Literature DB >> 31091422

Uterine Gαq/11 signaling, in a progesterone-dependent manner, critically regulates the acquisition of uterine receptivity in the female mouse.

Vanessa de Oliveira1,2, Jennifer Schaefer1,2, Michele Calder3, John P Lydon4, Francesco J DeMayo5, Moshmi Bhattacharya2,6, Sally Radovick1,2, Andy V Babwah1,2.   

Abstract

A nonreceptive uterus is a major cause of embryo implantation failure. This study examined the importance of the Gαq/11-coupled class of GPCRs as regulators of uterine receptivity. Mice were created lacking uterine Gαq and Gα11; as a result, signaling by all uterine Gαq/11-coupled receptors was disrupted. Reproductive profiling of the knockout females revealed that on d 4 of pregnancy, despite adequate serum progesterone (P4) levels and normal P4 receptor (PR) expression, there was no evidence of PR signaling. This resulted in the down-regulation of heart and neural crest derivatives expressed 2, Kruppel-like factor 15, and cyclin G1 and the subsequent persistent proliferation of the luminal epithelium. Aquaporin (Aqp) 11 was also potently down-regulated, whereas Aqp5/AQP5 expression persisted, resulting in the inhibition of luminal closure. Hypertrophy of the myometrial longitudinal muscle was also dramatically diminished, likely contributing to the observed implantation failure. Further analyses revealed that a major mechanism via which uterine Gαq/11 signaling induces PR signaling is through the transcriptional up-regulation of leucine-rich repeat-containing GPCR 4 (Lgr4). LGR4 was previously identified as a trigger of PR activation and signaling. Overall, this study establishes that Gαq/11 signaling, in a P4-dependent manner, critically regulates the acquisition of uterine receptivity in the female mouse, and disruption of such signaling results in P4 resistance.-de Oliveira, V., Schaefer, J., Calder, M., Lydon, J. P., DeMayo, F. J., Bhattacharya, M., Radovick, S., Babwah, A. V. Uterine Gαq/11 signaling, in a progesterone-dependent manner, critically regulates the acquisition of uterine receptivity in the female mouse.

Entities:  

Keywords:  GPCR; aquaporin; epithelium; myometrium; uterus

Mesh:

Substances:

Year:  2019        PMID: 31091422      PMCID: PMC6662978          DOI: 10.1096/fj.201900026R

Source DB:  PubMed          Journal:  FASEB J        ISSN: 0892-6638            Impact factor:   5.834


  58 in total

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6.  Stoichiometry and site-specific phosphorylation of human progesterone receptor in native target cells and in the baculovirus expression system.

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2.  Uterine aquaporin expression is dynamically regulated by estradiol and progesterone and ovarian stimulation disrupts embryo implantation without affecting luminal closure.

Authors:  Vanessa de Oliveira; Jennifer Schaefer; Basim Abu-Rafea; George A Vilos; Angelos G Vilos; Moshmi Bhattacharya; Sally Radovick; Andy V Babwah
Journal:  Mol Hum Reprod       Date:  2020-03-26       Impact factor: 4.025

Review 3.  Uterine Luminal Epithelium as the Transient Gateway for Embryo Implantation.

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Review 4.  The Role of LGR4 (GPR48) in Normal and Cancer Processes.

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5.  Uterine kisspeptin receptor critically regulates epithelial estrogen receptor α transcriptional activity at the time of embryo implantation in a mouse model.

Authors:  Jennifer Schaefer; Angelos G Vilos; George A Vilos; Moshmi Bhattacharya; Andy V Babwah
Journal:  Mol Hum Reprod       Date:  2021-09-29       Impact factor: 4.025

Review 6.  Emerging Roles for LGR4 in Organ Development, Energy Metabolism and Carcinogenesis.

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  7 in total

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