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Updated: Jul 7, 2026

Using Mouse Oocytes to Assess Human Gene Function During Meiosis I
Published on: April 10, 2018
Mouse fertility is enhanced by oocyte-specific loss of core 1-derived O-glycans
Suzannah A Williams1, Pamela Stanley
1Department of Cell Biology, Albert Einstein College of Medicine, New York, New York 10461, USA.
Abstract:
Regulation of the number of eggs ovulated by different mammalian species remains poorly understood. Here we show that oocyte-specific deletion at the primary follicle stage of core 1 beta1,3-galactosyltransferase (T-synthase; generates core 1-derived O-glycans), leads to a sustained increase in fertility. T-syn mutant females ovulated 30-50% more eggs and had a sustained increase in litter size compared to controls. Ovarian weights and follicle numbers were greater in mutants, but follicular apoptosis was not decreased. The number of follicles entering the growing pool was unaltered, but 3-wk mutants ovulated fewer eggs, suggesting that increased fertility results from prolonged follicle development. T-syn mutant ovaries also contained numerous multiple-oocyte follicles (MOFs) that appeared to form by adjacent, predominantly preantral, follicles joining--a new mechanism for MOF generation. Ovulation of multiple eggs from MOFs was not the reason for increased fertility based on ovulated egg and corpora lutea numbers. Thus, the absence of T-synthase caused modified follicular development, leading to the maturation and ovulation of more follicles, to MOF formation at late stages of folliculogenesis, and to increased fertility. These results identify novel roles for glycoproteins from the oocyte as suppressors of fertility and regulators of follicular integrity in the mouse.
Insights
Removing T-synthase in mouse oocytes increases fertility by promoting prolonged follicle development and generating multiple-oocyte follicles. This research reveals new roles for oocyte glycoproteins in regulating ovulation and reproductive success.
Area of Science:
- Reproductive Biology
- Glycobiology
- Mammalian Oogenesis
Background:
- The regulation of ovulation number in mammals is not fully understood.
- Oocyte glycoproteins' roles in fertility are largely unexplored.
Purpose of the Study:
- To investigate the function of core 1 beta1,3-galactosyltransferase (T-synthase) in oocyte development and its impact on fertility.
- To elucidate the mechanisms by which T-synthase absence affects folliculogenesis and ovulation.
Main Methods:
- Generated oocyte-specific T-synthase knockout mice at the primary follicle stage.
- Analyzed ovulation rates, litter size, ovarian morphology, follicle dynamics, and follicular apoptosis.
- Investigated the formation and contribution of multiple-oocyte follicles (MOFs).
Main Results:
- T-synthase deficient females exhibited a 30-50% increase in ovulated eggs and litter size.
- Mutant ovaries showed increased weight and follicle numbers without altered apoptosis.
- Prolonged follicle development and a novel MOF formation mechanism were observed, but MOFs did not account for the increased ovulation number.
Conclusions:
- Absence of T-synthase modifies follicular development, leading to increased follicle maturation and ovulation.
- T-synthase plays a critical role in regulating follicular integrity and suppressing fertility.
- Oocyte glycoproteins are novel regulators of mammalian fertility and follicular development.

