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Flubendiamide is a new insecticide that has been found to give excellent control of lepidopterous pests of tomato. This study has been undertaken to develop an improved method for analysis of flubendiamide and its metabolite des-iodo flubendiamide and determine residue retention in tomato and soil. The analytical method developed involved extraction of flubendiamide and its metabolite des-iodo flubendiamide with acetonitrile, liquid-liquid partitioning into hexane-ethyl acetate mixture (6:4, v v?1) and cleanup with activated neutral alumina. Finally the residues were dissolved in gradient high pressure liquid chromatography (HPLC) grade acetonitrile for analysis by HPLC. The mobile phase, acetonitrile-water at 60:40 (v v?1) proportion and the wavelength of 235 nm gave maximum peak resolution. Using the above method and HPLC parameters described, nearly 100 % recovery of both insecticides were obtained. There was no matrix interference and the limit of quantification (LOQ) of the method was 0.01 mg kg?1. Initial residue deposits of flubendiamide on field-treated tomato from treatments @ 48 and 96 g active ingredient hectare?1 were 0.83 and 1.68 mg kg?1,respectively. The residues of flubendiamide dissipated at the half-life of 3.9 and 4.4 days from treatments @ 48 and 96 g a.i. ha?1, respectively and persisted for 15 days from both the treatments. Des-iodo flubendiamide was not detected in tomato fruits at any time during the study period. Residues of flubendiamide and des-iodo flubendiamide in soil from treatment @ 48 and 96 g a.i. ha?1 were below detectable level (BDL, < 0.01 mg kg?1) after 20 days. Flubendiamide completely dissipated from tomato within 20 days when the 480 SC formulation was applied at doses recommended for protection against lepidopterous pests.  相似文献   
2.
氟虫双酰胺在水稻和稻田中的残留动态研究   总被引:1,自引:0,他引:1  
采用超高效液相色谱法(UPLC)测定了氟虫双酰胺19.8%悬浮剂(SC)在水稻及稻田环境中的残留动态.结果表明,当氟虫双酰胺及其代谢产物NNI-des-iodo的添加量为0.05~1.0 mg·kg-1时,其在水稻田土壤、田水、稻秆、稻米和稻壳中的平均回收率为78.2%~104.8%,变异系数为1.1%~4.4%.氟虫双酰胺在2011年三地(福建福州、天津、江苏南京)的稻田水中的降解半衰期为9.8~17.3 d,土壤中10.8~22.4 d,植株中7.6~17.3 d,其在稻田水样品中检出了代谢产物NNI-des-iodo,而在土壤和植株样品中未检出.在推荐使用剂量下,于末次施药10 d后,氟虫双酰胺在水稻稻米中的残留量均低于美国规定的在稻谷上的最大残留允许量(0.5 mg·kg-1).  相似文献   
3.
氟虫双酰胺对蚯蚓的生化毒性与细胞毒性研究   总被引:1,自引:0,他引:1  
双酰胺类杀虫剂已成为全世界第4大类最常用的杀虫剂,具有非常广阔的应用前景。然而,目前关于双酰胺类杀虫剂生态毒性评估方面的研究还比较少。为探究双酰胺类杀虫剂对非靶标生物的毒性作用,选取赤子爱胜蚓(Eisenia fetida)为受试生物,研究了典型双酰胺类杀虫剂氟虫双酰胺对非靶标动物蚯蚓的生化毒性和细胞毒性以及其在人工土和蚯蚓体内的浓度变化情况。结果表明,氟虫双酰胺在人工土壤中十分稳定,在整个暴露期间氟虫双酰胺的浓度变化不超过20%。氟虫双酰胺在蚯蚓体内的含量随染毒浓度的升高和暴露时间的推移而增加,呈明显的时间和剂量-效应关系;在染毒浓度为0.1和1.0 mg·kg-1的处理组中,氟虫双酰胺未对蚯蚓产生明显的氧化胁迫效应。在染毒浓度为5.0和10.0 mg·kg-1的处理组中,蚯蚓体内活性氧(ROS)含量显著高于其他处理组,过量的ROS诱导蚯蚓体内各种抗氧化酶活性发生异常变化,并在蚯蚓体内造成了脂质过氧化、蛋白质羰基化和DNA损伤。研究表明,当土壤中氟虫双酰胺的浓度为5.0和10.0 mg·kg-1时可能会对蚯蚓产生很高的风险。此外,彗星实验对氟虫双酰胺诱导的氧化胁迫较为敏感,可以作为敏感生物标志物对氟虫双酰胺造成的土壤污染进行预警。  相似文献   
4.
为探索双酰胺类杀虫剂对大型溞的慢性毒性,本文采用氟虫双酰胺、氯虫苯甲酰胺和溴氰虫酰胺3种双酰胺类杀虫剂制剂,测定其对大型溞生长发育和繁殖的影响,明确其对大型溞的慢性毒性以及大型溞对该类杀虫剂敏感的端点指标。结果表明,氟虫双酰胺、氯虫苯甲酰胺和溴氰虫酰胺3种制剂对大型溞的寿命、体长、蜕皮数、首胎时长、产胎数、单雌产溞数等端点指标具有不同程度的影响。3种杀虫剂显著减少大型溞蜕皮数的最低浓度分别为1.00×10-2mg·L~(-1)、1.00×10-4mg·L~(-1)、1.25×10-3mg·L~(-1);显著缩短寿命的最低浓度分别为5.00×10-3mg·L~(-1)、1.00×10~(-4)mg·L~(-1)和1.25×10-3mg·L~(-1);显著缩短体长的最低浓度分别为5.00×10-3mg·L~(-1)、8.00×10-4mg·L~(-1)和1.00×10~(-2)mg·L~(-1);显著减少产胎数的最低浓度分别为1.00×10-2mg·L~(-1)、4.00×10-4mg·L~(-1)和1.00×10-2mg·L~(-1);显著减少单雌产溞数的最低浓度分别为1.00×10~(-2)mg·L~(-1)、8.00×10-4mg·L~(-1)和5.00×10-3mg·L~(-1);但是,除溴氰虫酰胺外,其他2种杀虫剂制剂对首胎时长却没有显著影响。端点指标中对氟虫双酰胺的敏感性为寿命和体长蜕皮数、产胎数和单雌产溞数首胎时长;对氯虫苯甲酰胺为蜕皮数和寿命产胎数体长和单雌产溞数首胎时长;对溴氰虫酰胺为蜕皮数和寿命单雌产溞数体长、首胎时长和产胎数。研究结果说明,3种双酰胺类杀虫剂对大型溞的生长发育和繁殖具有不同程度的抑制作用,寿命是评价该类杀虫剂制剂对大型溞慢性毒性的最敏感端点指标。  相似文献   
5.
This investigation was undertaken to compare the dissipation pattern of flubendiamide in capsicum fruits under poly-house and open field after giving spray applications at the recommended and double doses of 48 g a.i. ha?1 and 96 g a.i. ha?1. Extraction and purification of capsicum fruit samples were carried out by the QuEChERS method. Residues of flubendiamide and its metabolite, des-iodo flubendiamide, were analyzed by high-performance liquid chromatography–photodiode array, and confirmed by liquid chromatography–mass spectrometry/mass spectrometry. Limit of quantification of the method was 0.05 mg kg?1, and recovery of the insecticides was in the range of 89.6–104.3%, with relative standard deviation being 4.5–11.5%. The measurement uncertainty of the analytical method was in the range of 10.7–15.7%. Initial residue deposits of flubendiamide on capsicum fruits grown under poly-house conditions were (0.977 and 1.834 mg kg?1) higher than that grown in the field (0.665 and 1.545 mg kg?1). Flubendiamide residues persisted for 15 days in field-grown and for 25 days in poly-house-grown capsicum fruits. The residues were degraded with the half-lives of 4.3–4.7 and 5.6–6.6 days in field and poly-house respectively. Des-iodo flubendiamide was not detected in capsicum fruits or soil. The residues of flubendiamide degraded to below the maximum residue limit notified by Codex Alimentarius Commission (FAO/WHO) after 1 and 6 days in open field, and 3 and 10 days in poly-house. The results of the study indicated that flubendiamide applied to capsicum under controlled environmental conditions required longer pre-harvest interval to allow its residues to dissipate to the safe level.  相似文献   
6.
Singh G  Sahoo SK  Takkar R  Battu RS  Singh B  Chahil GS 《Chemosphere》2011,84(10):1416-1421
The study was undertaken to determine the disappearance trends of flubendiamide residues on chickpea under field conditions and thereby, ensure consumer safety. Average initial deposits of flubendiamide on chickpea pods were found to be 0.68 and 1.17 mg kg−1, respectively, following three applications of flubendiamide 480SC @ 48 and 96 g a.i. ha−1 at 7 d intervals. Half-life of flubendiamide on chickpea pods was observed to be 1.39 and 1.44 d, respectively, at single and double dosages whereas with respect to chickpea leaves, these values were found to be 0.77 and 0.86 d. Desiodo flubendiamide was not detected at 0.05 mg kg−1 level on chickpea samples collected at different intervals. Theoretical maximum residue contribution (TMRC) for flubendiamide was calculated and found to be well below the maximum permissible intake (MPI) on chickpea pods and leaves at 0-day (1 h after spraying) for the both dosages. Thus, the application of flubendiamide at the recommended dose on chickpea presents no human health risks and is safe to the consumers.  相似文献   
7.
采用超高效液相色谱法分析了氟虫双酰胺及其代谢产物在田水、土壤、稻秆、糙米和稻壳中的残留.水样以乙酸乙酯为萃取溶剂,液-液分配净化;土壤样品以丙酮为提取剂,液-液分配净化;水稻样品经乙腈提取,NH2-Carb柱净化.对水稻和环境中的氟虫双酰胺及其代谢产物进行不同水平的添加回收率实验,方法的回收率在78.2%—104.8%之间,相对标准偏差为1.1%—4.4%.氟虫双酰胺及其代谢产物的最小检出量在0.004—0.02 ng,其在稻田水中的最低检测浓度为0.0008—0.0009 mg.L-1,在土壤、稻秆、糙米、稻壳中的最低检测浓度为0.001—0.003 mg.kg-1.  相似文献   
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