» Articles » PMID: 28193725

The TGF-β Family in the Reproductive Tract

Overview
Date 2017 Feb 15
PMID 28193725
Citations 43
Authors
Affiliations
Soon will be listed here.
Abstract

The transforming growth factor β (TGF-β) family has a profound impact on the reproductive function of various organisms. In this review, we discuss how highly conserved members of the TGF-β family influence the reproductive function across several species. We briefly discuss how TGF-β-related proteins balance germ-cell proliferation and differentiation as well as dauer entry and exit in TGF-β-related proteins maintain germ stem-cell identity and eggshell patterning. We then provide an in-depth analysis of landmark studies performed using transgenic mouse models and discuss how these data have uncovered basic developmental aspects of male and female reproductive development. In particular, we discuss the roles of the various TGF-β family ligands and receptors in primordial germ-cell development, sexual differentiation, and gonadal cell development. We also discuss how mutant mouse studies showed the contribution of TGF-β family signaling to embryonic and postnatal testis and ovarian development. We conclude the review by describing data obtained from human studies, which highlight the importance of the TGF-β family in normal female reproductive function during pregnancy and in various gynecologic pathologies.

Citing Articles

Decoding the Puzzle of Male Infertility: The Role of Infection, Inflammation, and Autoimmunity.

Sciorio R, De Paola L, Notari T, Ganduscio S, Amato P, Crifasi L Diagnostics (Basel). 2025; 15(5).

PMID: 40075794 PMC: 11899667. DOI: 10.3390/diagnostics15050547.


Marfan syndrome is associated with increased risk for gynecologic disorders and maternal complications.

Imbroane M, Akesson C, Kim H, Richards E J Assist Reprod Genet. 2024; 41(12):3371-3377.

PMID: 39470919 PMC: 11706806. DOI: 10.1007/s10815-024-03297-1.


The long road of drug development for endometriosis - Pains, gains, and hopes.

Liao Z, Monsivais D, Matzuk M J Control Release. 2024; 376:429-440.

PMID: 39427778 PMC: 11884332. DOI: 10.1016/j.jconrel.2024.10.036.


Smad4 and FoxH1 potentially interact to regulate cyp19a1a promoter in the ovary of ricefield eel (Monopterus albus).

Chen Q, Yang D, Chen M, Xiong J, Huang J, Ding W Biol Sex Differ. 2024; 15(1):60.

PMID: 39080808 PMC: 11290265. DOI: 10.1186/s13293-024-00636-w.


Identifying Regions of the Genome Associated with Conception Rate to the First Service in Holstein Heifers Bred by Artificial Insemination and as Embryo Transfer Recipients.

Kelson V, Kiser J, Davenport K, Suarez E, Murdoch B, Neibergs H Genes (Basel). 2024; 15(6).

PMID: 38927701 PMC: 11202900. DOI: 10.3390/genes15060765.


References
1.
Li W, Qiao W, Chen L, Xu X, Yang X, Li D . Squamous cell carcinoma and mammary abscess formation through squamous metaplasia in Smad4/Dpc4 conditional knockout mice. Development. 2003; 130(24):6143-53. DOI: 10.1242/dev.00820. View

2.
Vanderhyden B, Telfer E, Eppig J . Mouse oocytes promote proliferation of granulosa cells from preantral and antral follicles in vitro. Biol Reprod. 1992; 46(6):1196-204. DOI: 10.1095/biolreprod46.6.1196. View

3.
Tomic D, Brodie S, Deng C, Hickey R, Babus J, Malkas L . Smad 3 may regulate follicular growth in the mouse ovary. Biol Reprod. 2002; 66(4):917-23. DOI: 10.1095/biolreprod66.4.917. View

4.
Kai T, Spradling A . An empty Drosophila stem cell niche reactivates the proliferation of ectopic cells. Proc Natl Acad Sci U S A. 2003; 100(8):4633-8. PMC: 153607. DOI: 10.1073/pnas.0830856100. View

5.
Su Y, Wu X, OBrien M, Pendola F, Denegre J, Matzuk M . Synergistic roles of BMP15 and GDF9 in the development and function of the oocyte-cumulus cell complex in mice: genetic evidence for an oocyte-granulosa cell regulatory loop. Dev Biol. 2004; 276(1):64-73. DOI: 10.1016/j.ydbio.2004.08.020. View