Submitted:
04 October 2025
Posted:
08 October 2025
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Abstract
Background: Hexavalent chromium [Cr(VI)] and gamma radiation are environmental toxicants that cause DNA damage, oxidative stress, and endocrine disruption, with transgenerational impacts on offspring health. Preventive strategies against inherited toxic effects are lacking, prompting research into protective interventions such as phytopreparations. Methods: Adult male rats were exposed to Cr(VI) (180 mg/L in drinking water for 14 days) and/or a single gamma irradiation (0.2 Gy), with subgroups receiving stinging nettle (Urtica dioica) or burdock (Arctium lappa) seed oil (0.5 mL/day) prophylaxis before irradiation. After exposure, rats were bred and male first-generation (F1) offspring were evaluated at 16 months for serum testosterone and thyroxine (T4), oxidative stress markers (MDA, catalase, SOD), sperm concentration/morphology, and testicular histology. Group differences were analyzed via one-way ANOVA (p<0.05). Results: Parental exposure to Cr(VI) and gamma radiation caused significant reproductive and endocrine impairment in F1 males: testosterone and sperm concentration decreased, abnormal sperm morphology increased, and T4 levels were disrupted compared to controls. However, parental supplementation with nettle or burdock oil significantly mitigated these effects, improving offspring hormone levels and sperm quality. Notably, burdock oil co-treatment restored testosterone and T4 toward control values and reduced sperm abnormalities in the combined Cr(VI)+γ group, indicating preserved spermatogenesis. Conclusions: Phytopreparation prophylaxis (nettle and burdock oils) in exposed parents partially normalized hormonal and reproductive parameters in F1 offspring and preserved testicular structure. These findings highlight the potential of phytoprotective interventions to attenuate transgenerational toxicity from Cr(VI) and radiation, thereby safeguarding future generations.
Keywords:
1. Introduction
2. Materials and Methods
2.1. Study Design and Overview
2.2. Experimental Animals
2.3. Ethics and Regulatory Compliance
2.4. Interventions and Exposure Regimens
2.5. Mating and Offspring
2.6. Randomization, Allocation Concealment, and Blinding
2.7. Inclusion/Exclusion Criteria and Unit of Analysis
2.8. Outcome Measures
2.9. Housing, Husbandry, Monitoring, and Welfare
2.9.1. Justification:
2.9.2. Evaluation Methods
2.9.3. Statistical Analysis
- Family A (within γ only): Nettle vs None, Burdock vs None (γ context); and Nettle vs Burdock.
- Family B (within Cr(VI)+γ): Nettle vs None, Burdock vs None; and Nettle vs Burdock.Additionally, we report Control vs γ, γ vs Cr(VI)+γ (both “None”), and Control vs each oil+γ for context. These contrasts align to key biological questions (radiation effect; chromium add-on; phytoprotection within γ and within Cr(VI)+γ).
- Within each endpoint, all planned contrasts are adjusted by Benjamini–Hochberg (BH) FDR at q = 0.05, yielding q-values.
- Across endpoints, we control discovery rate hierarchically: first declare significance within primary endpoints at q = 0.05; secondary endpoints are interpreted exploratorily with BH at q = 0.10. We report both unadjusted p and q.
- For omnibus tests (Group effect), we report F/H statistics, df, and partial η² with 95% CIs.
2.9.4. Ethical Considerations
3. Results
- MDA, ng / ml:
- CAT, ng / ml:
- SOD, ng / ml:
- IL-10, pg/ml:
- IL-6, pg/ml:
- TNF-α, pg/ml:
- Teystosterone, ng / ml:
- Estradiol, pg / ml:
- Spermatozoa, 10 ^ 6/ml:
- Mobility, %:
- Abnormal sperm count, %:
- T3, nmol/L:
- T4, nmol/L:
- FT4, ng/ml:
- Cortisol, mcg / dl:
- Micronucleus, %:
Histological Description of the Gonadal Condition in Males

4. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
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| Group | Description |
| Control | No exposure to hexavalent chromium (Cr⁶⁺) or gamma (γ) radiation. |
| γ Gamma Radiation | Exposed to γ radiation only. 15 days after the beginning of the experiment, they were exposed to total single radiation at a dose of 0.2 Gy. together with the other groups. |
| γ + Nettle Oil | For 14 days before irradiation, Nettle Oil was obtained at a dose of 0.5 ml per rat through a probe intragastrically. On the 15th day of exposure. |
| γ + Burdock Oil | For 14 days before irradiation, Burdock Oil was obtained at a dose of 0.5 ml per rat through a probe intragastrically. On the 15th day of exposure. |
| Cr⁶ ⁺+ γ | For 14 days received hexavalent chromium orally with drinking water at a dose of 180 mg/l. On day 15of exposure |
| , Cr⁶ ⁺ + γ + Nettle Oil | was irradiated for 14 days orally with drinking water chromium at a dose of 180 mg/l and Nettle Oil 0.5 ml per rat through a probe. On day 15, 0.2 Gy of |
| Cr⁶ ⁺ + γ + Burdock Oil | was irradiated for 14 days orally with drinking water chromium at a dose of 180 mg/l and Burdock Oil 0.5 ml per rat through a probe. On the 15th day, the exposure was 0.2 Gy |
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