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Updated: May 1, 2026

Defining the Program of Maternal mRNA Translation during In vitro Maturation using a Single Oocyte Reporter Assay
Published on: June 16, 2021
Mechanistic target of rapamycin (MTOR) signaling during ovulation in mice
Dayananda Siddappa1, Anitha Kalaiselvanraja, Vilceu Bordignon
1Department of Animal Science, McGill University, Ste-Anne-de-Bellevue, Canada.
Abstract:
A complex network of endocrine/paracrine signals regulates granulosa-cell function in ovarian follicles. Mechanistic target of rapamycin (MTOR) has recently emerged as a master intracellular integrator of extracellular signals and nutrient availability. The objectives of the present study were to characterize the expression pattern and kinase activity of MTOR during follicular and corpus luteum development, and to examine how inhibition of MTOR kinase activity affects preovulatory maturation of ovarian follicles. MTOR expression was constitutive throughout follicular and corpus luteum development. Gonadotropins induced MTOR kinase activity in the ovary, which was inhibited by rapamycin treatment (10 µg/g body weight, intraperitoneal injection). Inhibition of human chorionic gonadotropin (hCG)-induced MTOR activity during preovulatory follicle maturation did not change key events of ovulation. Granulosa cells of rapamycin-treated mice showed reduced MTOR kinase activity at 1 and 4 hr post-hCG and overexpression of hCG-induced ovulation genes at 4 hr post-hCG. Overexpression of these ovulatory genes was associated with hyper-activation of extracellular signal-regulated kinase 1/2 (ERK1/2), which occurred in response to inhibition of MTOR with rapamycin and suggested that MTOR may function as a negative regulator of the mitogen-activated protein kinase (MAPK) pathway. Indeed, simultaneous inhibition of MTOR and ERK1/2 activities during preovulatory follicle maturation caused anovulation. Inhibition of hCG-induced ERK1/2 activity alone suppressed MTOR kinase activity, indicating that MAPK pathway is upstream of MTOR. Thus, normal ovulation appears to be a result of complex interactions between MTOR and MAPK signaling pathways in granulosa cells of ovulating follicles in mice.
Insights
Mechanistic target of rapamycin (MTOR) signaling integrates ovarian signals. Inhibiting MTOR in mice disrupted ovulation by affecting the MAPK pathway, revealing a complex interplay crucial for follicle maturation.
Area of Science:
- Reproductive Biology
- Cell Signaling
- Endocrinology
Background:
- Granulosa cell function in ovarian follicles is regulated by complex endocrine/paracrine signals.
- Mechanistic target of rapamycin (MTOR) integrates extracellular signals and nutrient availability.
- Understanding MTOR's role in ovarian follicle development is crucial for reproductive health.
Purpose of the Study:
- To characterize MTOR expression and kinase activity during ovarian follicle and corpus luteum development.
- To investigate the effects of MTOR kinase inhibition on preovulatory follicle maturation.
- To elucidate the interaction between MTOR and MAPK pathways in ovulation.
Main Methods:
- Characterized MTOR expression and activity in mouse ovaries during follicular development.
- Administered rapamycin to inhibit MTOR kinase activity.
- Examined the impact of MTOR inhibition on hCG-induced ovulation and gene expression.
- Investigated the interplay between MTOR and extracellular signal-regulated kinase 1/2 (ERK1/2) signaling.
Main Results:
- MTOR expression was constitutive, but gonadotropins induced its kinase activity.
- Rapamycin treatment inhibited MTOR activity and led to overexpression of ovulation genes.
- MTOR inhibition caused hyper-activation of ERK1/2, suggesting MTOR is a negative regulator of MAPK.
- Simultaneous inhibition of MTOR and ERK1/2 resulted in anovulation.
Conclusions:
- MTOR signaling is essential for normal ovulation in mice.
- The mitogen-activated protein kinase (MAPK) pathway is upstream of MTOR in this context.
- Ovulation results from complex interactions between MTOR and MAPK pathways in granulosa cells.
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