (P = 0.04).

Entities:  

Keywords:  beef cattle; dietary nitrate; enteric methane; feedlot; methemoglobinemia

Mesh:

Substances:

Year:  2014        PMID: 25349351     DOI: 10.2527/jas.2014-7677

Source DB:  PubMed          Journal:  J Anim Sci        ISSN: 0021-8812            Impact factor:   3.159


  17 in total

1.  Effects of bismuth subsalicylate and encapsulated calcium ammonium nitrate on ruminal fermentation of beef cattle.

Authors:  Darren D Henry; Francine M Ciriaco; Rafael C Araujo; Pedro L P Fontes; Nicola Oosthuizen; Sebastian E Mejia-Turcios; Mariana E Garcia-Ascolani; Lautaro Rostoll-Cangiano; Tessa M Schulmeister; Jose C B Dubeux; G Cliff Lamb; Nicolas DiLorenzo
Journal:  J Anim Sci       Date:  2020-08-01       Impact factor: 3.159

2.  The effect of nitrate and monensin on in vitro ruminal fermentation.

Authors:  M Capelari; W Powers
Journal:  J Anim Sci       Date:  2017-11       Impact factor: 3.159

3.  The effect of encapsulated nitrate and monensin on ruminal fermentation using a semi-continuous culture system.

Authors:  Matheus Capelari; Kristen A Johnson; Brooke Latack; Jolene Roth; Wendy Powers
Journal:  J Anim Sci       Date:  2018-07-28       Impact factor: 3.159

4.  Effects of bismuth subsalicylate and encapsulated calcium-ammonium nitrate on feedlot beef cattle production.

Authors:  Sebastian E Mejia-Turcios; Andrea M Osorio-Doblado; Francine M Ciriaco; Phil M Urso; Rafael C Araujo; Dale R Woerner; Bradley J Johnson; Jose C B Dubeux; Jhones O Sarturi; Nicolas DiLorenzo; Darren D Henry
Journal:  J Anim Sci       Date:  2021-10-01       Impact factor: 3.338

5.  Effects of bismuth subsalicylate and encapsulated calcium-ammonium nitrate on enteric methane production, nutrient digestibility, and liver mineral concentration of beef cattle.

Authors:  Darren D Henry; Francine M Ciriaco; Rafael C Araujo; Pedro L P Fontes; Nicola Oosthuizen; Lautaro Rostoll-Cangiano; Carla D Sanford; Tessa M Schulmeister; Jose C B Dubeux; Graham Cliff Lamb; Nicolas DiLorenzo
Journal:  J Anim Sci       Date:  2020-08-01       Impact factor: 3.159

6.  Risk assessment of nitrate and nitrite in feed.

Authors:  Dieter Schrenk; Margherita Bignami; Laurent Bodin; James Kevin Chipman; Jesús Del Mazo; Bettina Grasl-Kraupp; Laurentius Ron Hoogenboom; Jean-Charles Leblanc; Carlo Stefano Nebbia; Elsa Nielsen; Evangelia Ntzani; Annette Petersen; Salomon Sand; Tanja Schwerdtle; Christiane Vleminckx; Heather Wallace; Vasileios Bampidis; Bruce Cottrill; Maria Jose Frutos; Peter Furst; Anthony Parker; Marco Binaglia; Anna Christodoulidou; Petra Gergelova; Irene Munoz Guajardo; Carina Wenger; Christer Hogstrand
Journal:  EFSA J       Date:  2020-11-04

Review 7.  Nitrate and Inhibition of Ruminal Methanogenesis: Microbial Ecology, Obstacles, and Opportunities for Lowering Methane Emissions from Ruminant Livestock.

Authors:  Chengjian Yang; John A Rooke; Irene Cabeza; Robert J Wallace
Journal:  Front Microbiol       Date:  2016-02-12       Impact factor: 5.640

Review 8.  Rumen methanogens and mitigation of methane emission by anti-methanogenic compounds and substances.

Authors:  Amlan Patra; Tansol Park; Minseok Kim; Zhongtang Yu
Journal:  J Anim Sci Biotechnol       Date:  2017-01-26

9.  Effects of Adaptation of In vitro Rumen Culture to Garlic Oil, Nitrate, and Saponin and Their Combinations on Methanogenesis, Fermentation, and Abundances and Diversity of Microbial Populations.

Authors:  Amlan K Patra; Zhongtang Yu
Journal:  Front Microbiol       Date:  2015-12-22       Impact factor: 5.640

Review 10.  Insights on Alterations to the Rumen Ecosystem by Nitrate and Nitrocompounds.

Authors:  Elizabeth A Latham; Robin C Anderson; William E Pinchak; David J Nisbet
Journal:  Front Microbiol       Date:  2016-03-04       Impact factor: 5.640

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