Poultry Breeding: From Domestication to Genomic Tools: A Review

Publish Year: 1402
نوع سند: مقاله ژورنالی
زبان: English
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JR_GJSAR-11-3_006

تاریخ نمایه سازی: 23 بهمن 1402

Abstract:

The current review article aims to briefly highlight the most important genomics technologies used to create breeds that are productive and well-adapted in a given circumstance. It also emphasizes the role of bioinformatics in modern chicken breeding. Advances in genomics information technologies are valuable opportunities for achieving the required improvement, but their implementation implies access to technical and financial resources with suitable adjustment in the local situation. The majority of domesticated livestock species are chickens. The foundation for genomics has been established by the dramatic advancement of molecular genetics. The applications of the newest generations of molecular markers are incredible tools for farm animals' genetic advancement. These markers offer more precise genomic data and an improved understanding of the animal genetic resources. Genomics tools are essential for the accurate, fast, and efficient breeding of animals. Compared to other domesticated animals, chicken is widely accepted and has little to no taboos in terms of cultures, religions, and society. About resolving the issues of food security in a world affected by climatic change and human population expansion, it offers a unique genetic resource due to its resilience to a variety of environmental circumstances and demonstrated potential for breeding improvement. The historical evolutionary history of the chicken has been reconstructed thanks to recent investigations that have revealed new information about its DNA. Breeders of chickens must move more quickly towards creating and choosing enhanced breeds that can withstand environmental stress without compromising production and productivity.The current review article aims to briefly highlight the most important genomics technologies used to create breeds that are productive and well-adapted in a given circumstance. It also emphasizes the role of bioinformatics in modern chicken breeding. Advances in genomics information technologies are valuable opportunities for achieving the required improvement, but their implementation implies access to technical and financial resources with suitable adjustment in the local situation. The majority of domesticated livestock species are chickens. The foundation for genomics has been established by the dramatic advancement of molecular genetics. The applications of the newest generations of molecular markers are incredible tools for farm animals' genetic advancement. These markers offer more precise genomic data and an improved understanding of the animal genetic resources. Genomics tools are essential for the accurate, fast, and efficient breeding of animals. Compared to other domesticated animals, chicken is widely accepted and has little to no taboos in terms of cultures, religions, and society. About resolving the issues of food security in a world affected by climatic change and human population expansion, it offers a unique genetic resource due to its resilience to a variety of environmental circumstances and demonstrated potential for breeding improvement. The historical evolutionary history of the chicken has been reconstructed thanks to recent investigations that have revealed new information about its DNA. Breeders of chickens must move more quickly towards creating and choosing enhanced breeds that can withstand environmental stress without compromising production and productivity.

Authors

Shambel Taye

Ethiopian Institute of Agricultural Research, Debre Zeit Agricultural Research Center, Bishoftu, Ethiopia

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  • Adebabay, K. (2018). Whole Genome Based Characterization of Indigenous Chicken ...
  • AVIAGEN. (2012). Aviagen includes genomics information for the on-going improvement ...
  • Bekele, G., Kebede, K., & Ameha, N. (2015). On-farm phenotypic ...
  • Bekerie, E. M., Goraga, Z. S., Johansson, A. M., & ...
  • Boichard, D., Ducrocq, V., Croiseau, P., & Fritz, S. (2016). ...
  • Chambers, J. R. (1990). Genetics of growth and meat production ...
  • Crawford, R. (1990). Chapter 1. Origin and history of poultry ...
  • Crispo, M., Mulet, A. P., Tesson, L., Barrera, N., Cuadro, ...
  • Dekkers, J. C. (2004). Commercial application of marker-and gene-assisted selection ...
  • Dekkers, J. C., & Hospital, F. (2002). The use of ...
  • Desta, T.T. (2015). Phenomics and genomic landscape of Ethiopian village ...
  • Diamond, J. (2002). Evolution, consequences and future of plant and ...
  • EBI (Ethiopian Biodiversity Institute). (2016). Government of the Federal Democratic ...
  • Egahi, J. O., Dim, N. I., Momoh, O. M., & ...
  • Elferink, M. G., Megens, H. J., Vereijken, A., Hu, X., ...
  • Emebet, M. (2015). Phenotypic and genetic characterization of indigenous chicken ...
  • FAO. (2013). FAO Statistical Yearbook 2012, Food and Agriculture Organization ...
  • FAO. (2020). “FAOSTAT Database.” Poultry Production. ...
  • Food and Agriculture Organization. (2007). The State of the World’s ...
  • Fulton, J. E. (2012). Genomic selection for poultry breeding. Animal ...
  • Getu, A., Alemayehu, K., & Alebie, A. (2015). Status, Characterization ...
  • Gheyas, A. A., Vallejo-Trujillo, A., Kebede, A., Lozano-Jaramillo, M., Dessie, ...
  • Goraga, Z., Weigend, S., & Brockmann, G. (2012). Genetic diversity ...
  • Hall, S. J., & Bradley, D. G. (1995). Conserving livestock ...
  • Hassen, H., Neser, F. W. C., De Kock, A., & ...
  • Hayes, B. (2007). Quantitative trait loci mapping, marker assisted selection, ...
  • Hayes, B. J., & Goddard, M. E. (2007). Genomic selection. ...
  • Hayes, B. J., Lewin, H. A., & Goddard, M. E. ...
  • Khare, V., & Khare, A. (2017). Modern approach in animal ...
  • Kim, G. D., Lee, J. H., Song, S., Kim, S. ...
  • Kim, J. I., & Kim, J. Y. (2019). New era ...
  • Lawal, R. A., & Hanotte, O. (2021). Domestic chicken diversity: ...
  • Lawal, R. A., Al-Atiyat, R. M., Aljumaah, R. S., Silva, ...
  • Liu, T., Qu, H., Luo, C., Shu, D., Wang, J., ...
  • Liu, Y. P., Wu, G. S., Yao, Y. G., Miao, ...
  • Malomane, D. K., Simianer, H., Weigend, A., Reimer, C., Schmitt, ...
  • Melesse, A., Maak, S., Schmidt, R., & Von Lengerken, G. ...
  • Melesse, A., Tadele, A., Assefa, H., Taye, K., Kebede, T., ...
  • Meuwissen, T. H., Hayes, B. J., & Goddard, M. (2001). ...
  • Meuwissen, T., Hayes, B., & Goddard, M. (2016). Genomic selection: ...
  • Miao, Y. W., Peng, M. S., Wu, G. S., Ouyang, ...
  • Morris, K. V. (2012). Non-coding RNAs and epigenetic regulation of ...
  • Mwacharo, J. M., Bjørnstad, G., Han, J. L., & Hanotte, ...
  • Negassa, D., Melesse, A., & Banerjee, S. (2014). Phenotypic characterization ...
  • Nigussie, D., Van der Waaij, L. H., Tadelle, D., & ...
  • O’Sullivan, N. P., Preisinger, R., & Koerhuis, A. (2010). Combining ...
  • Park, T. S., Park, J., Lee, J. H., Park, J. ...
  • Picard Druet, D., Varenne, A., Herry, F., Hérault, F., Allais, ...
  • Rachma, A. S., Harada, H., Dagong, M. I. A., Rahim, ...
  • Ravindran, V. (2013). Main ingredients used in poultry feed formulations. ...
  • Ricroch, A. (2019, August). Global developments of genome editing in ...
  • Rubin, C. J., Zody, M. C., Eriksson, J., Meadows, J. ...
  • Shafi, A., Zahoor, I., Haq, E., & Fazili, K. M. ...
  • Slatkin, M. (2008). A Bayesian method for jointly estimating allele ...
  • Tadelle, D., Kijora, C., & Peters, K. J. (2003). Indigenous ...
  • Taha, F.A. (2003). Patterns of world poultry consumption and production. ...
  • Telugu, B. P., Park, K. E., & Park, C. H. ...
  • Teneva, A. (2009). Molecular markers in animal genome analysis. Biotechnology ...
  • Tirawattanawanich, C., Chantakru, S., Nimitsantiwong, W., & Tongyai, S. (2011). ...
  • Tuiskula-Haavisto, M., Honkatukia, M., Vilkki, J., de Koning, D. J., ...
  • VanRaden, P. M., Van Tassell, C. P., Wiggans, G. R., ...
  • Venter, J. C., Adams, M. D., Myers, E. W., Li, ...
  • Walugembe, M., Bertolini, F., Dematawewa, C. M. B., Reis, M. ...
  • Wang, X., Niu, Y., Zhou, J., Zhu, H., Ma, B., ...
  • West, B., & Zhou, B. X. (1988). Did chickens go ...
  • Wolc, A., Kranis, A., Arango, J., Settar, P., Fulton, J. ...
  • Wolc, A., Kranis, A., Lamont, S., Arango, J., Settar, P., ...
  • Woldekiros, H. S., & D'Andrea, A. C. (2017). Early evidence ...
  • Zeuner, F. E. (1963). A history of domesticated animals. Hutchinson, ...
  • نمایش کامل مراجع