Literature DB >> 17127300

Molecular control of ovulation and luteinization in the primate follicle.

Richard L Stouffer1, Fuhua Xu, Diane M Duffy.   

Abstract

In recent years, significant progress was made, particularly through the use of the macaque monkey, in identifying three types of local factors that are induced by the midcycle LH surge and play a critical role in ovulation and/or luteinization of the primate follicle. The ovulatory gonadotropin surge increases prostaglandin (PTG, typically abbreviated PG) levels in follicles prior to rupture; although considerable attention has focused on LH stimulation of the "inducible" form of PG G/H synthase (PTGS2), other aspects of PG synthesis (notably a phospholipase A2, cPLA2, and a PGE synthase, PTGES) and metabolism (15-hydroxy PG dehydrogenase, HPGD) also appear LH-regulated and may control the timing of the PG rise in the ovulatory follicle. Local (intrafollicular) ablation and replacement of PGs suggests that PGE2 is essential for release of the oocyte; but not necessarily for follicle rupture, and not for luteinization. Novel PGE-regulated genes are being identified in macaque granulosa cells, including adipose differentiation-related protein (ADFP). Similar types of studies indicate that the rise in progesterone (P) synthesis, as well as the induction of the genomic P receptor in granulosa cells, is essential for both ovulation and luteinization of the primate follicle. Limited data suggest that P action controls cell cycle activity (via cyclin B1 and cyclin-dependent kinase inhibitor p27), cholesterol uptake and utilization (e.g., low density lipoprotein or LDL receptor), proteases and their inhibitors (matrix metalloproteinase or MMP1; tissue inhibitor of MMP or TIMP1) and cell health in the granulosa cell layer. Finally, members of two classes of angiogenic factors, originally proposed as important for embryonic and pathologic (tumorigenic) vasculogenesis, appear induced in the granulosa layer of the preovulatory follicle, i.e., vascular endothelial growth factor (VEGF) and angiopoietin (ANGPT). Local injection of antagonists to VEGF (soluble VEGF receptor) and ANGPT (the natural antagonist ANGPT2) into the preovulatory follicle suppressed ovulation and luteinization in monkeys, possibly by disrupting the structure-function of existing vessels or preventing angiogenesis in the avascular granulosa layer. Further studies using high-throughput genomic and proteomic analysis, particularly on specific cell types (e.g., granulosa, theca and microvascular cells) and distinct follicular regions (apex, base and cumulus-oocyte complex) of the dominant follicle in natural menstrual cycles, are needed. Such information is essential to advance our understanding of the cascade of events leading to ovulation and luteinization of the primate follicle, to unravel the causes of ovary-based infertility and to consider novel ovary-selective approaches to contraception.

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Year:  2007        PMID: 17127300     DOI: 10.2741/2065

Source DB:  PubMed          Journal:  Front Biosci        ISSN: 1093-4715


  34 in total

1.  Chronically elevated androgen and/or consumption of a Western-style diet impairs oocyte quality and granulosa cell function in the nonhuman primate periovulatory follicle.

Authors:  Cecily V Bishop; Taylor E Reiter; David W Erikson; Carol B Hanna; Brittany L Daughtry; Shawn L Chavez; Jon D Hennebold; Richard L Stouffer
Journal:  J Assist Reprod Genet       Date:  2019-06-11       Impact factor: 3.412

2.  Androgen Receptor in the Ovary Theca Cells Plays a Critical Role in Androgen-Induced Reproductive Dysfunction.

Authors:  Yaping Ma; Stanley Andrisse; Yi Chen; Shameka Childress; Ping Xue; Zhiqiang Wang; Dustin Jones; CheMyong Ko; Sara Divall; Sheng Wu
Journal:  Endocrinology       Date:  2017-01-01       Impact factor: 4.736

Review 3.  Ovulation: Parallels With Inflammatory Processes.

Authors:  Diane M Duffy; CheMyong Ko; Misung Jo; Mats Brannstrom; Thomas E Curry
Journal:  Endocr Rev       Date:  2019-04-01       Impact factor: 19.871

4.  Pituitary-ovary-spleen axis in ovulation.

Authors:  Oliver R Oakley; Michele L Frazer; CheMyong Ko
Journal:  Trends Endocrinol Metab       Date:  2011-05-18       Impact factor: 12.015

Review 5.  Endocrine and local control of the primate corpus luteum.

Authors:  Richard L Stouffer; Cecily V Bishop; Randy L Bogan; Fuhua Xu; Jon D Hennebold
Journal:  Reprod Biol       Date:  2013-09-14       Impact factor: 2.376

Review 6.  Developmental Programming of Ovarian Functions and Dysfunctions.

Authors:  Muraly Puttabyatappa; Vasantha Padmanabhan
Journal:  Vitam Horm       Date:  2018-02-22       Impact factor: 3.421

7.  Differential expression of matrix metalloproteinases during stimulated ovarian recrudescence in Siberian hamsters (Phodopus sungorus).

Authors:  Trevor J Salverson; Greer E McMichael; Jonathan J Sury; Asha Shahed; Kelly A Young
Journal:  Gen Comp Endocrinol       Date:  2007-09-19       Impact factor: 2.822

8.  Temporal profiling of rat transcriptomes in retinol-replenished vitamin A-deficient testis.

Authors:  Timothy J Doyle; Asa J Oudes; Kwan Hee Kim
Journal:  Syst Biol Reprod Med       Date:  2009-08       Impact factor: 3.061

9.  A comparative study on oxidative and antioxidative markers of serum and follicular fluid in GnRH agonist and antagonist cycles.

Authors:  Ebru Celik; Onder Celik; Banu Kumbak; Ercan Yilmaz; Ilgin Turkcuoglu; Yavuz Simsek; Abdullah Karaer; Yagmur Minareci; Elif Ozerol; Kevser Tanbek
Journal:  J Assist Reprod Genet       Date:  2012-08-12       Impact factor: 3.412

Review 10.  Control of oocyte release by progesterone receptor-regulated gene expression.

Authors:  Rebecca L Robker; Lisa K Akison; Darryl L Russell
Journal:  Nucl Recept Signal       Date:  2009-12-31
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