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Defining the cellular and molecular mechanisms of toxicant action in the testis
John H Richburg1, Kamin J Johnson, Heidi A Schoenfeld
1Division of Pharmacology and Toxicology, College of Pharmacy, The University of Texas at Austin, 78712, USA. john_richburg@mail.utexas.edu
Abstract:
A symposium was held at the 41st annual meeting of the Society of Toxicology with presentations that emphasized novel molecular and cellular pathways that modulate the response to testicular toxicants. The first two presentations described cellular alterations after exposure to the Sertoli cell toxicant, mono-(2-ethylhexyl) phthalate (MEHP). The expression of flamingo1, a G protei coupled receptor family member that may couple cell-cell adhesion to G protein-dependent signaling in Sertoli cells, was rapidly altered after MEHP exposure. Sertoli cell associated flamingo1 immunostaining was redistributed early (within 2 h) after MEHP exposure and disappeared by 12 h, suggesting that flamingo1 is a proximal phthalate target. MEHP was also described to alter the expression and activity of the newly identified death receptors DR4, 5 and 6 in the testis. The differential cellular changes in the levels of DR4, 5 and 6 after phthalate exposure suggested that they may act as surrogates or in concert with the widely described Fas-signaling pathway in the initiation of germ cell apoptosis after MEHP exposure. The next two presentations focused on revealing mechanisms that may explain the persistent post-exposure testicular atrophy that is observed in rodents after a variety of chemical or physical insults (radiation, chemotherapeutics, toxicants) and possible strategies to re-initiate spermatogenesis in the atrophic testis. Hormonal manipulations that lower testosterone and serum FSH levels allow for re-initiation of spermatogonial development. Recent investigation of additional models of persistent atrophy such as mutant mice, the aged Brown Norway rat, EDS-induced Leydig cell deficient rat, and primates, have broadened insight into the mechanisms responsible for persistent atrophy. The last presentation described the use of cDNA arrays in the investigation of cellular elements and mechanisms responsible for disruption of spermatogenesis by the drinking water disinfectant bromochloroacetic acid (BCA). A custom mouse testis cDNA array interrogating 950 genes was used for analysis of testis mRNA. BCA altered the expression of 53 of the 950 genes, including two encoding sperm proteins known to be significant for male fertility, and other genes involved in spermatogenesis, stress response, and cell communication/adhesion. These observations strengthen the hypothesis that BCA disrupts spermatogenesis by altering the process of spermiogenesis.
Insights
This study explores how testicular toxicants affect molecular pathways, revealing early cellular changes and potential targets for preventing damage. It also investigates mechanisms of persistent testicular atrophy and strategies for restoring sperm production.
Area of Science:
- Reproductive Toxicology
- Molecular Toxicology
- Cellular Toxicology
Background:
- Testicular toxicants can disrupt male reproductive health through novel molecular and cellular pathways.
- Understanding these pathways is crucial for developing strategies to prevent or reverse testicular damage and infertility.
Framework:
- Mono-(2-ethylhexyl) phthalate (MEHP) rapidly alters flamingo1 expression and affects death receptors (DR4, 5, 6) in Sertoli cells, potentially initiating germ cell apoptosis.
- Persistent testicular atrophy mechanisms are investigated using diverse models, revealing hormonal influences and cellular changes.
- Bromochloroacetic acid (BCA) disrupts spermatogenesis by altering gene expression related to sperm proteins and spermiogenesis.
Implementation:
- Symposium presentations highlighted novel findings on testicular toxicant effects.
- Studies utilized molecular assays, immunostaining, and cDNA arrays to analyze cellular responses.
- Diverse animal models, including rodents and primates, were employed to study atrophy and toxicant effects.
Implications:
- Identifying proximal targets like flamingo1 and death receptors offers new avenues for therapeutic intervention against phthalate toxicity.
- Insights into atrophy mechanisms may lead to strategies for re-initiating spermatogenesis in infertile individuals.
- Understanding BCA's impact on gene expression provides a basis for assessing risks associated with water disinfectants and male fertility.