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Published on: March 29, 2018
Excessive apoptosis and defective autophagy contribute to developmental testicular toxicity induced by fluoride
Shun Zhang1, Qiang Niu1, Hui Gao1
1Department of Environmental Health and MOE Key Lab of Environment and Health, School of Public Health, Tongji Medical College, Huazhong University of Science and Technology, 13 Hangkong Road, Wuhan 430030, Hubei, PR China.
Abstract:
Fluoride, a ubiquitous environmental contaminant, is known to impair testicular functions and fertility; however the underlying mechanisms remain obscure. In this study, we used a rat model to mimic human exposure and sought to investigate the roles of apoptosis and autophagy in testicular toxicity of fluoride. Sprague-Dawley rats were developmentally exposed to 25, 50, or 100 mg/L sodium fluoride (NaF) via drinking water from pre-pregnancy to post-puberty, and then the testes of offspring were excised on postnatal day 56. Our results demonstrated that developmental NaF exposure induced an enhanced testicular apoptosis, as manifested by a series of hallmarks such as caspase-3 activation, chromatin condensation and DNA fragmentation. Further study revealed that fluoride exposure elicited significant elevations in the levels of cell surface death receptor Fas with a parallel increase in cytoplasmic cytochrome c, indicating the involvement of both extrinsic and intrinsic apoptotic pathways. Intriguingly, fluoride treatment also simultaneously increased the number of autophagosomes and the levels of autophagy marker LC3-II but not Beclin1. Unexpectedly, the expression of p62, a substrate that is degraded by autophagy, was also significantly elevated, suggesting that the accumulated autophagosomes resulted from impaired autophagy degradation rather than increased formation. Importantly, these were associated with marked histopathological lesions including spermatogenic failure and germ cell loss, along with severe ultrastructural abnormalities in testes. Taken together, our findings provide deeper insights into roles of excessive apoptosis and defective autophagy in the aggravation of testicular damage, which could contribute to a better understanding of fluoride-induced male reproductive toxicity.
Insights
Developmental exposure to sodium fluoride (NaF) in rats impairs testicular function by increasing apoptosis and disrupting autophagy. This leads to germ cell loss and reproductive toxicity, highlighting fluoride
Area of Science:
- Environmental Toxicology
- Reproductive Biology
- Cellular Biology
Background:
- Fluoride is a common environmental contaminant with known adverse effects on male reproductive health.
- The precise mechanisms underlying fluoride-induced testicular toxicity, particularly involving apoptosis and autophagy, are not fully understood.
Purpose of the Study:
- To investigate the roles of apoptosis and autophagy in fluoride-induced testicular toxicity using a rat model.
- To elucidate the molecular pathways involved in fluoride's impact on male reproductive function.
Main Methods:
- Sprague-Dawley rats were exposed developmentally to sodium fluoride (NaF) via drinking water.
- Testes were analyzed on postnatal day 56 for markers of apoptosis (caspase-3, Fas, cytochrome c) and autophagy (autophagosomes, LC3-II, Beclin1, p62).
- Histopathological and ultrastructural examinations were performed to assess testicular damage.
Main Results:
- Developmental NaF exposure significantly enhanced testicular apoptosis through both extrinsic and intrinsic pathways.
- Fluoride exposure led to increased autophagosome accumulation, but elevated p62 levels indicated impaired autophagic degradation.
- These cellular changes correlated with spermatogenic failure, germ cell loss, and severe testicular histopathological abnormalities.
Conclusions:
- Excessive apoptosis and defective autophagy are key contributors to fluoride-induced testicular damage and male reproductive toxicity.
- Understanding these mechanisms provides crucial insights into the adverse effects of fluoride on male fertility.
- This study underscores the potential reproductive risks associated with developmental fluoride exposure.
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