GHRELIN IMPAIRS EMBRYO DEVELOPMENT AFTER OVARIAN HYPERSTIMULATION.
COH appears to delay embryo development in mice, potentially due to increased ghrelin levels, but the clinical significance of these findings remains uncertain.
Where it sits
this study against the rest of the ghrp-6 corpusSummary and findings
This study evaluated the effects of controlled ovarian hyperstimulation (COH) on preimplantation embryo development in female mice, comparing natural estrous cycles and COH with or without ghrelin receptor antagonists. COH increased ovulation rate, plasma progesterone, and ghrelin levels, while delaying embryo development at gestational day 3.5, which was reversed by (D-Lys3)-GHRP-6 or PF-5190457. No significant changes in implantation rates were observed.
Abstract
Controlled ovarian hyperstimulation (COH) is essential in assisted reproductive technologies, although some studies have associated it with reduced reproductive success. We recently demonstrated that COH increases circulating ghrelin; however, its role in COH-induced alterations and the potential therapeutic impact of its inhibition remain unclear. Using a murine model, this study evaluated the effects of COH on preimplantation embryo development and implantation and examined whether the COH-induced alterations in these parameters are associated with hyperghrelinemia. Here, we evaluated hormonal profiles, gamete and embryo quality, implantation, and decidual characteristics in female mice, either in natural estrous cycles (controls) or following hyperstimulation, with or without treatment with ghrelin receptor antagonists [(D-Lys3)-GHRP-6 or PF-5190457].We found that COH increased ovulation rate, plasma progesterone and ghrelin levels compared with controls, without altering oocyte quality or early estradiol concentrations; although estradiol rose later (gestational day -GD- 7.5). COH also induced a delay in embryo development (in GD 3.5), which was reversed by the administration of (D-Lys3)-GHRP-6 or PF-5190457. COH showed a non-significant trend toward lower implantation, unrelated to hyperghrelinemia. COH did not affect decidual histology, embryotropic or embryotoxic factors, or uterine leukocyte infiltration; however, it reduced uterine IL-6 expression, which was restored by ghrelin receptor blockade, suggesting a mechanism for the delayed embryo development. Thus, COH-induced hyperghrelinemia negatively affects embryo development, potentially altering the uterine immune microenvironment.
Background
This paper addresses the impact of ghrelin on embryo development, particularly in the context of ovarian hyperstimulation, a common procedure in assisted reproductive technologies. Previous studies have indicated that ghrelin may play a role in reproductive functions, but its effects on embryo viability remain unclear. Understanding these effects is crucial for improving outcomes in fertility treatments.
Methods
Not reported in abstract.
Results
Not reported in abstract.
Interpretation
Not reported in abstract.
Key findings
- Not reported in abstract.
Limitations
- Not reported in abstract.