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Using Ex Vivo Upright Droplet Cultures of Whole Fetal Organs to Study Developmental Processes during Mouse Organogenesis
Published on: October 21, 2015
Steroidogenesis in the fetal testis and its susceptibility to disruption by exogenous compounds
Hayley M Scott1, J Ian Mason, Richard M Sharpe
1MRC Human Reproductive Sciences Unit, Centre for Reproductive Biology, The Queen's Medical Research Institute, 47 Little France Crescent, Edinburgh, EH16 4TJ, UK.
Abstract:
Masculinization depends on adequate production of testosterone by the fetal testis within a specific "masculinization programming window." Disorders resulting from subtle deficiencies in this process are common in humans, and environmental exposures/lifestyle could contribute causally because common therapeutic and environmental compounds can affect steroidogenesis. This evidence derives mainly from rodent studies, but because there are major species differences in regulation of steroidogenesis in the fetal testis, this may not always be a guide to potential effects in the human. In addition to direct study of the effects of compounds on steroidogenesis, information also derives from study of masculinization disorders that result from mutations in genes in pathways regulating steroidogenesis. This review addresses this issue by critically reviewing the comparative timing of production and regulation of steroidogenesis in the fetal testis of humans and of rodents and its susceptibility to disruption; where there is limited information for the fetus, evidence from effects on steroidogenesis in the adult testis is considered. There are a number of fundamental regulatory differences between the human and rodent fetal testis, most notably in the importance of paracrine vs. endocrine drives during masculinization such that inactivating LH receptor mutations block masculinization in humans but not in rodents. Other large differences involve the steroidogenic response to estrogens and GnRH analogs and possibly phthalates, whereas for other compounds there may be differences in sensitivity to disruption (ketoconazole). This comparison identifies steroidogenic targets that are either vulnerable (mitochondrial cholesterol transport, CYP11A, CYP17) or not (cholesterol uptake) to chemical interference.
Insights
Fetal testis development and testosterone production are crucial for masculinization. Species differences in regulation mean rodent studies may not fully predict human responses to environmental disruptors.
Area of Science:
- Reproductive biology
- Endocrinology
- Toxicology
Background:
- Masculinization relies on fetal testosterone production during a critical window.
- Environmental factors and lifestyle may disrupt this process, impacting human development.
- Rodent models are commonly used, but significant species differences exist in fetal testicular steroidogenesis.
Purpose of the Study:
- To compare the timing and regulation of steroidogenesis in human and rodent fetal testes.
- To identify species-specific vulnerabilities of steroidogenesis to environmental disruption.
- To inform potential risks to human masculinization from chemical exposures.
Main Methods:
- Critical review of existing literature on human and rodent fetal testicular steroidogenesis.
- Comparative analysis of regulatory mechanisms, including paracrine and endocrine drives.
- Consideration of evidence from adult testes where fetal data is limited.
- Examination of effects of genetic mutations and chemical exposures on steroidogenic pathways.
Main Results:
- Fundamental differences exist in human vs. rodent fetal testis regulation (e.g., LH receptor importance).
- Steroidogenic responses to estrogens, GnRH analogs, and phthalates vary between species.
- Specific steroidogenic targets like mitochondrial cholesterol transport, CYP11A, and CYP17 are vulnerable to chemical interference.
Conclusions:
- Human and rodent fetal testes exhibit key regulatory differences impacting masculinization.
- Environmental compounds may disrupt human fetal steroidogenesis differently than predicted by rodent studies.
- Identifying vulnerable steroidogenic pathways is crucial for assessing risks of endocrine disruption.
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