Review

Research and application progress in biological control technology for hygiene pest control

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  • Division of Microbiological Surveillance & Vector Borne Disease Control, Ji′nan Center for Disease Control and Prevention, Ji'nan, Shandong 250013, China

Received date: 2020-12-25

  Online published: 2021-06-20

Abstract

Hygiene pests affect and threaten human health and life by means of harassing, biting, and spreading diseases. Chemical control is the main measure of hygiene pest control currently. However, with the growing problems of pesticide residue, pesticide resistance, and environmental pollution, and with the increasing awareness of environmental protection among people and the emergence of new and recurrent vector-borne diseases, the research and application of biological control have received much more attention. In recent years, some achievements have been made in the research and application of pathogenic microorganisms, plants, natural enemies, insect growth regulators, biotoxins, genetic engineering technology, and other aspects of hygiene pest control, and some safe, environmental-friendly, efficient, and economical biological products have been developed and produced. This article summarizes the previous research and application, which may provide a scientific basis and help for the further research and application of biological control technology in reducing the hygiene pest density and prevention and control of vector-borne diseases.

Cite this article

ZHANG Xiao, WANG Dong, XIN Zheng . Research and application progress in biological control technology for hygiene pest control[J]. Chinese Journal of Vector Biology and Control, 2021 , 32(3) : 378 -384 . DOI: 10.11853/j.issn.1003.8280.2021.03.024

References

[1] 陈晨,刘冰,高志丹,等. 病媒生物防治新技术研究进展[J]. 寄生虫与医学昆虫学报,2015,22(4):266-269. DOI:10.3969/j.issn.1005-0507.2015.04.010.Chen C,Liu B,Gao ZD,et al. Research progress of disease vectors control technologies[J]. Acta Parasitol Med Entomol Sin,2015,22(4):266-269. DOI:10.3969/j.issn.1005-0507.2015.04.010.
[2] Chattopadhyay P,Banerjee G,Mukherjee S. Recent trends of modern bacterial insecticides for pest control practice in integrated crop management system[J]. Biotech,2017,7(1):60. DOI:10.1007/s13205-017-0717-6.
[3] 孙明,关贵全,任巧云,等. 蜱生物防治的展望[J]. 寄生虫与医学昆虫学报,2010,17(4):249-253. DOI:10.3969/j.issn.1005-0507.2010.04.013.Sun M,Guan GQ,Ren QY,et al. Prospect for biological control of ticks[J]. Acta Parasitol Med Entomol Sin,2010,17(4):249-253. DOI:10.3969/j.issn.1005-0507.2010.04.013.
[4] Benelli G,Caselli A,Di Giuseppe G,et al. Control of biting lice,Mallophaga-a review[J]. Acta Trop,2018,177:211-219. DOI:10.1016/j.actatropica.2017.05.031.
[5] 杨华林. 我国卫生杀虫剂应用现状和行业导向[J]. 中华卫生杀虫药械,2012,18(5):433-439. DOI:10.19821/j.1671-2781. 2012.05.023.Yang HL. Current situation and trade guide of hygienic insecticides in China[J]. Chin J Hyg Insect Equip,2012,18(5):433-439. DOI:10.19821/j.1671-2781.2012.05.023.
[6] 陆宝麟,赵彤言. 50年来我国的蚊类研究[J]. 昆虫学报,2000,43增刊:1-7. DOI:10.16380/j.kcxb.2000.s1.036.Lu BL,Zhao TY. The mosquito studies in the past fifty years in China[J]. Acta Entomol Sin,2000,43 Suppl:1-7. DOI:10. 16380/j.kcxb.2000.s1.036.
[7] Kali A. Microbial entomopathogens in control of mosquito borne diseases[J]. Int J Pharma Bio Sci,2015,6(4):232-237.
[8] 张吉斌,喻子牛. 微生物防制媒介昆虫进展[J]. 中国媒介生物学及控制杂志,2007,18(1):69-72. DOI:10.3969/j.issn.1003-4692.2007.01.026.Zhang JB,Yu ZN. Advances in microbial control of vector insects[J]. Chin J Vector Biol Control,2007,18(1):69-72. DOI:10.3969/j.issn.1003-4692.2007.01.026.
[9] Fontoura PS,da Costa AS,Ribeiro FS,et al. Field efficacy of VectoMax FG and VectoLex CG biological larvicides for malaria vector control in northwestern Brazil[J]. J Med Entomol,2020,57(3):942-946. DOI:10.1093/jme/tjz220.
[10] 黄恩炯,吴珍泉. 蚊虫生物防制研究进展[J]. 中国媒介生物学及控制杂志,2005,16(3):230-232. DOI:10.3969/j.issn.1003-4692.2005.03.031.Huang EJ,Wu ZQ. Advances in biological control of mosquitoes[J]. Chin J Vector Biol Control,2005,16(3):230-232. DOI:10.3969/j.issn.1003-4692.2005.03.031.
[11] 陈国英,袁方玉,黄光全,等. 灭蚊幼芽孢杆菌剂型的研究与应用[J]. 中国媒介生物学及控制杂志,2006,17(1):41-43. DOI:10.3969/j.issn.1003-4692.2006.01.013.Chen GY,Yuan FY,Huang GQ,et al. Study on the formulations of Bacillus thuringiensis against mosquitoes larvae[J]. Chin J Vector Biol Control,2006,17(1):41-43. DOI:10.3969/j.issn. 1003-4692.2006.01.013.
[12] 马素媛. 苏云金杆菌以色列种对云南省中缅边境地区三带喙库蚊杀伤效果评价[D]. 重庆:第三军医大学,2013.Ma SY. Evaluation of killing effect of Bacillus thuringiensis israelensis on Culex tritaeniorhynchus larvae in China-Myanmar border area of Yunnan province[D]. Chongqing:Third Military Medical University,2013.
[13] 孙锦程,郝蕙玲,吕鸿雁. 绿僵菌在德国小蠊防治中的应用[J]. 中华卫生杀虫药械,2014,20(5):406-408,411. DOI:10. 19821/j.1671-2781.2014.05.004.Sun JC,Hao HL,Lyu HY. Controlling Blattella germanica with Metarhizium anisopliae[J]. Chin J Hyg Insect Equip,2014,20(5):406-408,411. DOI:10.19821/j.1671-2781.2014.05.004.
[14] Uragayala S,Kamaraju R,Tiwari S,et al. Field testing & evaluation of the efficacy & duration of effectiveness of a biolarvicide,Bactivec® SC (Bacillus thuringiensis var. israelensis SH-14) in Bengaluru,India[J]. Indian J Med Res,2018,147(3):299-307. DOI:10.4103/ijmr.IJMR_1631_16.
[15] Su TY,Thieme J,White GS,et al. High resistance to Bacillus sphaericus and susceptibility to other common pesticides in Culex pipiens (Diptera:Culicidae) from salt lake city,UT[J]. J Med Entomol,2019,56(2):506-513. DOI:10.1093/jme/tjy193.
[16] Tewfick MK,Serag WM,Soliman BA. Detection of antibacterial protein in Bacillus sphaericus-treated Culex pipiens (Diptera:Culicidae)[J]. Egypt J Biol Pest Control,2018,28(1):33. DOI:10.1186/s41938-018-0037-0.
[17] 辛正,张晓,刘慧媛,等. 白僵菌在蟑螂防治中的研究进展[J]. 中华卫生杀虫药械,2017,23(5):401-406. DOI:10.19821/j.1671-2781.2017.05.001.Xin Z,Zhang X,Liu HY,et al. Advances in cockroach control by Beauveria bassiana[J]. Chin J Hyg Insect Equip,2017,23(5):401-406. DOI:10.19821/j.1671-2781.2017.05.001.
[18] Huang ZD,Yu GF,Zhang Z,et al. Phylogenetic relationships and effectiveness of four Beauveria bassiana sensu lato strains for control of Haemaphysalis longicornis (Acari:Ixodidae)[J]. Exp Appl Acarol,2019,77(1):83-92. DOI:10.1007/s10493-018-0329-9.
[19] Murigu MM,Nana P,Waruiru RM,et al. Laboratory and field evaluation of entomopathogenic fungi for the control of amitraz-resistant and susceptible strains of Rhipicephalus decoloratus[J]. Vet Parasitol,2016,225:12-18. DOI:10.1016/j.vetpar.2016.05.026.
[20] Ren QY,Sun M,Guan GQ,et al. Susceptibility of the tick Haemaphysalis qinghaiensis to isolates of the fungus Metarhizium anisopliae in China[J]. Exp Appl Acarol,2014,64(2):253-258. DOI:10.1007/s10493-014-9790-2.
[21] 赵鸿峥,骆骄阳,刘秋桃,等. 药用植物挥发油驱蚊作用的研究进展[J]. 中国中药杂志,2016,41(1):28-34. DOI:10.4268/cjcmm20160106.Zhao HZ,Luo JY,Liu QT,et al. Study on essential oils of medicinal plants in insect repellent[J]. China J Chin Mater Med,2016,41(1):28-34. DOI:10.4268/cjcmm20160106.
[22] 王荣新. 大链壶菌灭蚊的优点及缺点分析[J]. 中国媒介生物学及控制杂志,2008,19(4):363-365. DOI:10.3969/j.issn.1003-4692.2008.04.038.Wang RX. The advantages and disadvantages of Lagenidium giganteum in mosquito control[J]. Chin J Vector Biol Control,2008,19(4):363-365. DOI:10.3969/j.issn.1003-4692.2008. 04.038.
[23] 苏晓庆. 蚊虫生物防治的现状与展望[J]. 贵阳医学院学报,2016,41(3):249-253. DOI:10.19367/j.cnki.1000-2707.2016. 03.002.Su XQ. Current situation and prospect of mosquito biological control[J]. J Guiyang Med Coll,2016,41(3):249-253. DOI:10.19367/j.cnki.1000-2707.2016.03.002.
[24] 徐勇,赵桂荣,李成都,等. 高效微生物制剂降低诱蝇因素的测定[J]. 中国媒介生物学及控制杂志,2006,17(2):144. DOI:10.3969/j.issn.1003-4692.2006.02.026.Xu Y,Zhao GR,Li CD,et al. The determination of effective microorganisms in reducing the attraction to flies[J]. Chin J Vector Biol Control,2006,17(2):144. DOI:10.3969/j.issn. 1003-4692.2006.02.026.
[25] 辛正,王东,张晓,等. 植物源卫生杀虫剂开发利用与前景展望[J]. 首都公共卫生,2018,12(1):13-17.Xin Z,Wang D,Zhang X,et al. Review on current development and prospect of botanical hygienic insecticides[J]. Cap J Public Health,2018,12(1):13-17.
[26] 麻毅,姜志宽. 昆虫驱避剂及应用研究进展[J]. 中华卫生杀虫药械,2004,10(6):349-354. DOI:10.3969/j.issn.1671-2781. 2004.06.003.Ma Y,Jiang ZK. Application and development of insect repellent[J]. Chin J Hyg Insect Equip,2004,10(6):349-354. DOI:10.3969/j.issn.1671-2781.2004.06.003.
[27] 蒋敏丽,莫颂轶,孔保庆,等. 植物源性物质在蟑螂防治中的研究进展[J]. 右江民族医学院学报,2013,35(4):545-546. DOI:10.3969/j.issn.1001-5817.2013.04.064.Jiang ML,Mo SY,Kong BQ,et al. Research progress of botanical in cockroach control[J]. J Youjiang Med Univ Natl,2013,35(4):545-546. DOI:10.3969/j.issn.1001-5817.2013.04.064.
[28] Nong X,Tan YJ,Wang JH,et al. Evaluation acaricidal efficacy of botanical extract from Eupatorium adenophorum against the hard tick Haemaphysalis longicornis (Acari:Ixodidae)[J]. Exp Parasitol,2013,135(3):558-563. DOI:10.1016/j.exppara.2013. 09.001.
[29] 李俊凯,徐汉虹. 植物性农药在媒介生物控制中的应用[J]. 中国媒介生物学及控制杂志,2004,15(6):492-495. DOI:10.3969/j.issn.1003-4692.2004.06.032.Li JK,Xu HH. Review on application of botanical pesticides in vector control[J]. Chin J Vector Biol Control,2004,15(6):492-495. DOI:10.3969/j.issn.1003-4692.2004.06.032.
[30] 冉会来,张俊玲,王兰萍. 家栖鼠毒饵防治研究进展[J]. 中华卫生杀虫药械,2012,18(3):243-247,251. DOI:10.19821/j. 1671-2781.2012.03.021.Ran HL,Zhang JL,Wang LP. Study on the rodenticide baits for domestic rodents[J]. Chin J Hyg Insect Equip,2012,18(3):243-247,251. DOI:10.19821/j.1671-2781.2012.03.021.
[31] 张晓,王东,王永明,等. 鼠类的化学防治[J]. 中华卫生杀虫药械,2016,22(4):317-321. DOI:10.19821/j.1671-2781.2016. 04.002.Zhang X,Wang D,Wang YM,et al. The chemical control measures in rat control[J]. Chin J Hyg Insect Equip,2016,22(4):317-321. DOI:10.19821/j.1671-2781.2016.04.002.
[32] Echeverría J,de Albuquerque RDDG. Nanoemulsions of essential oils:new tool for control of vector-borne diseases and in vitro effects on some parasitic agents[J]. Medicines,2019,6(2):42. DOI:10.3390/medicines6020042.
[33] Monteiro IN,Dos Santos Monteiro O,Costa-Junior LM,et al. Chemical composition and acaricide activity of an essential oil from a rare chemotype of Cinnamomum verum Presl on Rhipicephalus microplus (Acari:Ixodidae)[J]. Vet Parasitol,2017,238:54-57. DOI:10.1016/j.vetpar.2017.03.016.
[34] Osanloo M,Sereshti H,Sedaghat MM,et al. Nanoemulsion of dill essential oil as a green and potent larvicide against Anopheles stephensi[J]. Environ Sci Pollut Res,2018,25(7):6466-6473. DOI:10.1007/s11356-017-0822-4.
[35] Balasubramani S,Rajendhiran T,Moola AK,et al. Development of nanoemulsion from Vitex negundo L. essential oil and their efficacy of antioxidant,antimicrobial and larvicidal activities (Aedes aegypti L.)[J]. Environ Sci Pollut Res,2017,24(17):15125-15133. DOI:10.1007/s11356-017-9118-y.
[36] Kabir KE,Choudhary MI,Ahmed S,et al. Growth-disrupting,larvicidal and neurobehavioral toxicity effects of seed extract of Seseli diffusum against Aedes aegypti (L.) (Diptera:Culicidae)[J]. Ecotoxicol Environ Saf,2013,90:52-60. DOI:10.1016/j.ecoenv.2012.12.028.
[37] Imam H,Zarnigar,Sofi G. Mosquito larvicidal efficay of Acorus calamus extracts against Aedes aegypti L. larvae[J]. Asian Pac J Trop Dis,2014,4 Suppl 1:S181-185. DOI:10.1016/S2222-1808(14)60436-9.
[38] Ramar M,Manonmani P,Arumugam P,et al. Nano-insecticidal formulations from essential oil (Ocimum sanctum) and fabricated in filter paper on adult of Aedes aegypti and Culex quinquefasciatus[J]. J Entomol Zool Stud,2017,5(4):1769-1774.
[39] Kumar PM,Kovendan K,Murugan K. Integration of botanical and bacterial insecticide against Aedes aegypti and Anopheles stephensi[J]. Parasitol Res,2013,112(2):761-771. DOI:10.1007/s00436- 012-3196-z.
[40] Landis DA,David B. Biological control:approaches and applications[J]. J Univ Minn,2012,20(4):216-221.
[41] Saeidi Z,Vatandoost H. Aquatic insect from Iran for possible use of biological control of main vector-borne disease of malaria and water indicator of contamination[J]. J Arthropod Borne Dis,2018,12(1):1-15.
[42] 张李香,吴珍泉,范锦胜,等. 蜚蠊膜翅目天敌研究现状[J]. 中国媒介生物学及控制杂志,2008,19(5):484-486. DOI:10.3969/j.issn.1003-4692.2008.05.042.Zhang LX,Wu ZQ,Fan JS,et al. Research status of Hymenoptera natural enemies of cockroach[J]. Chin J Vector Biol Control,2008,19(5):484-486. DOI:10.3969/j.issn.1003-4692.2008. 05.042.
[43] De Mendonça AÉ,Moreira RG,do Amaral MDPH,et al. Entomopathogenic nematodes in pharmaceutical formulations for Rhipicephalus microplus (Acari:Ixodidae) control:in vitro evaluation of compatibility,thermotolerance,and efficiency[J]. Ticks Tick Borne Dis,2019,10(4):781-786. DOI:10.1016/j.ttbdis.2019.03.012.
[44] 杨惠,张金桐,邓兵,等. 保幼激素和蜕皮激素对德国小蠊聚集信息素生物合成的影响[J]. 中国媒介生物学及控制杂志,2008,19(1):25-28. DOI:10.3969/j.issn.1003-4692.2008.01.010.Yang H,Zhang JT,Deng B,et al. Effect of juvenile hormone and moulting hormone on biosynthesis of aggregation pheromone of the German cockroach,Blattella germanica (L.)[J]. Chin J Vector Biol Control,2008,19(1):25-28. DOI:10.3969/j.issn. 1003-4692.2008.01.010.
[45] 蒋洪,韩亚娟,胡柳,等. 重组病毒杀虫剂应用研究进展[J]. 昆虫学报,2008,51(3):322-327. DOI:10.3321/j.issn:0454-6296.2008.03.012.Jiang H,Han YJ,Hu L,et al. Advances in application of recombinant insect viruses as biopesticides[J]. Acta Entomol Sin,2008,51(3):322-327. DOI:10.3321/j.issn:0454-6296. 2008.03.012.
[46] Ogaugwu CE,Durvasula RV. Developing the arsenal against pest and vector dipterans:inputs of transgenic and paratransgenic biotechnologies[M]//Shields VDC. Biological control of pest and vector insects. IntechOpen,2017. DOI:10.5772/66440.
[47] Evans BR,Kotsakiozi P,Costa-da-Silva AL,et al. Transgenic Aedes aegypti mosquitoes transfer genes into a natural population[J]. Sci Rep,2019,9(1):13047. DOI:10.1038/s41598-019-49660-6.
[48] Mains JW,Kelly PH,Dobson KL,et al. Localized control of Aedes aegypti (Diptera:Culicidae) in Miami,FL,via inundative releases of wolbachia-infected male mosquitoes[J]. J Med Entomol,2019,56(5):1296-1303. DOI:10.1093/jme/tjz051.
[49] Carvalho DO,McKemey AR,Garziera L,et al. Suppression of a field population of Aedes aegypti in Brazil by sustained release of transgenic male mosquitoes[J]. PLoS Negl Trop Dis,2015,9(7):e0003864. DOI:10.1371/journal.pntd.0003864.
[50] Lees RS,Gilles JR,Hendrichs J,et al. Back to the future:the sterile insect technique against mosquito disease vectors[J]. Curr Opin Insect Sci,2015,10:156-162. DOI:10.1016/j.cois.2015. 05.011.
[51] Black Ⅳ WC,Alphey L,James AA. Why RIDL is not SIT[J]. Trends Parasitol,2011,27(8):362-370. DOI:10.1016/j.pt. 2011.04.004.
[52] Fu GL,Lees RS,Nimmo D,et al. Female-specific flightless phenotype for mosquito control[J]. Proc Natl Acad Sci USA,2010,107(10):4550-4554. DOI:10.1073/pnas.1000251107.
[53] Labbé GMC,Scaife S,Morgan SA,et al. Female-specific flightless (fsRIDL) phenotype for control of Aedes albopictus[J]. PLoS Negl Trop Dis,2012,6(7):e1724. DOI:10.1371/journal.pntd.0001724.
[54] Promdonkoy B,Promdonkoy P,Panyim S. Co-expression of Bacillus thuringiensis Cry4Ba and Cyt2Aa2 in Escherichia coli revealed high synergism against Aedes aegypti and Culex quinquefasciatus larvae[J]. FEMS Microbiol Lett,2005,252(1):121-126. DOI:10.1016/j.femsle.2005.08.038.
[55] Wang Y,Lechno-Yossef S,Gong YM,et al. Predicted glycosyl transferase genes located outside the HEP island are required for formation of heterocyst envelope polysaccharide in Anabaena sp. Strain PCC 7120[J]. J Bacteriol,2007,189(14):5372-5378. DOI:10.1128/JB.00343-07.
[56] 吴海霞,刘小波,刘起勇. 我国病媒生物防控现状及面临的问题[J]. 首都公共卫生,2018,12(1):4-6.Wu HX,Liu XB,Liu QY. The status and problems of vector control in China[J]. Cap J Public Health,2018,12(1):4-6.
[57] 刘起勇,孟凤霞,樊景春. 中国重要病媒生物应急监测与控制[J]. 中国媒介生物学及控制杂志,2011,22(1):1-4.Liu QY,Meng FX,Fan JC. Vector surveillance and control in emergencies in China:proceedings and perspectives[J]. Chin J Vector Biol Control,2011,22(1):1-4.
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