Related Experiment Video
Updated: Oct 2, 2026

Cytological Analysis of Spermatogenesis: Live and Fixed Preparations of Drosophila Testes
Published on: January 19, 2014
Research for the effect of octylphenol on spermatogenesis and proteomic analysis in octylphenol-treated mice testes
Enzhong Li1, Yuping Guo, Qianji Ning
1Huanghuai University, 6 Kaiyuan Road, Zhumadian 463000, Peoples Republic of China.
Abstract:
OP (octylphenol), an environmental oestrogen was administered, and differentially expressed proteins were analysed in mice testes to clarify its mechanism of action in male sterility. Male Kunming suckling mice (10 days old) were subcutaneously injected with OP at a dose of 10 μg/kg per day, 50 μg/kg per day and 100 μg/kg per day as low-, medium- and high-dose groups, respectively, for 35 days. Animals in the control group received subcutaneous injections of olive oil at a dose of 10 μl/mouse per day. Serum oestradiol, testosterone, FSH (follicle stimulating hormone) and LH (luteinizing hormone) levels were measured on day 45. The left testes were removed for tissue analysis, and the right testes were analysed for differentially expressed proteins by using two-dimensional gel electrophoresis and MS. Tissue analysis showed that mice spermatogenesis was blocked at the round spermatid stage in the high-dose group, whereas no such changes were found in the medium- and low-dose groups. Higher serum oestradiol (P<0.05) and lower testosterone (P<0.05) levels were found in the medium- and high-dose groups. There was no significant difference in serum oestradiol and testosterone levels in the low-dose and control groups. No significant influence of OP was seen on serum FSH and LH levels in all OP-treated animals. The results from four differentially expressed proteins such as PPIA (peptidyl-prolyl cis-trans isomerase A), PEBP1 (phosphatidylethanolamine-binding protein1), TPI (triose-phosphate isomerase) and TCP-1 (T-complex protein 1) in the high-dose and control groups showed up-regulation of PPIA expression and down-regulation in PEBP1, TPI and TCP-1 expressions. These findings will contribute to clarify the mechanism of male sterility by environmental oestrogens.
Insights
Octylphenol (OP) exposure in mice disrupts male fertility by blocking spermatogenesis and altering hormone levels. Protein analysis revealed changes in PPIA, PEBP1, TPI, and TCP-1, clarifying OP
Area of Science:
- Environmental toxicology
- Reproductive biology
- Proteomics
Background:
- Environmental estrogens, such as octylphenol (OP), are emerging contaminants.
- Understanding the mechanisms of endocrine disruption is crucial for public health.
Purpose of the Study:
- To investigate the effects of octylphenol (OP) on male reproductive function in mice.
- To identify differentially expressed proteins in testes following OP exposure to elucidate its mechanism of action in male sterility.
Main Methods:
- Male mice were exposed to varying doses of OP (10, 50, 100 μg/kg/day) or olive oil (control) for 35 days.
- Hormone levels (estradiol, testosterone, FSH, LH) were measured. Testes underwent tissue analysis and proteomic analysis using 2D gel electrophoresis and MS.
Main Results:
- High-dose OP exposure blocked spermatogenesis at the round spermatid stage.
- OP exposure increased serum estradiol and decreased testosterone levels in medium- and high-dose groups.
- Proteomic analysis revealed up-regulation of PPIA and down-regulation of PEBP1, TPI, and TCP-1 in high-dose OP-treated mice.
Conclusions:
- Octylphenol induces male sterility in mice through spermatogenesis disruption and hormonal imbalance.
- Specific protein expression changes (PPIA, PEBP1, TPI, TCP-1) are associated with OP-induced male reproductive toxicity.
- These findings contribute to understanding the impact of environmental estrogens on male fertility.
More Related Videos
07:35Laser Microdissection-Based Protocol for the LC-MS/MS Analysis of the Proteomic Profile of Neuromelanin Granules
Published on: December 15, 2021
10:31Comparative Proteomic Analysis of Whole Kidney, Medulla, and Cortical Tubules in Diabetic Pathogenesis of Kidney Injury in Mice
Published on: May 1, 2025