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Vertebrate reproductive science and technology
REVIEW (Open Access)

Genetic regulation of ovulation rate and multiple births

G. W. Montgomery https://orcid.org/0000-0002-4140-8139 A *
+ Author Affiliations
- Author Affiliations

A Institute for Molecular Bioscience, The University of Queensland, Brisbane, Qld, Australia.

* Correspondence to: g.montgomery1@uq.edu.au

Handling Editor: Jennifer Juengel

Reproduction, Fertility and Development 36, RD24083 https://doi.org/10.1071/RD24083
Submitted: 10 June 2024  Accepted: 9 August 2024  Published online: 2 September 2024

© 2024 The Author(s) (or their employer(s)). Published by CSIRO Publishing. This is an open access article distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (CC BY-NC-ND)

Abstract

Ovulation rate in many mammalian species is controlled to regulate the numbers of offspring and maximise reproductive success. Pathways that regulate ovulation rate still respond to genetic and environmental factors and show considerable variation within and between species. Genetic segregation, positional cloning, and association studies have discovered numerous mutations and genetic risk factors that contribute to this variation. Notable among the discoveries has been the role of mutations in bone morphogenetic protein 15 (BMP15), growth differentiation factor 9 (GDF9) and bone morphogenetic protein receptor type 1B (BMPR1B) from the intra-ovarian signalling pathway contributing to the evidence that signalling from the oocyte is the key driver in follicle regulation rather than circulating gonadotrophin concentrations. Multiple variants in different domains of BMP15 and GDF9 result in partial or complete loss of function of the proteins providing insights into their functional roles and differential regulation contributing to species differences in ovulation rate. Early success encouraged many more studies in prolific strains of sheep, cattle and goats providing a valuable catalogue of genetic variants of large effect increasing ovulation rate and litter size. More recently, genetic association studies are beginning to identify genetic risk factors with smaller effects. Most genes implicated are from pathways with defined roles in regulation of the ovarian function. However, some genomic regions suggest regulation by novel genes. Continuing genetic and related functional studies will add further to our understanding of the detailed regulation of ovulation rate and litter size with implications for health and animal production systems.

Keywords: genetic association, genetic regulation, GWAS, litter size, multiple birth, mutation screening, ovulation rate, twinning.

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