Muhammet Mükerrem Kaya, Seda Yakut, Sibel Kaymak, Melike Sultan Demirağ, Nilüfer Vural, Hidayet Tutun, Sedat Sevin
This study aimed to evaluate the potential protective role of Rosmarinic acid (RA) against Carbaryl (CRB)-induced toxicity in honey bees by assessing survival, nutrient uptake, and intestinal tissue integrity , while exploring potential CYP-mediated detoxification mechanisms via complementary in silico modelling. Honey bees were divided into six experimental groups: CRB-1, CRB-2, CRB-1 + RA, CRB-2 + RA, RA-only, and control, and treatments were administered for three days. Results showed a 100% mortality rate in the groups treated with high doses of CRB alone or in combination with RA. In contrast, the addition of RA to the low-dose CRB group resulted in surviving individuals, with a statistically significant increase in survival rate compared to the pesticide-only group (p < 0.05), while RA supplementation in the high-dose CRB group delayed mortality despite complete lethality. Food consumption decreased significantly only in the CRB-2 group; however, RA co-treatment during the first two days effectively mitigated this reduction. Histopathological examination showed severe damage to the intestinal epithelium in CRB-treated groups, while co-treatment with RA significantly reduced the severity of these low-dose pesticide-induced lesions. Furthermore, in silico molecular modelling and docking analyses suggested that RA may interact with detoxification-related cytochrome P450 enzymes in honey bees, providing preliminary computational insight into possible associations with CYP-mediated phase I metabolism. Collectively, these findings indicate that Rosmarinic acid improves physiological resilience in honey bees under Carbaryl-induced xenobiotic stress, with in silico data suggesting a potential link to detoxification pathways.