Invited review: Sensor technologies for real-time monitoring of the rumen environment
Quantifying digestive and fermentative processes within the rumen environment has been the subject of decades of research; however, our existing research methodologies preclude time-sensitive and spatially explicit investigation of this system. To better understand the temporal and spatial dynamics...
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Published in | Journal of dairy science Vol. 105; no. 8; pp. 6379 - 6404 |
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Main Authors | , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Elsevier
01.08.2022
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Subjects | |
Online Access | Get full text |
ISSN | 0022-0302 1525-3198 1529-9066 1525-3198 |
DOI | 10.3168/jds.2021-20576 |
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Abstract | Quantifying digestive and fermentative processes within the rumen environment has been the subject of decades of research; however, our existing research methodologies preclude time-sensitive and spatially explicit investigation of this system. To better understand the temporal and spatial dynamics of the rumen environment, real-time and in situ monitoring of various chemical and physical parameters in the rumen through implantable microsensor technologies is a practical solution. Moreover, such sensors could contribute to the next generation of precision livestock farming, provided sufficient wireless data networking and computing systems are incorporated. In this review, various microsensor technologies applicable to real-time metabolic monitoring for ruminants are introduced, including the detection of parameters for rumen metabolism, such as pH, temperature, histamine concentrations, and volatile fatty acid concentrations. The working mechanisms and requirements of the sensors are summarized with respect to the selected target parameters. Lastly, future challenges and perspectives of this research field are discussed.Quantifying digestive and fermentative processes within the rumen environment has been the subject of decades of research; however, our existing research methodologies preclude time-sensitive and spatially explicit investigation of this system. To better understand the temporal and spatial dynamics of the rumen environment, real-time and in situ monitoring of various chemical and physical parameters in the rumen through implantable microsensor technologies is a practical solution. Moreover, such sensors could contribute to the next generation of precision livestock farming, provided sufficient wireless data networking and computing systems are incorporated. In this review, various microsensor technologies applicable to real-time metabolic monitoring for ruminants are introduced, including the detection of parameters for rumen metabolism, such as pH, temperature, histamine concentrations, and volatile fatty acid concentrations. The working mechanisms and requirements of the sensors are summarized with respect to the selected target parameters. Lastly, future challenges and perspectives of this research field are discussed. |
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AbstractList | Quantifying digestive and fermentative processes within the rumen environment has been the subject of decades of research; however, our existing research methodologies preclude time-sensitive and spatially explicit investigation of this system. To better understand the temporal and spatial dynamics of the rumen environment, real-time and in situ monitoring of various chemical and physical parameters in the rumen through implantable microsensor technologies is a practical solution. Moreover, such sensors could contribute to the next generation of precision livestock farming, provided sufficient wireless data networking and computing systems are incorporated. In this review, various microsensor technologies applicable to real-time metabolic monitoring for ruminants are introduced, including the detection of parameters for rumen metabolism, such as pH, temperature, histamine concentrations, and volatile fatty acid concentrations. The working mechanisms and requirements of the sensors are summarized with respect to the selected target parameters. Lastly, future challenges and perspectives of this research field are discussed. Quantifying digestive and fermentative processes within the rumen environment has been the subject of decades of research; however, our existing research methodologies preclude time-sensitive and spatially explicit investigation of this system. To better understand the temporal and spatial dynamics of the rumen environment, real-time and in situ monitoring of various chemical and physical parameters in the rumen through implantable microsensor technologies is a practical solution. Moreover, such sensors could contribute to the next generation of precision livestock farming, provided sufficient wireless data networking and computing systems are incorporated. In this review, various microsensor technologies applicable to real-time metabolic monitoring for ruminants are introduced, including the detection of parameters for rumen metabolism, such as pH, temperature, histamine concentrations, and volatile fatty acid concentrations. The working mechanisms and requirements of the sensors are summarized with respect to the selected target parameters. Lastly, future challenges and perspectives of this research field are discussed.Quantifying digestive and fermentative processes within the rumen environment has been the subject of decades of research; however, our existing research methodologies preclude time-sensitive and spatially explicit investigation of this system. To better understand the temporal and spatial dynamics of the rumen environment, real-time and in situ monitoring of various chemical and physical parameters in the rumen through implantable microsensor technologies is a practical solution. Moreover, such sensors could contribute to the next generation of precision livestock farming, provided sufficient wireless data networking and computing systems are incorporated. In this review, various microsensor technologies applicable to real-time metabolic monitoring for ruminants are introduced, including the detection of parameters for rumen metabolism, such as pH, temperature, histamine concentrations, and volatile fatty acid concentrations. The working mechanisms and requirements of the sensors are summarized with respect to the selected target parameters. Lastly, future challenges and perspectives of this research field are discussed. |
Author | Nawrocki, Robert A. Priya, Shashank Kang, Min Gyu Bai, Huiwen Roqueto dos Reis, Barbara White, Robin Kaur, Upinder Voyles, Richard M. Han, Chan Su |
Author_xml | – sequence: 1 givenname: Chan Su surname: Han fullname: Han, Chan Su – sequence: 2 givenname: Upinder surname: Kaur fullname: Kaur, Upinder – sequence: 3 givenname: Huiwen surname: Bai fullname: Bai, Huiwen – sequence: 4 givenname: Barbara surname: Roqueto dos Reis fullname: Roqueto dos Reis, Barbara – sequence: 5 givenname: Robin surname: White fullname: White, Robin – sequence: 6 givenname: Robert A. surname: Nawrocki fullname: Nawrocki, Robert A. – sequence: 7 givenname: Richard M. surname: Voyles fullname: Voyles, Richard M. – sequence: 8 givenname: Min Gyu surname: Kang fullname: Kang, Min Gyu – sequence: 9 givenname: Shashank surname: Priya fullname: Priya, Shashank |
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CitedBy_id | crossref_primary_10_1016_j_animal_2024_101268 crossref_primary_10_53588_alpa_320501 crossref_primary_10_1017_S0022029923000134 crossref_primary_10_1016_j_animal_2024_101340 crossref_primary_10_1109_TAP_2023_3279672 crossref_primary_10_1093_jas_skad206 crossref_primary_10_1038_s43017_024_00516_2 crossref_primary_10_1016_j_atech_2022_100109 crossref_primary_10_1093_jigpal_jzae111 crossref_primary_10_3168_jds_2024_24817 crossref_primary_10_5333_KGFS_2024_44_2_106 crossref_primary_10_3390_ani13132096 crossref_primary_10_3390_agriculture14091481 crossref_primary_10_3390_agriculture14071096 |
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Copyright | 2022, The Authors. Published by Elsevier Inc. and Fass Inc. on behalf of the American Dairy Science Association®. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/). |
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SubjectTerms | biosensor dairy science histamine livestock metabolism precision livestock farming rumen temperature volatile fatty acids |
Title | Invited review: Sensor technologies for real-time monitoring of the rumen environment |
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