Genetic evaluations for growth heat tolerance in Angus cattle
The objectives were to assess the impact of heat stress and to develop a model for genetic evaluation of growth heat tolerance in Angus cattle. The American Angus Association provided weaning weight (WW) and yearling weight (YW) data, and records from the Upper South region were used because of the...
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creator | Bradford, H L Fragomeni, B O Bertrand, J K Lourenco, D A L Misztal, I |
description | The objectives were to assess the impact of heat stress and to develop a model for genetic evaluation of growth heat tolerance in Angus cattle. The American Angus Association provided weaning weight (WW) and yearling weight (YW) data, and records from the Upper South region were used because of the hot climatic conditions. Heat stress was characterized by a weaning (yearling) heat load function defined as the mean temperature-humidity index (THI) units greater than 75 (70) for 30 (150) d prior to the weigh date. Therefore, a weaning (yearling) heat load of 5 units corresponded to 80 (75) for the corresponding period prior to the weigh date. For all analyses, 82,669 WW and 69,040 YW were used with 3 ancestral generations in the pedigree. Univariate models were a proxy for the Angus growth evaluation, and reaction norms using 2 B-splines for heat load were fit separately for weaning and yearling heat loads. For both models, random effects included direct genetic, maternal genetic, maternal permanent environment (WW only), and residual. Fixed effects included a linear age covariate, age-of-dam class (WW only), and contemporary group for both models and fixed regressions on the B-splines in the reaction norm. Direct genetic correlations for WW were strong for modest heat load differences but decreased to less than 0.50 for large differences. Reranking of proven sires occurred for only WW direct effects for the reaction norms with extreme heat load differences. Conversely, YW results indicated little effect of heat stress on genetic merit. Therefore, weaning heat tolerance was a better candidate for developing selection tools. Maternal heritabilities were consistent across heat loads, and maternal genetic correlations were greater than 0.90 for nearly all heat load combinations. No evidence existed for a genotype × environment interaction for the maternal component of growth. Overall, some evidence exists for phenotypic plasticity for the direct genetic effects of WW, but traditional national cattle evaluations are likely adequately ranking sires for nonextreme environmental conditions. |
doi_str_mv | 10.2527/jas.2016-0707 |
format | Article |
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The American Angus Association provided weaning weight (WW) and yearling weight (YW) data, and records from the Upper South region were used because of the hot climatic conditions. Heat stress was characterized by a weaning (yearling) heat load function defined as the mean temperature-humidity index (THI) units greater than 75 (70) for 30 (150) d prior to the weigh date. Therefore, a weaning (yearling) heat load of 5 units corresponded to 80 (75) for the corresponding period prior to the weigh date. For all analyses, 82,669 WW and 69,040 YW were used with 3 ancestral generations in the pedigree. Univariate models were a proxy for the Angus growth evaluation, and reaction norms using 2 B-splines for heat load were fit separately for weaning and yearling heat loads. For both models, random effects included direct genetic, maternal genetic, maternal permanent environment (WW only), and residual. Fixed effects included a linear age covariate, age-of-dam class (WW only), and contemporary group for both models and fixed regressions on the B-splines in the reaction norm. Direct genetic correlations for WW were strong for modest heat load differences but decreased to less than 0.50 for large differences. Reranking of proven sires occurred for only WW direct effects for the reaction norms with extreme heat load differences. Conversely, YW results indicated little effect of heat stress on genetic merit. Therefore, weaning heat tolerance was a better candidate for developing selection tools. Maternal heritabilities were consistent across heat loads, and maternal genetic correlations were greater than 0.90 for nearly all heat load combinations. No evidence existed for a genotype × environment interaction for the maternal component of growth. Overall, some evidence exists for phenotypic plasticity for the direct genetic effects of WW, but traditional national cattle evaluations are likely adequately ranking sires for nonextreme environmental conditions.</description><identifier>EISSN: 1525-3163</identifier><identifier>DOI: 10.2527/jas.2016-0707</identifier><identifier>PMID: 27898850</identifier><language>eng</language><publisher>United States</publisher><subject>Animals ; Body Weight ; Cattle - genetics ; Cattle - growth & development ; Cattle - physiology ; Female ; Genotype ; Male ; Models, Genetic ; Thermotolerance ; Weaning</subject><ispartof>Journal of animal science, 2016-10, Vol.94 (10), p.4143-4150</ispartof><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>314,776,780,27901,27902</link.rule.ids><backlink>$$Uhttps://www.ncbi.nlm.nih.gov/pubmed/27898850$$D View this record in MEDLINE/PubMed$$Hfree_for_read</backlink></links><search><creatorcontrib>Bradford, H L</creatorcontrib><creatorcontrib>Fragomeni, B O</creatorcontrib><creatorcontrib>Bertrand, J K</creatorcontrib><creatorcontrib>Lourenco, D A L</creatorcontrib><creatorcontrib>Misztal, I</creatorcontrib><title>Genetic evaluations for growth heat tolerance in Angus cattle</title><title>Journal of animal science</title><addtitle>J Anim Sci</addtitle><description>The objectives were to assess the impact of heat stress and to develop a model for genetic evaluation of growth heat tolerance in Angus cattle. The American Angus Association provided weaning weight (WW) and yearling weight (YW) data, and records from the Upper South region were used because of the hot climatic conditions. Heat stress was characterized by a weaning (yearling) heat load function defined as the mean temperature-humidity index (THI) units greater than 75 (70) for 30 (150) d prior to the weigh date. Therefore, a weaning (yearling) heat load of 5 units corresponded to 80 (75) for the corresponding period prior to the weigh date. For all analyses, 82,669 WW and 69,040 YW were used with 3 ancestral generations in the pedigree. Univariate models were a proxy for the Angus growth evaluation, and reaction norms using 2 B-splines for heat load were fit separately for weaning and yearling heat loads. For both models, random effects included direct genetic, maternal genetic, maternal permanent environment (WW only), and residual. Fixed effects included a linear age covariate, age-of-dam class (WW only), and contemporary group for both models and fixed regressions on the B-splines in the reaction norm. Direct genetic correlations for WW were strong for modest heat load differences but decreased to less than 0.50 for large differences. Reranking of proven sires occurred for only WW direct effects for the reaction norms with extreme heat load differences. Conversely, YW results indicated little effect of heat stress on genetic merit. Therefore, weaning heat tolerance was a better candidate for developing selection tools. Maternal heritabilities were consistent across heat loads, and maternal genetic correlations were greater than 0.90 for nearly all heat load combinations. No evidence existed for a genotype × environment interaction for the maternal component of growth. Overall, some evidence exists for phenotypic plasticity for the direct genetic effects of WW, but traditional national cattle evaluations are likely adequately ranking sires for nonextreme environmental conditions.</description><subject>Animals</subject><subject>Body Weight</subject><subject>Cattle - genetics</subject><subject>Cattle - growth & development</subject><subject>Cattle - physiology</subject><subject>Female</subject><subject>Genotype</subject><subject>Male</subject><subject>Models, Genetic</subject><subject>Thermotolerance</subject><subject>Weaning</subject><issn>1525-3163</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2016</creationdate><recordtype>article</recordtype><sourceid>EIF</sourceid><recordid>eNo1jz1PwzAURS0kREthZEUeWVLs59hxBoaqogWpEgvM0XPy0qbKF7YD4t9TiTLd4R4d6TB2J8USNGSPRwxLENIkIhPZBZtLDTpR0qgZuw7hKIQEnesrNoPM5tZqMWdPW-opNiWnL2wnjM3QB14Pnu_98B0P_EAYeRxa8tiXxJuer_r9FHiJMbZ0wy5rbAPdnnfBPjbP7-uXZPe2fV2vdskIVsbElCgqJZ0AtLlJpXNVhk7pikoDwgFqZesUK-UUpPZ05tZllUNQ1hqQoBbs4c87-uFzohCLrgkltS32NEyhkDY9pQqtxAm9P6OT66gqRt906H-K_2T1C7ZGVdM</recordid><startdate>201610</startdate><enddate>201610</enddate><creator>Bradford, H L</creator><creator>Fragomeni, B O</creator><creator>Bertrand, J K</creator><creator>Lourenco, D A L</creator><creator>Misztal, I</creator><scope>CGR</scope><scope>CUY</scope><scope>CVF</scope><scope>ECM</scope><scope>EIF</scope><scope>NPM</scope><scope>7X8</scope></search><sort><creationdate>201610</creationdate><title>Genetic evaluations for growth heat tolerance in Angus cattle</title><author>Bradford, H L ; Fragomeni, B O ; Bertrand, J K ; Lourenco, D A L ; Misztal, I</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-p281t-6ca0d31b02a89641bbd7ab35dec620b2a538f4ad3b3248bd798b7dba238862123</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2016</creationdate><topic>Animals</topic><topic>Body Weight</topic><topic>Cattle - genetics</topic><topic>Cattle - growth & development</topic><topic>Cattle - physiology</topic><topic>Female</topic><topic>Genotype</topic><topic>Male</topic><topic>Models, Genetic</topic><topic>Thermotolerance</topic><topic>Weaning</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Bradford, H L</creatorcontrib><creatorcontrib>Fragomeni, B O</creatorcontrib><creatorcontrib>Bertrand, J K</creatorcontrib><creatorcontrib>Lourenco, D A L</creatorcontrib><creatorcontrib>Misztal, I</creatorcontrib><collection>Medline</collection><collection>MEDLINE</collection><collection>MEDLINE (Ovid)</collection><collection>MEDLINE</collection><collection>MEDLINE</collection><collection>PubMed</collection><collection>MEDLINE - Academic</collection><jtitle>Journal of animal science</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Bradford, H L</au><au>Fragomeni, B O</au><au>Bertrand, J K</au><au>Lourenco, D A L</au><au>Misztal, I</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Genetic evaluations for growth heat tolerance in Angus cattle</atitle><jtitle>Journal of animal science</jtitle><addtitle>J Anim Sci</addtitle><date>2016-10</date><risdate>2016</risdate><volume>94</volume><issue>10</issue><spage>4143</spage><epage>4150</epage><pages>4143-4150</pages><eissn>1525-3163</eissn><abstract>The objectives were to assess the impact of heat stress and to develop a model for genetic evaluation of growth heat tolerance in Angus cattle. The American Angus Association provided weaning weight (WW) and yearling weight (YW) data, and records from the Upper South region were used because of the hot climatic conditions. Heat stress was characterized by a weaning (yearling) heat load function defined as the mean temperature-humidity index (THI) units greater than 75 (70) for 30 (150) d prior to the weigh date. Therefore, a weaning (yearling) heat load of 5 units corresponded to 80 (75) for the corresponding period prior to the weigh date. For all analyses, 82,669 WW and 69,040 YW were used with 3 ancestral generations in the pedigree. Univariate models were a proxy for the Angus growth evaluation, and reaction norms using 2 B-splines for heat load were fit separately for weaning and yearling heat loads. For both models, random effects included direct genetic, maternal genetic, maternal permanent environment (WW only), and residual. Fixed effects included a linear age covariate, age-of-dam class (WW only), and contemporary group for both models and fixed regressions on the B-splines in the reaction norm. Direct genetic correlations for WW were strong for modest heat load differences but decreased to less than 0.50 for large differences. Reranking of proven sires occurred for only WW direct effects for the reaction norms with extreme heat load differences. Conversely, YW results indicated little effect of heat stress on genetic merit. Therefore, weaning heat tolerance was a better candidate for developing selection tools. Maternal heritabilities were consistent across heat loads, and maternal genetic correlations were greater than 0.90 for nearly all heat load combinations. No evidence existed for a genotype × environment interaction for the maternal component of growth. Overall, some evidence exists for phenotypic plasticity for the direct genetic effects of WW, but traditional national cattle evaluations are likely adequately ranking sires for nonextreme environmental conditions.</abstract><cop>United States</cop><pmid>27898850</pmid><doi>10.2527/jas.2016-0707</doi><tpages>8</tpages></addata></record> |
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source | Oxford University Press Journals All Titles (1996-Current); MEDLINE |
subjects | Animals Body Weight Cattle - genetics Cattle - growth & development Cattle - physiology Female Genotype Male Models, Genetic Thermotolerance Weaning |
title | Genetic evaluations for growth heat tolerance in Angus cattle |
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