Literature DB >> 31466744

Application of microchip and infrared thermography for monitoring body temperature of beef cattle kept on pasture.

Alessandro Giro1, Alberto Carlos de Campos Bernardi2, Waldomiro Barioni Junior2, Amanda Prudêncio Lemes3, Daniela Botta1, Narian Romanello1, Andréa do Nascimento Barreto1, Alexandre Rossetto Garcia4.   

Abstract

The monitoring of body temperature is important for the diagnosis of the physiological state of the animal, being dependent on available methods and their applicability within production systems. This work evaluated techniques to monitor the body temperature of beef cattle kept on pasture and their ability to predict internal temperature. Twenty-three adult bovine females were monitored for six months, and collection data carried out in eleven campaigns (D0-D10) twelve days apart. During collections, the surface temperatures of ear base (ET, oC) and ocular globe (OGT, oC) were measured by infrared thermography, and the subcutaneous temperature (ST, oC) was measured with the use of transponder containing an implantable microchip. Rectal temperature (RT, oC) was considered as a reference for body temperature. Temperature and Humidity Index (THI), Black Globe Temperature and Humidity Index (BGHI) and Radiant Heat Load (RHL, W/m2) were calculated. ET (33.32 ± 0.12 °C), ST (36.10 ± 0.07 °C), OGT (37.40 ± 0.06 °C) and RT (38.83 ± 0.03 °C) differed significantly (P˂0.05). There was positive correlation of RT with OGT (r = 0.392), ET (r = 0.264) and ST (r = 0.236) (P˂0.05). Considering the bioclimatic indicators, the highest magnitude correlations were observed between ET and THI (r = 0.71), ET and BGHI (r = 0.65), and ET and RHL (r = 0.48). The use of microchip represented a practical method, but with limited predictability. On the other hand, infrared thermography proved to be safe and non-invasive, presenting greater precision for inference of internal body temperature. ET was more influenced by meteorological conditions.
Copyright © 2019 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Beef cattle; Body temperature; Infrared thermography; Precision livestock; RFID

Mesh:

Year:  2019        PMID: 31466744     DOI: 10.1016/j.jtherbio.2019.06.009

Source DB:  PubMed          Journal:  J Therm Biol        ISSN: 0306-4565            Impact factor:   2.902


  5 in total

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Authors:  Reíssa Alves Vilela; José de Brito Lourenço Junior; Manuel Antonio Chagas Jacintho; Antonio Vinícius Correa Barbosa; Messy Hannear de Andrade Pantoja; Carlos Magno Chaves Oliveira; Alexandre Rossetto Garcia
Journal:  Front Vet Sci       Date:  2022-05-25

2.  Non-Invasive Cattle Body Temperature Measurement Using Infrared Thermography and Auxiliary Sensors.

Authors:  Fu-Kang Wang; Ju-Yin Shih; Pin-Hsun Juan; Ya-Chi Su; Yu-Chieh Wang
Journal:  Sensors (Basel)       Date:  2021-04-01       Impact factor: 3.576

Review 3.  Thermography for disease detection in livestock: A scoping review.

Authors:  Rosemary McManus; Lisa A Boden; William Weir; Lorenzo Viora; Robert Barker; Yunhyong Kim; Pauline McBride; Shufan Yang
Journal:  Front Vet Sci       Date:  2022-08-09

4.  Silvopastoral system is an alternative to improve animal welfare and productive performance in meat production systems.

Authors:  Amanda Prudêncio Lemes; Alexandre Rossetto Garcia; José Ricardo Macedo Pezzopane; Felipe Zandonadi Brandão; Yeda Fumie Watanabe; Reinaldo Fernandes Cooke; Mariana Sponchiado; Claudia Cristina Paro de Paz; Annelise Carla Camplesi; Mario Binelli; Lindsay Unno Gimenes
Journal:  Sci Rep       Date:  2021-07-08       Impact factor: 4.379

5.  Effect of Ethanol on Parthenogenetic Activation and α-Tocopherol Supplementation during In Vitro Maturation on Developmental Competence of Summer-Collected Bovine Oocytes.

Authors:  Francisco Báez; Belén Gómez; Victoria de Brun; Nélida Rodríguez-Osorio; Carolina Viñoles
Journal:  Curr Issues Mol Biol       Date:  2021-12-16       Impact factor: 2.976

  5 in total

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