慢性多菌灵暴露破坏非目标腐殖Nauphoeta cinerea若虫的行为反应和氧化还原调节机制。

Adeboye A Olaseni, Gbemisola T Oyedele, Cynthia N Ikeji, Christiana K Jimoh, Babajide O Ajayi, Joao B T Rocha, Isaac A Adedara, Ebenezer O Farombi
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引用次数: 0

摘要

多菌灵因其疗效和成本效益被广泛应用于农业收获前和收获后控制各种真菌疾病。然而,多菌灵对环境和食品的污染已成为一个全球性的健康问题。事实上,由于农业集约化,益虫的生物多样性正在下降,这是目前科学界非常关注的问题。研究了不同浓度多菌灵(0、0.25、2.5、5.0和25μg/L)连续50 d对非靶虫Nauphoeta cinerea若虫的毒理学反应。视频跟踪软件生成的神经行为数据显示,慢性多菌灵暴露显著降低了昆虫的路径效率、身体旋转、最大速度、转弯角度和行进距离,但增加了昆虫的静止时间、总冻结时间和冻结次数。多菌灵暴露后昆虫的运动能力和探测能力下降,热图强度高,轨迹图减少。此外,慢性多菌灵暴露降低了昆虫头部乙酰胆碱酯酶活性。慢性多菌灵暴露显著降低了昆虫的抗氧化防御机制,但增加了脂肪体、中肠和头部的一氧化氮、过氧化氢和脂质过氧化水平。多菌灵暴露后,在解毒和代谢过程中起重要作用的酸性和碱性磷酸酶活性也明显降低。综上所述,多菌灵通过诱导氧化炎症损伤对非目标昆虫构成生态威胁,为多菌灵对益虫的行为功能障碍和毒理学机制提供了有价值的见解。
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Chronic carbendazim exposure disrupts behavioral responses and redox-regulatory mechanisms in non-target detritivore Nauphoeta cinerea nymphs.

Carbendazim is widely applied in agriculture to control various fungal diseases during pre-harvest and post-harvest processes owing to its efficacy and cost-effectiveness. However, environmental and food contamination by carbendazim has become a global health issue. Indeed, the declining biodiversity of beneficial insects owing to agricultural intensification is currently of keen concern to the scientific community. The toxicological responses of Nauphoeta cinerea nymphs, a non-target insect, to ecologically realistic concentrations of carbendazim at 0, 0.25, 2.5, 5.0 and 25 μg/L for 50 uninterrupted days were assessed. Neurobehavioral data generated by video-tracking software revealed that chronic nymphal exposure to carbendazim significantly diminished the path efficiency, body rotation, maximum speed, turn angle and distance traveled but increased the immobility time, total time of freezing and episodes of freezing in insects. The deterioration in the locomotor and exploratory abilities of carbendazim-exposed insects was substantiated by high heat map intensity and reduced track plots. Further, chronic carbendazim exposure diminished acetylcholinesterase activity in head of the insects. Chronic carbendazim exposure significantly decreased antioxidant defense mechanisms but increased nitric oxide, hydrogen peroxide and lipid peroxidation levels in fat body, midgut and head of exposed insects. Activities of acid and alkaline phosphatases which play important roles in detoxification and metabolic processes were also markedly decreased in carbendazim-exposed insects when compared with control. Altogether, carbendazim represents an ecological threat to non-target insects through induction of oxido-inflammatory injury, providing valuable insights into the behavioral dysfunction and toxicological mechanisms of carbendazim in beneficial insects.

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