Preview

Vavilov Journal of Genetics and Breeding

Advanced search

The use of whole genome amplification for genomic evaluation of bovine embryos

https://doi.org/10.18699/VJ19.518

Abstract

The integration of high technologies into livestock production has been actively occurring in the last decade in the countries with a developed animal breeding. First of all, we are talking about reproductive technologies (IVF) and genomic technologies (general genomic evaluation of animal and genomic evaluation of breeding value). Combining reproductive and genomic technologies is a promising approach that allows receiving highquality breeding cattle in the shortest possible time. The basis of the proposed technology for accelerated reproduction of high-value breeding cattle is to obtain information about the genome of the embryo for genomic evaluation. The amount of genetic material that can be obtained for research is extremely limited, as it is necessary to preserve the viability of the embryo. The stage of the whole genome amplification was introduced to obtain a high quality of genetic material in a sufficient quantity. The main purpose of this work is to assess the possibility of using embryo biopsy specimens (bsp) for embryo genotyping using microarray chips and predicting the carrier status of lethal haplotypes at the embryo stage. We obtained 100 cattle embryos, of which 78 biopsy specimens were taken to analysis. For the biopsies obtained we performed the whole genome amplification. The quality and quantity of DNA for all the 78 samples after the whole genome amplification were satisfactory for further genotyping. The quality of the performed genotyping was satisfactory and allowed the assessment of lethal haplotype carriers (determining the sex of the animal and identification of the carrier status for sevenHolsteinlethal haplotypes). We tested 78 embryos. From the genotyping analysis, there was detected one carrier status for three lethal haplotypes, HH0 (Brachyspina), HH5, and HCD. The carrier status of HH0 and HH5 was confirmed by testing the casual mutation using PCR analysis. The carrier status for HCD has not been confirmed by casual mutation analysis. The situation in which an animal is an HCD carrier, but not the carrier of a casual mutation, can be explained. The putative ancestor of the haplotype is the bull HOCAN000000334489 WILLOWHOLME MARK ANTHONY (year of birth is 1975), but a casual mutation associated with this disease has arisen only in his descendant HOCAN000005457798 MAUGHLIN STORM (year of birth is 1991). The results obtained confirm the importance of testing the casual mutation in the animals that are carriers of lethal haplotypes according to the genotyping data.

About the Authors

K. S. Pantiukh
I Gene, LLC
Russian Federation
Moscow


I. V. Rukin
I Gene, LLC
Russian Federation
Moscow


S. V. Portnov
I Gene, LLC
Russian Federation
Moscow


A. Khatib
Moscow M.V. Lomonosov State University
Russian Federation
Moscow


S. L. Panteleev
Ion Service, LLC
Russian Federation
Moscow


A. M. Mazur
I Gene, LLC
Russian Federation
Moscow


References

1. Boichard D., Ducrocq V., Croiseau P., Fritz S. Genomic selection in domestic animals: Principles, applications and perspectives. C. R. Biol. 2016;339(7-8):274-277. DOI 10.1016/j.crvi.2016.04.007.

2. Charlier C., Agerholm J.S., Coppieters W., Karlskov-Mortensen P., Li W., de Jong G., Fasquelle C., Karim L., Cirera S., Cambisano N., Ahariz N., Mullaart E., Georges M., Fredholm M. A deletion in the bovine FANCI gene compromises fertility by causing fetal death and brachyspina. PLoS One. 2012;7(8):e43085. DOI 10.1371/journal.pone.0043085.

3. Duff J.P., Passant S., Wessels M., Charlier C., Hateley G., Irvine R.M. Cholesterol deficiency causing calf illthrift and diarrhoea. Vet. Rec. 2016;178:424-425. DOI 10.1136/vr.i2265.

4. Dunin I.M., Adzhibekov K.K., Lozovaya G.S., Chekushkin A.M. Red-pied of dairy cattle in Russia. Farm Animals. 2013;1:56-61. (in Russian)

5. Durov A.S., Gamarnik N.G., Deeva V.S. Assessment of stud bulls in the population of the Simmental breed bred in the conditions of Khakassia. Vestnik Altayskogo Gosudarstvennogo Agrarnogo Universiteta = Bulletin of the Altai State Agricultural University. 2013;1:79-85. (in Russian)

6. Food and Agriculture Organization of the United Nations. Rome, 2007;4:381-427.

7. Fritz S., Capitan A., Djari A., Rodriguez S.C., Barbat A., Baur A., Grohs C., Weiss B., Boussaha M., Esquerré D., Klopp C., Rocha D., Boichard D. Detection of haplotypes associated with prenatal death in dairy cattle and identification of deleterious mutations in GART, SHBG and SLC37A2. PLoS One. 2013;8(6):e65550. DOI 10.1371/journal.pone.0065550.

8. Fritz S., Hoze C., Rebours E., Barbat A., Bizard M., Chamberlain A., Escouflaire C., Vander Jagt C., Boussaha M., Grohs C., Allais-Bonnet A., Philippe M., Vallée A., Amigues Y., Hayes B.J., Boichard D., Capitan A. An initiator codon mutation in SDE2 causes recessive embryonic lethality in Holstein cattle. J. Dairy Sci. 2018;101:1-12. Pubmed reference: 29680649. DOI 10.3168/jds.2017-14119.

9. Kipp S., Segelke D., Schierenbeck S., Reinhardt F., Reents R., Wurmser C., Pausch H., Fries R., Thaller G., Tetens J., Pott J., Piechotta M., Grünberg W. A new Holstein haplotype affecting calf survival. Interbull Bull. 2015;49:49-53.

10. Kuznetsov V.M. Historical Trends in Dairy Cattle Breeding in Russia and the USA. Kirov: North-East Research Institute of Agriculture Publ., 2015. (in Russian)

11. Ma L., Cole J.B., Da Y., VanRaden P.M. Symposium review: Genetics, genome-wide association study, and genetic improvement of dairy fertility traits. J. Dairy Sci. 2018 Sep. 26. pii: S00220302(18)309068. DOI 10.3168/jds.2018-15269.

12. Menzi F., Besuchet-Schmutz N., Fragnière M., Hofstetter S., Jagannathan V., Mock T., Raemy A., Studer E., Mehinagic K.,Regenscheit N., Meylan M., Schmitz-Hsu F., Drögemüller C. A transposable element insertion in APOB causes cholesterol deficiency in Holstein cattle. Anim. Genet. 2016;47(2):253-257. DOI 10.1111/age.12410.

13. Polisseni J., Sá W.F., Guerra Mde O., Machado M.A., Serapião R.V., Carvalho B.C., Camargo L.S., Peters V.M. Post-biopsy bovine embryo viability and whole genome amplification in preimplantation genetic diagnosis. Fertil. Steril. 2010;93(3):783-788. DOI 10.1016/j.fertnstert.2008.10.023.

14. Schütz E., Wehrhahn C., Wanjek M., Bortfeld R., Wemheuer W.E., Beck J., Brenig B. Correction: The Holstein Friesian lethal haplotype 5 (HH5) results from a complete deletion of TBF1M and cholesterol deficiency (CDH) from an ERV-(LTR) insertion into the coding region of APOB. PLoS One. 2016;11(6):e0157618. DOI 10.1371/journal.pone.0157618.

15. Shojaei Saadi H.A., Vigneault C., Sargolzaei M., Gagné D., Fournier É., de Montera B., Chesnais J., Blondin P., Robert C. Impact of whole-genome amplification on the reliability of pre-transfer cattle embryo breeding value estimates. BMC Genomics. 2014;15:889. DOI 10.1186/1471-2164-15-889.

16. Tikhonova T.N., Zharov I.N., Nikitina S.V., ..., Kharitonov S.N., Satsuk V.F., Kovalyuk N.V. Genetic Resources of ‘‘Moskovskoe’’ Enterprise for Breeding Work. Third Edition. Moscow, 2015;12. (in Russian)

17. VanRaden P.M., Olson K.M., Null D.J., Hutchison J.L. Harmful recessive effects on fertility detected by absence of homozygous haplotypes. J. Dairy Sci. 2011;94(12):6153-6161. DOI 10.3168/jds.2011-4624.


Review

Views: 870


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2500-3259 (Online)