Literature DB >> 18820167

ASAS centennial paper: net energy systems for beef cattle--concepts, application, and future models.

C L Ferrell1, J W Oltjen.   

Abstract

Development of nutritional energetics can be traced to the 1400s. Lavoisier established relationships among O(2) use, CO(2) production and heat production in the late 1700s, and the laws of thermodynamics and law of Hess were discovered during the 1840s. Those discoveries established the fundamental bases for nutritional energetics and enabled the fundamental entity ME = retained energy + heat energy to be established. Objectives became: 1) to establish relationships between gas exchange and heat energy, 2) to devise bases for evaluation of foods that could be related to energy expenditures, and 3) to establish causes of energy expenditures. From these endeavors, the basic concepts of energy partitioning by animals were developed, ultimately resulting in the development of feeding systems based on NE concepts. The California Net Energy System, developed for finishing beef cattle, was the first to be based on retained energy as determined by comparative slaughter and the first to use 2 NE values (NE(m) and NE(g)) to describe feed and animal requirements. The system has been broadened conceptually to encompass life cycle energy requirements of beef cattle and modified by the inclusion of numerous adjustments to address factors known to affect energy requirements and value of feed to meet those needs. The current NE system remains useful but is empirical and static in nature and thus fails to capture the dynamics of energy utilization by diverse animals as they respond to changing environmental conditions. Consequently, efforts were initiated to develop dynamic simulation models that captured the underlying biology and thus were sensitive to variable genetic and environmental conditions. Development of a series of models has been described to show examples of the conceptual evolution of dynamic, mechanistic models and their applications. Generally with each new system, advances in prediction accuracy came about by adding new terms to conceptually validated models. However, complexity of input requirements often limits general use of these larger models. Expert systems may be utilized to provide many of the additional inputs needed for application of the more complex models. Additional information available from these systems is expected to result in an ever-increasing range of application. These systems are expected to have increased generality and the capability to be integrated with other models to allow economic evaluation. This will eventually allow users to compute solutions that allow development of optimal production strategies.

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Year:  2008        PMID: 18820167     DOI: 10.2527/jas.20080954

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


  6 in total

1.  Energetic efficiency and the first law: the California net energy system revisited.

Authors:  Carl A Old; Heidi A Rossow; Ian J Lean; Thomas R Famula
Journal:  J Anim Sci       Date:  2018-11-21       Impact factor: 3.159

2.  Feed intake, digestibility and energy partitioning in beef cattle fed diets with cassava pulp instead of rice straw.

Authors:  Kanokwan Kongphitee; Kritapon Sommart; Thamrongsak Phonbumrung; Thidarat Gunha; Tomoyuki Suzuki
Journal:  Asian-Australas J Anim Sci       Date:  2018-03-13       Impact factor: 2.509

3.  Energy metabolism and partition of lactating Zebu and crossbred Zebu cows in different planes of nutrition.

Authors:  Pedro Henrique de Araujo Carvalho; Ana Luiza da Costa Cruz Borges; Ricardo Reis E Silva; Helena Ferreira Lage; Paolo Antônio Dutra Vivenza; José Reinaldo Mendes Ruas; Elias Jorge Facury Filho; Rodrigo Liberio Araújo Palhano; Lúcio Carlos Gonçalves; Iran Borges; Eloísa de Oliveira Simões Saliba; Diogo Gonzaga Jayme; Antônio Último de Carvalho
Journal:  PLoS One       Date:  2018-08-17       Impact factor: 3.240

4.  Energy partitioning in cattle fed diets based on tropical forage with the inclusion of antibiotic additives.

Authors:  Marcelina Pereira da Fonseca; Ana Luiza da Costa Cruz Borges; Pedro Henrique de Araujo Carvalho; Ricardo Reis E Silva; Lúcio Carlos Gonçãlves; Iran Borges; Helena Ferreira Lage; Alexandre Lima Ferreira; Eloísa Oliveira Simões Saliba; Diogo Gonzaga Jayme; Joana Ribeiro da Glória; Décio Souza Graça; Rodrigo Melo Meneses; Antônio Último de Carvalho; Elias Jorge Facury Filho; Arthur Alves Silva
Journal:  PLoS One       Date:  2019-04-22       Impact factor: 3.240

5.  Historical flaws in bioassays used to generate metabolizable energy values for poultry feed formulation: a critical review.

Authors:  Shu-Biao Wu; Mingan Choct; Gene Pesti
Journal:  Poult Sci       Date:  2019-12-30       Impact factor: 3.352

6.  Factors affecting energy metabolism and evaluating net energy of poultry feed.

Authors:  Shahram Barzegar; Shu-Biao Wu; Mingan Choct; Robert A Swick
Journal:  Poult Sci       Date:  2019-12-30       Impact factor: 3.352

  6 in total

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