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Genetic diversity evolution in the Mexican Charolais cattle population

OBJECTIVE: The aim was to characterize the genetic diversity evolution of the registered Mexican Charolais cattle population by pedigree analysis. METHODS: Data consisted of 331,390 pedigree records of animals born from 1934 to 2018. Average complete generation equivalent, generation interval, effec...

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Autores principales: Ríos-Utrera, Ángel, Montaño-Bermúdez, Moisés, Vega-Murillo, Vicente Eliezer, Martínez-Velázquez, Guillermo, Baeza-Rodríguez, Juan José, Román-Ponce, Sergio Iván
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Animal Bioscience 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8255882/
https://www.ncbi.nlm.nih.gov/pubmed/32898959
http://dx.doi.org/10.5713/ajas.20.0401
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author Ríos-Utrera, Ángel
Montaño-Bermúdez, Moisés
Vega-Murillo, Vicente Eliezer
Martínez-Velázquez, Guillermo
Baeza-Rodríguez, Juan José
Román-Ponce, Sergio Iván
author_facet Ríos-Utrera, Ángel
Montaño-Bermúdez, Moisés
Vega-Murillo, Vicente Eliezer
Martínez-Velázquez, Guillermo
Baeza-Rodríguez, Juan José
Román-Ponce, Sergio Iván
author_sort Ríos-Utrera, Ángel
collection PubMed
description OBJECTIVE: The aim was to characterize the genetic diversity evolution of the registered Mexican Charolais cattle population by pedigree analysis. METHODS: Data consisted of 331,390 pedigree records of animals born from 1934 to 2018. Average complete generation equivalent, generation interval, effective population size (N(e)), and effective numbers of founders (f(e)), ancestors (f(a)), and founder genomes (N(g)) were calculated for seven five-year periods. The inbreeding coefficient was calculated per year of birth, from 1984 to 2018, whereas the gene contribution of the most influential ancestors was calculated for the latter period. RESULTS: Average complete generation equivalent consistently increased across periods, from 4.76, for the first period (1984 through 1988), to 7.86, for the last period (2014 through 2018). The inbreeding coefficient showed a relative steadiness across the last seventeen years, oscillating from 0.0110 to 0.0145. During the last period, the average generation interval for the father-offspring pathways was nearly 1 yr. longer than that of the mother-offspring pathways. The effective population size increased steadily since 1984 (105.0) and until 2013 (237.1), but showed a minor decline from 2013 to 2018 (233.2). The population displayed an increase in the f(a) since 1984 and until 2008; however, showed a small decrease during the last decade. The effective number of founder genomes increased from 1984 to 2003, but revealed loss of genetic variability during the last fifteen years (from 136.4 to 127.7). The f(a):f(e) ratio suggests that the genetic diversity loss was partially caused by formation of genetic bottlenecks in the pedigree; in addition, the N(g):f(a) ratio indicates loss of founder alleles due to genetic drift. The most influential ancestor explained 1.8% of the total genetic variability in the progeny born from 2014 to 2018. CONCLUSION: Inbreeding, N(e), f(a), and N(g) are rather beyond critical levels; therefore, the current genetic status of the population is not at risk.
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spelling pubmed-82558822021-07-16 Genetic diversity evolution in the Mexican Charolais cattle population Ríos-Utrera, Ángel Montaño-Bermúdez, Moisés Vega-Murillo, Vicente Eliezer Martínez-Velázquez, Guillermo Baeza-Rodríguez, Juan José Román-Ponce, Sergio Iván Anim Biosci Article OBJECTIVE: The aim was to characterize the genetic diversity evolution of the registered Mexican Charolais cattle population by pedigree analysis. METHODS: Data consisted of 331,390 pedigree records of animals born from 1934 to 2018. Average complete generation equivalent, generation interval, effective population size (N(e)), and effective numbers of founders (f(e)), ancestors (f(a)), and founder genomes (N(g)) were calculated for seven five-year periods. The inbreeding coefficient was calculated per year of birth, from 1984 to 2018, whereas the gene contribution of the most influential ancestors was calculated for the latter period. RESULTS: Average complete generation equivalent consistently increased across periods, from 4.76, for the first period (1984 through 1988), to 7.86, for the last period (2014 through 2018). The inbreeding coefficient showed a relative steadiness across the last seventeen years, oscillating from 0.0110 to 0.0145. During the last period, the average generation interval for the father-offspring pathways was nearly 1 yr. longer than that of the mother-offspring pathways. The effective population size increased steadily since 1984 (105.0) and until 2013 (237.1), but showed a minor decline from 2013 to 2018 (233.2). The population displayed an increase in the f(a) since 1984 and until 2008; however, showed a small decrease during the last decade. The effective number of founder genomes increased from 1984 to 2003, but revealed loss of genetic variability during the last fifteen years (from 136.4 to 127.7). The f(a):f(e) ratio suggests that the genetic diversity loss was partially caused by formation of genetic bottlenecks in the pedigree; in addition, the N(g):f(a) ratio indicates loss of founder alleles due to genetic drift. The most influential ancestor explained 1.8% of the total genetic variability in the progeny born from 2014 to 2018. CONCLUSION: Inbreeding, N(e), f(a), and N(g) are rather beyond critical levels; therefore, the current genetic status of the population is not at risk. Animal Bioscience 2021-07 2020-08-30 /pmc/articles/PMC8255882/ /pubmed/32898959 http://dx.doi.org/10.5713/ajas.20.0401 Text en Copyright © 2021 by Animal Bioscience https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Article
Ríos-Utrera, Ángel
Montaño-Bermúdez, Moisés
Vega-Murillo, Vicente Eliezer
Martínez-Velázquez, Guillermo
Baeza-Rodríguez, Juan José
Román-Ponce, Sergio Iván
Genetic diversity evolution in the Mexican Charolais cattle population
title Genetic diversity evolution in the Mexican Charolais cattle population
title_full Genetic diversity evolution in the Mexican Charolais cattle population
title_fullStr Genetic diversity evolution in the Mexican Charolais cattle population
title_full_unstemmed Genetic diversity evolution in the Mexican Charolais cattle population
title_short Genetic diversity evolution in the Mexican Charolais cattle population
title_sort genetic diversity evolution in the mexican charolais cattle population
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8255882/
https://www.ncbi.nlm.nih.gov/pubmed/32898959
http://dx.doi.org/10.5713/ajas.20.0401
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