4.7 Article

Unravelling transmission ratio distortion across the bovine genome: identification of candidate regions for reproduction defects

Journal

BMC GENOMICS
Volume 24, Issue 1, Pages -

Publisher

BMC
DOI: 10.1186/s12864-023-09455-6

Keywords

Transmission ratio distortion; Cattle Genomics; Reproduction; Mendelian inheritance; Deleterious mutations

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This study analyzed the genomic data of 441,802 Holstein cattle and identified 604 chromosomal regions showing significant transmission ratio distortion (TRD). The majority of these regions exhibited allelic TRD patterns, with reduced viability for carrier offspring or lethality for homozygous individuals. Functional analysis also revealed candidate genes related to embryonic development, DNA repair, and meiotic processes. These findings have implications for improving breeding success in cattle.
BackgroundBiological mechanisms affecting gametogenesis, embryo development and postnatal viability have the potential to alter Mendelian inheritance expectations resulting in observable transmission ratio distortion (TRD). Although the discovery of TRD cases have been around for a long time, the current widespread and growing use of DNA technologies in the livestock industry provides a valuable resource of large genomic data with parent-offspring genotyped trios, enabling the implementation of TRD approach. In this research, the objective is to investigate TRD using SNP-by-SNP and sliding windows approaches on 441,802 genotyped Holstein cattle and 132,991 (or 47,910 phased) autosomal SNPs.ResultsThe TRD was characterized using allelic and genotypic parameterizations. Across the whole genome a total of 604 chromosomal regions showed strong significant TRD. Most (85%) of the regions presented an allelic TRD pattern with an under-representation (reduced viability) of carrier (heterozygous) offspring or with the complete or quasi-complete absence (lethality) for homozygous individuals. On the other hand, the remaining regions with genotypic TRD patterns exhibited the classical recessive inheritance or either an excess or deficiency of heterozygote offspring. Among them, the number of most relevant novel regions with strong allelic and recessive TRD patterns were 10 and 5, respectively. In addition, functional analyses revealed candidate genes regulating key biological processes associated with embryonic development and survival, DNA repair and meiotic processes, among others, providing additional biological evidence of TRD findings.ConclusionsOur results revealed the importance of implementing different TRD parameterizations to capture all types of distortions and to determine the corresponding inheritance pattern. Novel candidate genomic regions containing lethal alleles and genes with functional and biological consequences on fertility and pre- and post-natal viability were also identified, providing opportunities for improving breeding success in cattle.

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