Literature DB >> 12017541

Identification of specific sites of hormonal regulation in spermatogenesis in rats, monkeys, and man.

R I McLachlan1, L O'Donnell, S J Meachem, P G Stanton, D M de Kretser, K Pratis, D M Robertson.   

Abstract

A detailed understanding of the hormonal regulation of spermatogenesis is required for the informed assessment and management of male fertility and, conversely, for the development of safe and reversible male hormonal contraception. An approach to the study of these issues is outlined based on the use of well-defined in vivo models of gonadotropin/androgen deprivation and replacement, the quantitative assessment of germ cell number using stereological techniques, and the directed study of specific steps in spermatogenesis shown to be hormone dependent. Drawing together data from rat, monkey, and human models, we identify differences between species and formulate an overview of the hormonal regulation of spermatogenesis. There is good evidence for both separate and synergistic roles for both testosterone and follicle-stimulating hormone (FSH) in achieving quantitatively normal spermatogenesis. Based on relatively selective withdrawal and replacement studies, FSH has key roles in the progression of type A to B spermatogonia and, in synergy with testosterone, in regulating germ cell viability. Testosterone is an absolute requirement for spermatogenesis. In rats, it has been shown to promote the adhesion of round spermatids to Sertoli cells, without which they are sloughed from the epithelium and spermatid elongation fails. The release of mature elongated spermatids from the testis (spermiation) is also under FSH/testosterone control in rats. Data from monkeys and men treated with steroidal contraceptives indicate that impairment of spermiation is a key to achieving azoospermia. The contribution of 5alpha-reduced androgens in the testis to the regulation of spermatogenesis is also relevant, as 5alpha-reduced androgens are maintained during gonadotropin suppression and may act to maintain low levels of germ cell development. These concepts are also discussed in the context of male hormonal contraceptive development.

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Year:  2002        PMID: 12017541     DOI: 10.1210/rp.57.1.149

Source DB:  PubMed          Journal:  Recent Prog Horm Res        ISSN: 0079-9963


  75 in total

1.  Insufficient androgen and FSH signaling may be responsible for the azoospermia of the infantile primate testes despite exposure to an adult-like hormonal milieu.

Authors:  Subeer S Majumdar; Kanchan Sarda; Indrashis Bhattacharya; Tony M Plant
Journal:  Hum Reprod       Date:  2012-06-04       Impact factor: 6.918

Review 2.  Endocrine control of spermatogenesis: Role of FSH and LH/ testosterone.

Authors:  Suresh Ramaswamy; Gerhard F Weinbauer
Journal:  Spermatogenesis       Date:  2015-01-26

Review 3.  Vertebrate Reproduction.

Authors:  Sally Kornbluth; Rafael Fissore
Journal:  Cold Spring Harb Perspect Biol       Date:  2015-10-01       Impact factor: 10.005

Review 4.  Effective Delivery of Male Contraceptives Behind the Blood-Testis Barrier (BTB) - Lesson from Adjudin.

Authors:  Haiqi Chen; Dolores D Mruk; Weiliang Xia; Michele Bonanomi; Bruno Silvestrini; Chuen-Yan Cheng
Journal:  Curr Med Chem       Date:  2016       Impact factor: 4.530

5.  Androgens regulate the permeability of the blood-testis barrier.

Authors:  Jing Meng; Robert W Holdcraft; James E Shima; Michael D Griswold; Robert E Braun
Journal:  Proc Natl Acad Sci U S A       Date:  2005-11-07       Impact factor: 11.205

6.  Testosterone signaling and the regulation of spermatogenesis.

Authors:  William H Walker
Journal:  Spermatogenesis       Date:  2011-04

Review 7.  Hormonal control of Sertoli cell metabolism regulates spermatogenesis.

Authors:  Marco G Alves; Luís Rato; Rui A Carvalho; Paula I Moreira; Sílvia Socorro; Pedro F Oliveira
Journal:  Cell Mol Life Sci       Date:  2012-07-20       Impact factor: 9.261

8.  Gonadotropins regulate rat testicular tight junctions in vivo.

Authors:  Mark J McCabe; Gerard A Tarulli; Sarah J Meachem; David M Robertson; Peter M Smooker; Peter G Stanton
Journal:  Endocrinology       Date:  2010-03-31       Impact factor: 4.736

9.  Matrix-coated transwell-cultured TM4 sertoli cell testosterone-regulated gene expression mimics in vivo expression.

Authors:  Brianna C Prante; Kiera L Garman; Brandon N Sims; J Suzanne Lindsey
Journal:  In Vitro Cell Dev Biol Anim       Date:  2008-09-23       Impact factor: 2.416

10.  TNF-α-mediated suppression of Leydig cell steroidogenesis involves DAX-1.

Authors:  Mohanraj Sadasivam; Balamurugan Ramatchandirin; Sivasangari Balakrishnan; Chidambaram Prahalathan
Journal:  Inflamm Res       Date:  2015-06-06       Impact factor: 4.575

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