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Updated: May 23, 2026

Comprehensive Assessment of Germline Chemical Toxicity Using the Nematode Caenorhabditis elegans
Published on: February 22, 2015
Expression of calmodulin in germ cells is associated with fenvalerate-induced male reproductive toxicity
Xiaohua Gao1, Qiang Wang, Jun Wang
1Department of Toxicology and Key Laboratory of Modern Toxicology, Ministry of Education, School of Public Health, Nanjing Medical University, Nanjing, 210029, Jiangsu, People's Republic of China.
Abstract:
Exposure to fenvalerate was demonstrated to be toxic to the male reproductive system. Our previous data revealed that intracellular calcium plays an important role in regulating the above toxicity, through actions on both T-type calcium channels and endoplasmic reticulum calcium signals. The present study explored the effects of fenvalerate on the expression of calmodulin in mouse testis and GC-2spd(ts) cells, and its association with fenvalerate-induced male reproductive toxicity. Male mice were subjected to different doses (3.71, 18.56, 37.12, 92.81 mg/kg bw) of fenvalerate or vehicle control for 4 weeks. Expression of calmodulin was determined by real-time polymerase chain reaction (PCR) and Western blot analysis in mouse testis. Similar approaches were utilized in GC-2spd(ts) cells cultured with 5 microM fenvalerate at different time points. In the in vivo study, all mice survived through the entire 4 weeks. Administration of fenvalerate resulted in a dose-dependent reduction in testis weight/body weight, sperm motility, and increased head abnormality rate. By histological staining, mice treated with fenvalerate at higher doses showed dilated seminiferous tubules and disturbed arrangement of spermatogenic cells. Meanwhile, both mRNA and protein expression of calmodulin were significantly increased in the testes of mice exposed to fenvalerate compared to control mice. Moreover, in the in vitro study, 5 microM fenvalerate significantly increased the expression of calmodulin at the mRNA and protein levels in GC-2spd(ts) cells after 8 h of incubation and sustained these levels for at least 24 h. Collectively, these data suggested that enhanced expression of calmodulin correlates with male reproductive damage induced by fenvalerate.
Insights
Fenvalerate exposure harms male fertility by affecting sperm quality and testis health. This study shows fenvalerate increases calmodulin expression, linking it to reproductive toxicity in mice and cells.
Area of Science:
- Toxicology
- Reproductive Biology
- Molecular Biology
Background:
- Fenvalerate is toxic to the male reproductive system.
- Intracellular calcium signaling is implicated in fenvalerate toxicity.
- The role of calmodulin in fenvalerate-induced toxicity requires further investigation.
Purpose of the Study:
- To investigate the effects of fenvalerate on calmodulin expression in mouse testes and GC-2spd(ts) cells.
- To determine the association between altered calmodulin expression and fenvalerate-induced male reproductive toxicity.
Main Methods:
- Male mice were exposed to varying doses of fenvalerate for 4 weeks.
- Calmodulin expression was analyzed using real-time PCR and Western blot in vivo and in vitro.
- GC-2spd(ts) cells were treated with fenvalerate to assess cellular responses.
Main Results:
- Fenvalerate exposure led to reduced testis weight, decreased sperm motility, and increased sperm head abnormalities.
- Histological analysis revealed dilated seminiferous tubules and disrupted spermatogenic cells in fenvalerate-treated mice.
- Both mRNA and protein levels of calmodulin were significantly upregulated in mouse testes and GC-2spd(ts) cells following fenvalerate exposure.
Conclusions:
- Fenvalerate exposure causes significant male reproductive damage.
- Enhanced calmodulin expression correlates with fenvalerate-induced male reproductive toxicity.
- Calmodulin may play a crucial role in the mechanism of fenvalerate's adverse effects on male reproduction.
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