Research Progress on Toxic Effects of Pyrethroids Insecticides on Cultured Crustaceans: a Review
LUAN Keer1,2, XIAN Jian'an1,2, LU Yaopeng2, ZHANG Zelong1,2, ZHANG Xiuxia2, LI Juntao2, ZHENG Peihua2, WANG Qian1
1. College of Marine,Hainan University, Haikou 570228, China; 2. Hainan Key Laboratory of Functional Components Research and Utilization of Marine Biological Resources,Hainan Key Laboratory of Conservation and Utilization of Tropical Agricultural Biological Resources, Hainan Institute of Tropical Agricultural Resources, Institute of Tropical Biotechnology, Chinese Academy of Tropical Agricultural Sciences, Haikou 571101, China
[1] LOPEZ-TORRES B, ARES I, MARTÍNEZ M, et al. Neurotoxicity induced by the pyrethroid lambda-cyhalothrin:alterations in monoaminergic systems and dopaminergic and serotoninergic pathways in the rat brain[J]. Food and Chemical Toxicology,2022,169:113434. [2] 孙梦园,石志红,李建勋,等.分散固相萃取-分散液液微萃取结合气相色谱-三重四极杆质谱法测定茶叶中7种拟除虫菊酯类农药残留[J].分析测试学报,2017,36(5):595-600. [3] 李梦娜,马海川,陈潘毅,等.东部近海海产品中有机氯和菊酯类农药的分布特征与健康风险评估[J].农业环境科学学报,2023,42(7):1444-1453. [4] SHARMA D, ANSARI B. Effect of the synthetic pyrethroid deltamethrin and the neem-based pesticide achook on the reproductive ability of zebrafish, Danio rerio (Cyprinidae)[J]. Archives of Polish Fisheries,2010,18(3):157-161. [5] 唐梦月.溴氰菊酯对中华绒螯蟹幼蟹毒性及农药降解菌的应用[D].南京:南京师范大学,2019. [6] 姜琳琳.水产品中拟除虫菊酯类农药残留检测方法的研究[J].福建水产,2009,31(2):66-71. [7] SHI Y H, XIAO J J, FENG R P, et al. In-vitro bioaccessibility of five pyrethroids after human ingestion and the corresponding gastrointestinal digestion parameters:a contribution for human exposure assessments[J]. Chemosphere,2017,182:517-524. [8] 邢露智,黄毅娜.农产品中农药残留检测技术研究进展[J].绿色科技,2020(18):180-181. [9] ZHENG J, YU Y Y, FENG W, et al. Influence of nanomolar deltamethrin on the hallmarks of primary cultured cortical neuronal network and the role of ryanodine receptors[J]. Environmental Health Perspectives,2019,127(6):67003. [10] 刘雅琛.氯氰菊酯暴露对草鱼肾脏体内外毒性的初步研究[D].哈尔滨:东北林业大学,2022. [11] 曹明坤.我国杀虫剂产业发展应用现状与方略[J].安徽化工,2022,48(3):1-10. [12] BAJET C M, KUMAR A, CALINGACION M N, et al. Toxicological assessment of pesticides used in the Pagsanjan-Lumban Catchment to selected non-target aquatic organisms in Laguna Lake, Philippines[J]. Agricultural Water Management,2012,106:42-49. [13] 农业农村部渔业渔政管理局.关于发布《水产养殖用药明白纸2020年1、2号》宣传材料的通知:农渔养函〔2020〕109号[EB/OL].(2020-09-30)[2023-05-01]. http://www.yyj.moa.gov.cn/gzdt/202010/t20201012_6354054.htm. [14] WONGMANEEPRATIP W, LEONG M, YANG H S. Quantification and risk assessment of pyrethroid residues in seafood based on nanoparticle-extraction approach[J]. Food Control,2022,133:108612. [15] 姜锦林,吕建伟,曹少华,等.溴氰菊酯对稀有鮈鲫早期生命阶段发育和内分泌干扰毒性[J].中国环境科学,2022,42(5):2395-2403. [16] DELORENZO M E, SERRANO L, CHUNG K W, et al. Effects of the insecticide permethrin on three life stages of the grass shrimp, Palaemonetes pugio[J]. Ecotoxicology and Environmental Safety,2006,64(2):122-127. [17] WIRTH E F, LUND S A, FULTON M H, et al. Determination of acute mortality in adults and sublethal embryo responses of Palaemonetes pugio to endosulfan and methoprene exposure[J]. Aquatic Toxicology,2001,53(1):9-18. [18] 李炫颖,戈晓宇,刘思瑶,等.秦皇岛园博园湖泊中农药含量的风险评价[J].湿地科学,2023,21(1):78-85. [19] 李兰兰,董有建,刘大超.菊酯类农药在长江中下游湖泊沉积物中残留污染特征研究[J].绿色科技,2022,24(6):60-63. [20] 王瑞.拟除虫菊酯类杀虫剂在东海表层水中的分布特征及其风险评价[D].北京:北京交通大学,2021. [21] 张华威,崔艳梅,王倩,等.气相色谱法同时测定海水中13种拟除虫菊酯类杀虫剂的残留量[J].中国渔业质量与标准,2019,9(3):45-52. [22] 赵李娜,赖子尼,李秀丽,等.珠江河口沉积物中拟除虫菊酯类农药污染及毒性评价[J].生态环境学报,2013,22(8):1408-1413. [23] 徐超,王芮炯,王丽娜,等.杭州市内主要河流沉积物中拟除虫菊酯的残留特征及风险[J].浙江工业大学学报,2023,51(2):230-236. [24] 纪丙鑫,郝雨阳,王成禹,等.苏州生态涵养区地表水和沉积物中农药污染特征及生态风险评价[J].环境污染与防治,2022,44(12):1622-1627. [25] 方淑红,陈鹏,卞京娜,等.太湖及辽河流域表层沉积物中拟除虫菊酯的浓度水平及毒性评估[J].环境科学学报,2012,32(10):2600-2606. [26] 杨琳,温裕云,弓振斌.加速溶剂萃取-液相色谱-串级质谱法测定近岸及河口沉积物中的拟除虫菊酯农药[J].分析化学,2010,38(7):968-972. [27] 王朝晖,尹伊伟,林小涛,等.拟除虫菊酯农药对水生态系统的生态毒理学研究综述[J].暨南大学学报(自然科学与医学版),2000,21(3):123-127. [28] 黄婷.氯氰菊酯和吡虫啉对克氏原螯虾AchE和Na+-K+-ATPase活性的影响[J].科技经济市场,2014(7):101-102. [29] 沈美芳,彭刚,薛晖,等.三种杀虫剂对克氏原螯虾急性毒性研究[J].水产养殖,2008,29(6):16-18. [30] 张洪玉,赵明军,夏磊,等.常用杀虫剂对水产动物的毒性[J].科学养鱼,2011(3):53-54. [31] 韩现芹,付志茹,陈永平,等.溴氰菊酯对南美白对虾的急性毒性及安全性评价[J].安徽农业科学,2021,49(24):122-124. [32] 周冬仁,盛鹏程,孙博弈,等.氰戊菊酯与溴氰菊酯对凡纳对虾的急性毒性[J].贵州农业科学,2018,46(7):103-105. [33] 钟硕良,郑惠东,陈宇锋,等.溴氰菊酯对4种海水养殖生物的毒性及其积累[J].渔业科学进展,2017,38(6):139-147. [34] 耿雪冰.溴氰菊酯残留的检测方法及对河蟹的毒性研究[D].南京:南京农业大学,2010. [35] 商利新.甲胺磷和氯氰菊酯对日本沼虾的毒性作用[D].保定:河北大学,2004. [36] 邱勇,严峰,曾嶒,等.在不同盐度下氯氰菊酯对凡纳滨对虾的急性毒性效应研究[J].安徽农业科学,2012,40(32):15704-15705. [37] 陈宇锋.氰戊菊酯、醚菊酯对日本囊对虾的急性毒性[J].渔业研究,2016,38(2):126-131. [38] LIDOVA J, BURIC M, KOUBA A, et al. Acute toxicity of two pyrethroid insecticides for five non-indigenous crayfish species in Europe[J]. Veterinární Medicína,2019,64(3):125-133. [39] 郑瑞州,胡鲲.氰戊菊酯等4种化学药物对克氏原螯虾的急性毒性及组织病理观察[J].南方农业学报,2021,52(6):1727-1734. [40] VINATEA L, DE MELLO G L, AMARAL H Jr, et al. Acute toxicity of pyrazosulfuron-ethyl and permethrin to juvenile Litopenaeus vannamei[J]. Acta Scientiarum Biological Sciences,2011,33(1):1-6. [41] BARBEE G C, STOUT M. Comparative acute toxicity of neonicotinoid and pyrethroid insecticides to non-target crayfish (Procambarus clarkii) associated with rice-crayfish crop rotations[J]. Pest Management Science,2009,65(11):1250-1256. [42] HARPER H E, PENNINGTON P L, HOGUET J, et al. Lethal and sublethal effects of the pyrethroid, bifenthrin, on grass shrimp (Palaemonetes pugio) and sheepshead minnow (Cyprinodon variegatus)[J]. Journal of Environmental Science and Health,Part B:Pesticides,Food Contaminants,and Agricultural Wastes,2008,43(6):476-483. [43] ZHOU J Y, KANG H M, LEE Y H, et al. Adverse effects of a synthetic pyrethroid insecticide cypermethrin on life parameters and antioxidant responses in the marine copepods Paracyclopina nana and Tigriopus japonicus[J]. Chemosphere,2019,217:383-392. [44] 林小涛,梁宣文,王朝晖,等.甲氰菊酯对罗氏沼虾幼体急性致毒的研究[J].应用与环境生物学报,1997,3(2):168-171. [45] 宋坤.三种杀虫剂对中华绒螯蟹组织的损伤效应[D].南京:南京农业大学,2018. [46] 张悦,吴晟旻,张晓君,等.高效氯氰菊酯对中华绒螯蟹60 d慢性毒理及病理研究[J].水产养殖,2019,40(4):6-11. [47] 杨宗英.中华绒螯蟹肝胰腺坏死综合症发病原因及致病机理初步研究[D].上海:上海海洋大学,2018. [48] JIANG Q, AO S Q, JI P, et al. Assessment of deltamethrin toxicity in Macrobrachium nipponense based on histopathology, oxidative stress and immunity damage[J]. Comparative Biochemistry and Physiology Part C:Toxicology & Pharmacology,2021,246:109040. [49] WEI K Q, YANG J X. Oxidative damage induced by copper and beta-cypermethrin in gill of the freshwater crayfish Procambarus clarkii[J]. Ecotoxicology and Environmental Safety, 2015,113:446-453. [50] 吴楠,魏华,沈竑,等.溴氰菊酯对克氏原螯虾肌肉组织的毒性研究[J].水产学报,2015,39(9):1412-1421. [51] HAVERINEN J, VORNANEN M. Effects of deltamethrin on excitability and contractility of the rainbow trout (Oncorhynchus mykiss) heart[J]. Comparative Biochemistry and Physiology Part C:Toxicology & Pharmacology,2014,159:1-9. [52] 陈宇锋,郑惠东,许贻斌,等.溴氰菊酯对日本对虾的急性毒性及积累试验研究[J].福建水产,2010,32(3):31-34. [53] 黄婷.氯氰菊酯和吡虫啉对克氏原螯虾耗氧率和排氨率的影响[J].科技经济市场,2011(5):11-12. [54] QUINDROIT P, CRÉPET A, BROCHOT C. Estimating human exposure to pyrethroids' mixtures from biomonitoring data using physiologically based pharmacokinetic modeling[J]. Environmental Research,2021,192:110281. [55] 翟秀梅,吴垠,王斌,等.3种菊酯类农药对南美白对虾同工酶表型的影响[J].大连水产学院学报,2005,20(2):116-121. [56] 孙永旭,董宏标,王文豪,等.温度对大口黑鲈幼鱼不同组织抗氧化能力及免疫相关蛋白表达的影响[J].生态科学,2019,38(3):18-25. [57] 董福霖,黄天晴,刘恩慧,等.高温胁迫对虹鳟(Oncorhynchus mykiss)肝脏中抗氧化酶活性和免疫相关基因表达的影响[J].海洋与湖沼,2023,54(1):225-232. [58] GREÑO M, AMARIEI G, BOLTES K, et al. Ecotoxicity evaluation of tetramethrin and analysis in agrochemical formulations using chiral electrokinetic chromatography[J]. Science of the Total Environment,2021,800:149496. [59] ELIK A, DURUKAN H, SARAC H, et al. Application of levulinic acid-based natural deep eutectic solvents for extraction and determination of deltamethrin in food samples[J]. Sustainable Chemistry and Pharmacy,2022,30:100861. [60] 魏华,吴楠,沈竑,等.溴氰菊酯对克氏原螯虾的氧化胁迫效应[J].水产学报,2010,34(5):733-739. [61] 杨宗英,张一柳,胡鲲,等.溴氰菊酯对中华绒螯蟹肝胰腺氧化胁迫效应和组织结构的影响[J].浙江农业学报,2017,29(8):1261-1270. [62] VINEETHA V P, TEJASWI H N, SURESH K, et al. Asparagus racemosus improves immune-related parameters in Nile tilapia (Oreochromis niloticus) and mitigates deltamethrin-induced toxicity[J]. Fish &Shellfish Immunology,2022,130:283-293. [63] VELMURUGAN B, CENGIZ E I, SENTHILKUMAAR P, et al. Hematological parameters of freshwater fish Anabas testudineus after sublethal exposure to cypermethrin[J]. Environmental Pollution and Protection,2016,1(1):11004. [64] CHAROENSAPSRI W, AMPARYUP P, SURIYACHAN C, et al. Melanization reaction products of shrimp display antimicrobial properties against their major bacterial and fungal pathogens[J]. Developmental & Comparative Immunology,2014,47(1):150-159. [65] AMPARYUP P, CHAROENSAPSRI W, TASSANAKAJON A. Prophenoloxidase system and its role in shrimp immune responses against major pathogens[J]. Fish & Shellfish Immunology,2013,34(4):990-1001. [66] JOSEPH A, PHILIP R. Ambient copper modulates immunocompetence and induces physiological responses in Penaeus monodon against white spot syndrome virus infection.[J]. Fish & Shellfish Immunology,2023,140:108968. [67] 洪宇航.溴氰菊酯对中华绒螯蟹主要免疫指标的影响[J].广东农业科学,2017,44(3):151-157. [68] 毛阿敏.高效氯氰菊酯对克氏原螯虾免疫毒性的研究[D].太原:山西大学,2013. [69] JIANG Q, JIANG Z Y, AO S Q, et al. Multi-biomarker assessment in the giant freshwater prawn Macrobrachium rosenbergii after deltamethrin exposure[J]. Ecotoxicology and Environmental Safety,2021,214:112067. [70] 洪宇航,黄毅.溴氰菊酯对中华绒螯蟹血细胞DNA的损伤[J].水产科学,2018,37(4):544-549. [71] YUAN H, XIE M H, CHEN J, et al. The role of dietary Clostridium autoethanogenum protein in the growth, disease resistance, intestinal health and transcriptome response of Pacific white shrimp under different stocking densities[J]. Aquaculture,2024,589:740962. [72] WENG T T, CHEN G Q, LI N, et al. Identifying the in vivo-induced antigenic genes is a strategy to develop DNA vaccine against Nocardia seriolae in hybrid snakehead (Channa maculata♀×Channa argus♂)[J]. Fish & Shellfish Immunology,2024,147:109410. [73] DING R X, YANG R, FU Z Y, et al. Response of antioxidation and immunity to combined influences of pH and ammonia nitrogen in the spotted babylon (Babylonia areolata)[J]. Heliyon,2024,10(8):e29205. [74] 敖士齐,翟乾,纪鹏,等.亚甲基蓝对罗氏沼虾组织结构、抗氧化系统及免疫能力的影响[J].淡水渔业,2023,53(1):49-56. [75] SKELLY P J, DA'DARA A A. A novel, non-neuronal acetylcholinesterase of schistosome parasites is essential for definitive host infection[J]. Frontiers in Immunology,2023,14:1056469. [76] HARIHARAN S, CHAUHAN S, MARCHARLA E, et al. Developmental toxicity and neurobehavioral effects of sodium selenite and selenium nanoparticles on zebrafish embryos[J]. Aquatic Toxicology,2024,266:106791. [77] TANG G, SHEN Y, GAO P, et al. Klotho attenuates isoproterenol-induced hypertrophic response in H9C2 cells by activating Na+/K+-ATPase and inhibiting the reverse mode of Na+/Ca2+-exchanger[J]. In Vitro Cellular & Developmental Biology - Animal,2018,54(3):250-256. [78] ZHAN M, WEN L J, ZHU M R, et al. Integrative analysis of transcriptome and metabolome reveals molecular responses in Eriocheir sinensis with hepatopancreatic necrosis disease[J]. Biology,2022,11(9):1267. [79] TSCHESCHE C, BEKAERT M, HUMBLE J L, et al. Genomic analysis of the carboxylesterase family in the salmon louse (Lepeophtheirus salmonis)[J]. Comparative Biochemistry and Physiology, Part C,2021,248:109095. [80] 王玉堂,田建忠.水产养殖用驱杀虫剂类药物的使用及其注意事项[J].中国水产,2015(6):54-57. [81] WAN B Q, LEI Y G, YUAN Z X, et al. Metagenomic dissection of the intestinal microbiome in the giant river prawn Macrobrachium rosenbergii infected with Decapod iridescent virus 1[J]. Fish & Shellfish Immunology,2024,149:109617. [82] LU Y P, LIU J H, ZHANG X X, et al. Integration of transcriptome, gut microbiota, and physiology reveals toxic responses of the red claw crayfish (Cherax quadricarinatus) to imidacloprid[J]. Journal of Hazardous Materials,2024,470:134293. [83] PENG H,JIANCAO G,JINLIANG D, et al. Prometryn exposure disrupts the intestinal health of Eriocheir sinensis: physiological responses and underlying mechanism[J]. Comparative Biochemistry and Physiology, Toxicology Pharmacology,2023,277:109820. [84] 焦阳,李娜,黄银盈,等.高效氯氟氰菊酯聚多巴胺微胶囊悬浮剂对中华绒螯蟹非特异性免疫相关基因表达及肠道菌群的影响[J].复旦学报(自然科学版),2021,60(4):462-472.