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探索拟除虫菊酯对意大利蜜蜂(Apis mellifera ligustica Spinola)的致毒机制。

Exploring poisonous mechanism of honeybee, Apis mellifera ligustica Spinola, caused by pyrethroids.

作者信息

Wang Qiang, Diao Qingyun, Dai Pingli, Chu Yanna, Wu Yanyan, Zhou Ting, Cai Qingnian

机构信息

College of Plant Protection, China Agricultural University, Beijing 100193, PR China; Institute of Apicultural Research, Beijing 100093, PR China; Key Laboratory of Pollinating Insect Biology, Ministry of Agriculture, Beijing 100093, PR China.

Institute of Apicultural Research, Beijing 100093, PR China; Key Laboratory of Pollinating Insect Biology, Ministry of Agriculture, Beijing 100093, PR China.

出版信息

Pestic Biochem Physiol. 2017 Jan;135:1-8. doi: 10.1016/j.pestbp.2016.07.005. Epub 2016 Jul 26.

Abstract

As the important intracellular secondary messengers, calcium channel is the target of many neurotoxic pesticides as calcium homeostasis in the neuroplasm play important role in neuronal functions and behavior in insects. This study investigated the effect of deltamethrin (DM) on calcium channel in the brain nerve cells of adult workers of Apis mellifera ligustica Spinola that were cultured in vitro. The results showed that the intracellular calcium concentration was significantly elevated even with a very low concentration of the DM (3.125×10mg/L). Further testing revealed that T-type voltage-gated calcium channels (VGCCs), except for sodium channels, was one of the target of DM on toxicity of Apis mellifera, while DM has no significant effect on the L-type VGCCs, N-methyl-d-aspartate receptor-gated calcium channels and calcium store. These results suggesting that the DM may act on T-type VGCCs in brain cells of honeybees and result in behavioral abnormalities including swarming, feeding, learning, and acquisition.

摘要

作为重要的细胞内第二信使,钙通道是许多神经毒性农药的作用靶点,因为神经浆中的钙稳态在昆虫的神经元功能和行为中起着重要作用。本研究调查了溴氰菊酯(DM)对体外培养的意大利蜜蜂成年工蜂脑神经细胞中钙通道的影响。结果表明,即使在极低浓度的DM(3.125×10mg/L)下,细胞内钙浓度也显著升高。进一步测试表明,除钠通道外,T型电压门控钙通道(VGCCs)是DM对意大利蜜蜂毒性的作用靶点之一,而DM对L型VGCCs、N-甲基-D-天冬氨酸受体门控钙通道和钙库没有显著影响。这些结果表明,DM可能作用于蜜蜂脑细胞中的T型VGCCs,并导致包括分蜂、进食、学习和采集在内的行为异常。

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