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首页> 外文期刊>Cytotechnology >Mechanisms for Bt Toxin Resistance and Increased Chemical Pesticide Susceptibility in Cry1Ac10-resistant Cultured Insect Cells
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Mechanisms for Bt Toxin Resistance and Increased Chemical Pesticide Susceptibility in Cry1Ac10-resistant Cultured Insect Cells

机译:抗Cry1Ac10的昆虫细胞中Bt毒素抗性和化学农药敏感性增加的机制

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Cabbage looper moth (Trichoplusia ni) cell line BTI-Tn-5B1-4 (TnH5) has developed high-level resistance (>1000 fold) by the selection of Bt Cry1Ac10 toxin. In order to examine mechanisms of resistance to Cry1Ac10 toxin (biological pesticide), both general esterase activities and cell tolerance to osmotic lysis were compared between non-selected Cry1Ac10-susceptible Trichoplusia ni cell line TnH5-S and Cry1Ac10-resistant Trichoplusia ni cell line TnH5-R selected by Bt Cry1Ac10. The Cry1Ac10-resistant TnH5-R cells had lower general esterase activity than the non-selected TnH5-S cells, and the esterase isozyme bands for the Cry1Ac10-resistant TnH5-R cells were much weaker than that for the non-selected TnH5-S cells. Both activated Cry1Ac10 toxin and multi-toxin from Bacillus thuringiensis subsp. aizawai GC-91 (an engineering bacterium) could not inhibit the esterase activity both in the Cry1Ac10-susceptible and Cry1Ac10-resistant cells, but two chemical pesticides, chlopyrifos and methomyl, could greatly inhibit the esterase activities both in the TnH5-R and TnH5-S cells. On the other hand, cell tolerance to osmotic lysis caused by hypotonic solution for the Cry1Ac10-resistant TnH5-R cells was higher than that for the non-selected TnH5-S cells (2.5×). Based on these results, we made the following conclusions. The general esterase activities in the Cry1Ac10-resistant TnH5-R cells was not related to Bt Cry1Ac10 resistance, but the susceptibility to the two tested chemical pesticides increased in TnH5-R cells because of their lower esterase activity. The increase of cell tolerance to osmotic lysis for the Cry1Ac10-resistant TnH5-R cells may be one of the mechanisms for Bt toxin resistance because midgut cells of insects are also disrupted by an osmotic lysis caused by Bt toxin.
机译:通过选择Bt Cry1Ac10毒素,白菜弯尾蛾(Trichoplusia ni)细胞系BTI-Tn-5B1-4(TnH5)具有高水平的抗性(> 1000倍)。为了检查对Cry1Ac10毒素(生物农药)的抗性机制,比较了未选择的对Cry1Ac10敏感的Trichoplusia ni细胞系TnH5-S和对Cry1Ac10敏感的Trichoplusia ni细胞系TnH5的一般酯酶活性和对渗透裂解的细胞耐受性-R由Bt Cry1Ac10选择。耐Cry1Ac10的TnH5-R细胞的总酯酶活性低于未选择的TnH5-S细胞,耐Cry1Ac10的TnH5-R细胞的酯酶同工酶谱带比未选择的TnH5-S弱得多细胞。苏云金芽孢杆菌亚种激活的Cry1Ac10毒素和多毒素。 aizawai GC-91(一种工程细菌)在对Cry1Ac10敏感的细胞和对Cry1Ac10抗药性的细胞中均不能抑制酯酶的活性,但是两种化学杀虫剂毒死y和灭多威都可以在TnH5-R和TnH5中极大地抑制酯酶的活性。 -S细胞。另一方面,耐低Cry1Ac10的TnH5-R细胞对低渗溶液引起的渗透性溶解的细胞耐受性高于未选择的TnH5-S细胞(2.5倍)。基于这些结果,我们得出以下结论。耐Cry1Ac10的TnH5-R细胞中的一般酯酶活性与Bt Cry1Ac10的抗性无关,但是由于TnH5-R细胞中较低的酯酶活性,对这两种测试化学农药的敏感性增加。抗Cry1Ac10的TnH5-R细胞对渗透裂解的细胞耐受性增加可能是Bt毒素抗性的机制之一,因为昆虫的中肠细胞也被Bt毒素引起的渗透裂解所破坏。

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