Remotely sensed spatiotemporal variation in crude protein of shortgrass steppe forage.

IRISARRI, J.G.N. - DURANTE, M. - DERNER, J.D. - OESTERHELD, M. - AUGUSTINE, D.J.

Resumen:

ABSTRACT.- In the Great Plains of central North America, sustainable livestock production is dependent on matching the timing of forage availability and quality with animal intake demands. Advances in remote sensing technology provide accurate information for forage quantity. However, similar efforts for forage quality are lacking. Crude protein (CP) content is one of the most relevant forage quality determinants of individual animal intake, especially below an 8% threshold for growing animals. In a set of shortgrass steppe paddocks with contrasting botanical composition, we (1) modeled the spatiotemporal variation in field estimates of CP content against seven spectral MODIS bands, and (2) used the model to assess the risk of reaching the 8% CP content threshold during the grazing season for paddocks with light, moderate, or heavy grazing intensities for the last 22 years (2000?2021). Our calibrated model explained up to 69% of the spatiotemporal variation in CP content. Different from previous investigations, our model was partially independent of NDVI, as it included the green and red portions of the spectrum as direct predictors of CP content. From 2000 to 2021, the model predicted that CP content was a limiting factor for growth of yearling cattle in 80% of the years for about 60% of the mid-May to October grazing season. The risk of forage quality being below the CP content threshold increases as the grazing season progresses, suggesting that ranchers across this rangeland region could benefit from remotely sensed CP content to proactively remove yearling cattle earlier than the traditional October date or to strategically provide supplemental protein sources to grazing cattle.

Detalles Bibliográficos
2022
Crude protein threshold
Forage quality
MOD09A1
Shortgrass rangeland
Remote sensing
Risk assessment
Semi-arid environment
Inglés
Instituto Nacional de Investigación Agropecuaria
AINFO
https://ainfo.inia.uy/consulta/busca?b=pc&id=62825&biblioteca=vazio&busca=62825&qFacets=62825
Acceso abierto
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author IRISARRI, J.G.N.
author2 DURANTE, M.
DERNER, J.D.
OESTERHELD, M.
AUGUSTINE, D.J.
author2_role author
author
author
author
author_facet IRISARRI, J.G.N.
DURANTE, M.
DERNER, J.D.
OESTERHELD, M.
AUGUSTINE, D.J.
author_role author
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dc.creator.none.fl_str_mv IRISARRI, J.G.N.
DURANTE, M.
DERNER, J.D.
OESTERHELD, M.
AUGUSTINE, D.J.
dc.date.accessioned.none.fl_str_mv 2025-06-23T18:23:28Z
dc.date.available.none.fl_str_mv 2025-06-23T18:23:28Z
dc.date.issued.none.fl_str_mv 2022
dc.date.updated.none.fl_str_mv 2025-06-23T18:23:28Z
dc.description.abstract.none.fl_txt_mv ABSTRACT.- In the Great Plains of central North America, sustainable livestock production is dependent on matching the timing of forage availability and quality with animal intake demands. Advances in remote sensing technology provide accurate information for forage quantity. However, similar efforts for forage quality are lacking. Crude protein (CP) content is one of the most relevant forage quality determinants of individual animal intake, especially below an 8% threshold for growing animals. In a set of shortgrass steppe paddocks with contrasting botanical composition, we (1) modeled the spatiotemporal variation in field estimates of CP content against seven spectral MODIS bands, and (2) used the model to assess the risk of reaching the 8% CP content threshold during the grazing season for paddocks with light, moderate, or heavy grazing intensities for the last 22 years (2000?2021). Our calibrated model explained up to 69% of the spatiotemporal variation in CP content. Different from previous investigations, our model was partially independent of NDVI, as it included the green and red portions of the spectrum as direct predictors of CP content. From 2000 to 2021, the model predicted that CP content was a limiting factor for growth of yearling cattle in 80% of the years for about 60% of the mid-May to October grazing season. The risk of forage quality being below the CP content threshold increases as the grazing season progresses, suggesting that ranchers across this rangeland region could benefit from remotely sensed CP content to proactively remove yearling cattle earlier than the traditional October date or to strategically provide supplemental protein sources to grazing cattle.
dc.identifier.none.fl_str_mv https://ainfo.inia.uy/consulta/busca?b=pc&id=62825&biblioteca=vazio&busca=62825&qFacets=62825
dc.language.iso.none.fl_str_mv en
eng
dc.rights.es.fl_str_mv Acceso abierto
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:AINFO
instname:Instituto Nacional de Investigación Agropecuaria
instacron:Instituto Nacional de Investigación Agropecuaria
dc.subject.none.fl_str_mv Crude protein threshold
Forage quality
MOD09A1
Shortgrass rangeland
Remote sensing
Risk assessment
Semi-arid environment
dc.title.none.fl_str_mv Remotely sensed spatiotemporal variation in crude protein of shortgrass steppe forage.
dc.type.none.fl_str_mv Article
PublishedVersion
info:eu-repo/semantics/article
dc.type.version.none.fl_str_mv info:eu-repo/semantics/publishedVersion
description ABSTRACT.- In the Great Plains of central North America, sustainable livestock production is dependent on matching the timing of forage availability and quality with animal intake demands. Advances in remote sensing technology provide accurate information for forage quantity. However, similar efforts for forage quality are lacking. Crude protein (CP) content is one of the most relevant forage quality determinants of individual animal intake, especially below an 8% threshold for growing animals. In a set of shortgrass steppe paddocks with contrasting botanical composition, we (1) modeled the spatiotemporal variation in field estimates of CP content against seven spectral MODIS bands, and (2) used the model to assess the risk of reaching the 8% CP content threshold during the grazing season for paddocks with light, moderate, or heavy grazing intensities for the last 22 years (2000?2021). Our calibrated model explained up to 69% of the spatiotemporal variation in CP content. Different from previous investigations, our model was partially independent of NDVI, as it included the green and red portions of the spectrum as direct predictors of CP content. From 2000 to 2021, the model predicted that CP content was a limiting factor for growth of yearling cattle in 80% of the years for about 60% of the mid-May to October grazing season. The risk of forage quality being below the CP content threshold increases as the grazing season progresses, suggesting that ranchers across this rangeland region could benefit from remotely sensed CP content to proactively remove yearling cattle earlier than the traditional October date or to strategically provide supplemental protein sources to grazing cattle.
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spelling 2025-06-23T18:23:28Z2025-06-23T18:23:28Z20222025-06-23T18:23:28Zhttps://ainfo.inia.uy/consulta/busca?b=pc&id=62825&biblioteca=vazio&busca=62825&qFacets=62825ABSTRACT.- In the Great Plains of central North America, sustainable livestock production is dependent on matching the timing of forage availability and quality with animal intake demands. Advances in remote sensing technology provide accurate information for forage quantity. However, similar efforts for forage quality are lacking. Crude protein (CP) content is one of the most relevant forage quality determinants of individual animal intake, especially below an 8% threshold for growing animals. In a set of shortgrass steppe paddocks with contrasting botanical composition, we (1) modeled the spatiotemporal variation in field estimates of CP content against seven spectral MODIS bands, and (2) used the model to assess the risk of reaching the 8% CP content threshold during the grazing season for paddocks with light, moderate, or heavy grazing intensities for the last 22 years (2000?2021). Our calibrated model explained up to 69% of the spatiotemporal variation in CP content. Different from previous investigations, our model was partially independent of NDVI, as it included the green and red portions of the spectrum as direct predictors of CP content. From 2000 to 2021, the model predicted that CP content was a limiting factor for growth of yearling cattle in 80% of the years for about 60% of the mid-May to October grazing season. The risk of forage quality being below the CP content threshold increases as the grazing season progresses, suggesting that ranchers across this rangeland region could benefit from remotely sensed CP content to proactively remove yearling cattle earlier than the traditional October date or to strategically provide supplemental protein sources to grazing cattle.https://hdl.handle.net/20.500.12381/4195enenginfo:eu-repo/semantics/openAccessAcceso abiertoCrude protein thresholdForage qualityMOD09A1Shortgrass rangelandRemote sensingRisk assessmentSemi-arid environmentRemotely sensed spatiotemporal variation in crude protein of shortgrass steppe forage.ArticlePublishedVersioninfo:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionreponame:AINFOinstname:Instituto Nacional de Investigación Agropecuariainstacron:Instituto Nacional de Investigación AgropecuariaIRISARRI, J.G.N.DURANTE, M.DERNER, J.D.OESTERHELD, M.AUGUSTINE, D.J.SWORDsword-2025-06-23T15:23:28.original.xmlOriginal SWORD entry documentapplication/octet-stream2997https://redi.anii.org.uy/jspui/bitstream/20.500.12381/4195/1/sword-2025-06-23T15%3a23%3a28.original.xmlde66272d09c4ff2980f19368f93e9886MD5120.500.12381/41952026-02-10 15:53:56.063oai:redi.anii.org.uy:20.500.12381/4195Institucionalhttps://ainfo.inia.uy/Organismo científico-tecnológicohttp://inia.uyhttps://redi.anii.org.uy/oai/requestlorrego@inia.org.uyUruguayopendoar:2026-02-10T18:53:56AINFO - Instituto Nacional de Investigación Agropecuariafalse
spellingShingle Remotely sensed spatiotemporal variation in crude protein of shortgrass steppe forage.
IRISARRI, J.G.N.
Crude protein threshold
Forage quality
MOD09A1
Shortgrass rangeland
Remote sensing
Risk assessment
Semi-arid environment
status_str publishedVersion
title Remotely sensed spatiotemporal variation in crude protein of shortgrass steppe forage.
title_full Remotely sensed spatiotemporal variation in crude protein of shortgrass steppe forage.
title_fullStr Remotely sensed spatiotemporal variation in crude protein of shortgrass steppe forage.
title_full_unstemmed Remotely sensed spatiotemporal variation in crude protein of shortgrass steppe forage.
title_short Remotely sensed spatiotemporal variation in crude protein of shortgrass steppe forage.
title_sort Remotely sensed spatiotemporal variation in crude protein of shortgrass steppe forage.
topic Crude protein threshold
Forage quality
MOD09A1
Shortgrass rangeland
Remote sensing
Risk assessment
Semi-arid environment
url https://ainfo.inia.uy/consulta/busca?b=pc&id=62825&biblioteca=vazio&busca=62825&qFacets=62825