典型生物杀虫剂和合成杀虫剂处理过的豇豆贮藏甲虫(鞘翅目:菊科)的抗氧化防御系统活性。

International journal of insect science Pub Date : 2014-12-21 eCollection Date: 2014-01-01 DOI:10.4137/IJIS.S19434
Ayodele O Kolawole, Folasade M Olajuyigbe, Joshua O Ajele, Chris O Adedire
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引用次数: 0

摘要

非酶性和酶性抗氧化防御系统在原氧化内生物和异生物的解毒过程中发挥着重要作用。甲虫的非酶[α-生育酚、谷胱甘肽(GSH)和抗坏血酸]和酶[过氧化氢酶(CAT)、超氧化物歧化酶(SOD)、过氧化物酶(POX)和多酚氧化酶(PPO)]抗氧化防御系统可能参与合成杀虫剂(氯氰菊酯、2,2-二氯乙烯基二甲基磷酸酯、2,2-二氯乙烯基二甲基磷酸酯、2,2-二氯乙烯基二甲基磷酸酯、2,2-二氯乙烯基二甲基磷酸酯、2,2-二氯乙烯基二甲基磷酸酯)的杀虫活性、2,2-二氯乙烯基二甲基磷酸酯和 λ-氯氰菊酯)以及 Tithonia diversifolia、Cyperus rotundus、Hyptis suaveolens leaves 和 Jatropha Curcas seeds 的乙醇植物提取物的抗氧化防御系统进行了研究。2,2-Dicholorovinyl dimethyl phosphate(DDVP;200 ppm,LC50 = 13.24 ppm)和 T. diversifolia(20,000 ppm)可导致甲虫在处理后 96 小时内 100%死亡。处理后甲虫的 α-生育酚和 GSH 含量明显增加。合成杀虫剂和生物杀虫剂调节了 CAT、SOD、POX 和 PPO 的活性,从而降低了化学胁迫的不利影响。生物杀虫剂的定量和定性等位化学成分以及合成杀虫剂的化学结构可能是调节各自酶活性的原因。总之,氧化压力巨大,足以导致昆虫适应不良。这项研究证实,氧化失衡可能是杀虫剂和生物杀虫剂效力的分子基础。其次,甲虫体内的抗氧化防御机制虽有功能,但并不完善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Activity of the Antioxidant Defense System in a Typical Bioinsecticide-and Synthetic Insecticide-treated Cowpea Storage Beetle Callosobrochus maculatus F. (Coleoptera: Chrysomelidae).

The non-enzymatic and enzymatic antioxidant defense systems play a major role in detoxification of pro-oxidant endobiotics and xenobiotics. The possible involvement of beetle non-enzymatic [α-tocopherol, glutathione (GSH), and ascorbic acid] and enzymatic [catalase (CAT), superoxide dismutase (SOD), peroxidase (POX), and polyphenol oxidase (PPO)] antioxidant defense system on the insecticidal activity of synthetic insecticides (cypermethrin, 2,2-dicholorovinyl dimethyl phosphate, and λ-cyhalothrin) and ethanolic plant extracts of Tithonia diversifolia, Cyperus rotundus, Hyptis suaveolens leaves, and Jatropha Curcas seeds was investigated. 2,2-Dicholorovinyl dimethyl phosphate (DDVP; 200 ppm, LC50 = 13.24 ppm) and T. diversifolia (20,000 ppm) resulted in 100% beetle mortality at 96-hour post-treatment. The post-treatments significantly increased the beetle α-tocopherol and GSH contents. Activities of CAT, SOD, POX, and PPO were modulated by the synthetic insecticides and bioinsecticides to diminish the adverse effect of the chemical stresses. Quantitative and qualitative allelochemical compositions of bioinsecticides and chemical structure of synthetic insecticides possibly account and for modulation of their respective enzyme activities. Altogether, oxidative stress was enormous enough to cause maladaptation in insects. This study established that oxidative imbalance created could be the molecular basis of the efficacy of both insecticides and bio-insecticides. Two, there was development of functional but inadequate antioxidant defense mechanism in the beetle.

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