Related Experiment Video
Updated: Jan 6, 2026

Dissection of Larval Zebrafish Gonadal Tissue
Published on: April 26, 2017
PGE2 inhibits spermatogonia differentiation in zebrafish: interaction with Fsh and an androgen
Diego Crespo1, Moline Severino Lemos2, Yu Ting Zhang3,4
1Reproductive Biology Group, Division Developmental Biology, Department Biology, Science Faculty, Utrecht University, Utrecht, The Netherlands.
Abstract:
Changes in zebrafish testicular gene expression induced by follicle-stimulating hormone (Fsh) or anti-Mullerian hormone (Amh) suggested that Amh inhibition and Fsh stimulation of spermatogenesis involved up and downregulation, respectively, of prostaglandin (PG) signaling. We found that Sertoli cells contacting type A undifferentiated (Aund) and differentiating (Adiff) spermatogonia expressed a key enzyme of PG production (Ptgs2); previous work showed that Sertoli cells contacting Adiff and B spermatogonia and spermatocytes showed ptges3b expression, an enzyme catalyzing PGE2 production. In primary testis tissue cultures, PGE2, but not PGD2 or PGF2α, reduced the mitotic activity of Adiff and their development into B spermatogonia. Vice versa, inhibiting PG production increased the mitotic activity of Adiff and B spermatogonia. Studies with pharmacological PG receptor antagonists suggest that an Ep4 receptor mediates the inhibitory effects on the development of spermatogonia, and cell-sorting experiments indicated this receptor is expressed mainly by testicular somatic cells. Combined inhibition of PG and steroid production moreover reduced the mitotic activity of Aund spermatogonia and led to their partial depletion, suggesting that androgens (and/or other testicular steroids), supported by PGE2, otherwise prevent depletion of Aund. Androgens also decreased testicular PGE2 production, increased the transcript levels of the enzyme-catabolizing PGs and decreased PGE2 receptor ptger4b transcript levels. Also Fsh potentially reduced, independent of androgens, PGE2 production by decreasing ptges3b transcript levels. Taken together, our results indicate that PGE2, via Ep4 receptors, favors self-renewal in conjunction with androgens and, independent of Fsh and androgens, inhibits differentiating divisions of spermatogonia.
Insights
Prostaglandin E2 (PGE2) signaling, mediated by Ep4 receptors, regulates spermatogonia development. PGE2 promotes self-renewal with androgens but inhibits differentiation, while FSH influences PGE2 production.
Area of Science:
- Reproductive Biology
- Endocrinology
- Molecular Biology
Background:
- Follicle-stimulating hormone (Fsh) and anti-Mullerian hormone (Amh) influence testicular gene expression.
- Prostaglandin (PG) signaling is implicated in spermatogenesis, with Amh inhibition and Fsh stimulation potentially involving its upregulation and downregulation, respectively.
Purpose of the Study:
- To investigate the role of prostaglandin E2 (PGE2) in regulating spermatogonia proliferation and differentiation in zebrafish.
- To identify the specific prostaglandin receptors and signaling pathways involved in these processes.
Main Methods:
- Primary zebrafish testis tissue culture
- Pharmacological inhibition of PG production and receptor antagonism
- Cell-sorting experiments
- Transcript level analysis of PG-related genes and receptors
Main Results:
- PGE2 inhibited mitotic activity of differentiating spermatogonia (Adiff) and their progression to B spermatogonia.
- Inhibition of PG production enhanced Adiff and B spermatogonia mitotic activity.
- The Ep4 receptor, primarily on testicular somatic cells, mediates PGE2's inhibitory effects.
- Androgens and PGE2 together prevent the depletion of undifferentiated spermatogonia (Aund), while androgens decrease PGE2 production.
- Fsh also reduced PGE2 production, independently of androgens.
Conclusions:
- PGE2, acting through Ep4 receptors, promotes Aund self-renewal in conjunction with androgens.
- PGE2 independently inhibits the differentiating divisions of spermatogonia.
- Fsh and androgens modulate testicular PGE2 production, influencing spermatogenesis regulation.

