Molecular tool for efficient breeding of DOMINANT Greenshell laying hens and significant refinement of phenotypic selection focused on eggshell color
Jazyk angličtina Země Anglie, Velká Británie Médium print-electronic
Typ dokumentu časopisecké články
PubMed
39461274
PubMed Central
PMC11546150
DOI
10.1016/j.psj.2024.104425
PII: S0032-5791(24)01003-4
Knihovny.cz E-zdroje
- Klíčová slova
- CART methodology, Czech blue-shelled breed, L*a*b* color space, PCR marker, SLCO1B3,
- MeSH
- barva * MeSH
- chov * MeSH
- fenotyp * MeSH
- genotyp MeSH
- kur domácí * genetika fyziologie MeSH
- pigmentace * genetika MeSH
- selekce (genetika) MeSH
- vaječná skořápka * fyziologie MeSH
- zvířata MeSH
- Check Tag
- ženské pohlaví MeSH
- zvířata MeSH
- Publikační typ
- časopisecké články MeSH
- Geografické názvy
- Česká republika MeSH
In recent decades, interest in non-traditionally colored eggs has increased. For breeders, this market interest means breeding lines of laying hens that lay eggs of varied colors, such as the blue-green eggshells (Dominant Greenshell) in this study. This study presents the results of genotyping the polymorphism of the O locus responsible for shell coloration and photometric measurement of eggshell color based on the CIELAb system, which was carried out on the unique Czech breeding population Dominant Greenshell. The aim was to use a combination of phenotyping using the CIELab System method and genotyping of the O locus using the end-point PCR approach with the main focus on the accuracy of distinguishing shell color genotypes, streamlining the selection of dominant homozygotes in the O locus, optimizing this technology for the most efficient and cost-effective selection procedure in practical hen breeding. The optometric method was able to reliably distinguish only dominant and recessive phenotypes and eliminate from the population only undesirable recessive homozygotes with a white colored shell. The parameter a* (redness/greenness) from the CIELab color space turned out to be absolutely key for distinguishing dominant and recessive phenotypes. Using the CART methodology, a classification tree built on discriminating optometric characteristics a-blunt was obtained, however, for the group of desirable O/O homozygotes, the selection approach would result in incorrect genotyping of 31% of individuals. Therefore, a combined approach based on rapid and simple elimination of recessive homozygotes using phenotyping (CIELab photometric measurement) and molecular identification of the EAV-HP insertion in the SLCO1B3 gene in dominant phenotypes, regardless of color intensity affected by laying time/order, and allowing reliable elimination, has proven to be the most effective method to distinguish heterozygotes from the breeding population. The combination of optometric and molecular selection methods then leads to more efficient selection, reduction of overall selection costs. This process led to the stabilization of the breeding population within one generation and the achievement of a pure homozygous line with regard to eggshell color.
Zobrazit více v PubMed
Bates D., Maechler M., Bolker B., Walker S. Fitting Linear Mixed-Effects Models Using lme4. J. Stat. Soft. 2015;67:1–48.
Bi H., Liu Z., Sun C., Li G., Wu G., Shi F., Liu A., Yang N. Brown eggshell fading with layer ageing: dynamic change in the content of protoporphyrin IX. Poult. Sci. 2018;97:1948–1953. PubMed
Breiman L., Friedman J.H., Olshen R.A., Stone C.J. In Routledge eBooks; 2017. Classification and regression trees.
Cavero D., Schmutz M., Icken W., Preisinger R. Attractive eggshell color as a breeding goal. Lohmann Inform. 2012;47:16–21.
Chen J., Dalirsefat S.B., Han D., Dong X., Hua G., Zheng X., Xia T., Shao T., Deng X., Wu C. An EAV-HP insertion in the 5ʹ flanking region of SLCO1B3 is associated with its tissue-expression profile in blue-eggshell Yimeng chickens (Gallus gallus) Poult. Sci. 2020;99:6371–6377. PubMed PMC
Chen Q., Wang Z. A new molecular mechanism supports that blue-greenish egg color evolved independently across chicken breeds. Poult. Sci. 2022;101 PubMed PMC
Dalirsefat S.B., Dong X., Deng X. Molecular phylogenetic analysis of Chinese indigenous, blue-shelled chickens inferred from whole genomic region of the SLCO1B3 gene. Poult. Sci. 2015;94:1776–1786. PubMed
Darwish H.Y.A., Dalirsefat S.B., Dong X., Hua G., Chen J., Zhang Y., Li J., Xu J., Li J., Deng X., Wu C. Genome-wide association study and a post replication analysis revealed a promising genomic region and candidate genes for chicken eggshell blueness. PloS One. 2019;14 PubMed PMC
Doyle J. Springer eBooks; 1991. DNA protocols for plants; pp. 283–293.
Fairchild M.D. Copyright © John Wiley & Sons, Ltd; 2013. Color appearance models. Pages 273-286 in The CIE Color Appearance Model (1997)
Farnsworth G.M., Nordskog A.W. Breeding for Egg Quality1: 3. Genetic Differences in Shell Characteristics and Other Egg Quality Factors. Poult. Sci. 1955;34:16–26.
Godfrey G.F. Shell Color as a Measure of Egg Shell Quality1. Poult. Sci. 1949;28:150–151.
Guo J., Wang K., Qu L., Dou T., Ma M., Shen M., Hu Y. Genetic evaluation of eeggshell color based on additive and dominance models in laying hens. Asian-Australasian Journal of Animal Sciences. 2020;33:1217–1223. PubMed PMC
Hargitai R., Boross N., Nyiri Z., Eke Z. Effects of food limitation on the intensity of blue-green and brown eggshell coloration: an experimental study with the canary. Journal of Avian Biol. 2018;49:e01486.
Hunton P. Genetics of eggshell color in a light Sussex flock. Br. Poult. Sci. 1962;3:189–193.
Jolliffe I. Springer Science & Business Media; 2002. Principal component analysis.
Li X.Y., Xu G.Y., Hou Z.C., Zhao R., Yang N. Variation of eggshell color in different egg-type chickens. Arch.Geflügelk. 2006;70:278–282.
Liao B., Liu Y., Cao J., Ning Z. Analysis and research on pigment precipitation of eggshell based on green environment-friendly breeding technology. IOP Conf. Series. Earth and Environmental Sci. 2021;632
Lukanov H. Agricultural Science and Technology. 2014;6(1):3–10.
Lukanov H., Genchev A., Pavlov A. Color traits of chicken eggs with different eggshell pigmentation. Trakia Journal of Sciences. Series Biomedical Sci. 2015;13:149–158.
Punnett R.C. Genetic study in poultry–IX. The blue egg. Genetics. 1933;27:465–470.
R Core Team . 2024. R: A language and environment for statistical computing. R Foundation for Statistical Computing.https://www.R-project.org/ Accessed May 2024.
Samiullah S., Roberts J., Chousalkar K. Eggshell color in brown-egg laying hens — a review. Poult. Sci. 2015;94:2566–2575. PubMed PMC
Scott T., Silversides F. The effect of storage and strain of hen on egg quality. Poult. Sci. 2000;79:1725–1729. PubMed
Wang H., Ge Y., Zhang L., Wei Y., Li Q., Zhang X., Pan Y. The pigments in eggshell with different color and the pigment regulatory gene expression in corresponding chicken's shell gland. Animal. 2023;17 PubMed
Wang Z., Qu L., Yao J., Yang X., Li G., Zhang Y., Li J., Wang X., Bai J., Xu G., Deng X., Yang N., Wu C. An EAV-HP insertion in 5′ flanking region of SLCO1B3 causes blue eggshell in the chicken. PLOS Genet. 2013;9 PubMed PMC
Wang Z., Chen Q., Wang Y., Wang Y., Liu R. Refine localizations of functional variants affecting eggshell color of Lueyang black-boned chicken in the SLCO1B3. Poult. Sci. 2024;103 PubMed PMC
Wei R., Bitgood J.J. A new objective measurement of eggshell color. Poult. Sci. 1990;69:1775–1780.
Wragg D., Mwacharo J.M., Alcalde J.A., Wang C., Han J., Gongora J., Gourichon D., Tixier-Boichard M., Hanotte O. Endogenous retrovirus EAV-HP linked to blue egg phenotype in Mapuche fowl. PloS One. 2013;8:e71393. PubMed PMC
Zeng L., Xu G., Jiang C., Li J., Zheng J. Research Note: L*a*b* color space for prediction of eggshell pigment content in differently colored eggs. Poult. Sci. 2022;101 PubMed PMC
Zhao R., Xu G., Liu Z., Li J., Yang N. A study on eggshell pigmentation: biliverdin in blue-shelled chickens. Poult. Sci. 2006;85:546–549. PubMed