综述

“推-拉策略”在医学昆虫综合治理中的应用

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  • 泰山医学院病原生物学教研室, 山东 泰安 271016
张瑞玲,女,讲师,主要从事虫媒传染病的预防和控制研究,Email:zhangrl_06@126.com

收稿日期: 2016-06-27

  网络出版日期: 2016-12-20

基金资助

国家自然科学基金(81401693,81572028,81271874);山东省科技发展计划(2014GSF121007)

The use of push-pull strategy in medical pests integrated management

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  • Department of Pathogenic Biology of Taishan Medical University, Taian 271016, Shandong Province, China

Received date: 2016-06-27

  Online published: 2016-12-20

Supported by

Supported by the National Natural Science Foundation of China(No. 81401693, 81572028, 81271874) and the Science and Technology Planning Project of Shandong Province of China(No. 2014GSF121007)

摘要

害虫防治的“推-拉策略”是一种新兴的无害化害虫综合治理方法,主要采用天敌或其他手段驱避害虫与诱杀害虫相结合的方法,来达到消灭害虫的目的,同时该方法还可减少农药的使用,保护生态环境。虽然该策略在农业昆虫防治中已多有应用,但在医学昆虫防治中应用相对较少。有鉴于此,该文对“推-拉策略”在医学昆虫控制中的应用进行了综述,以推动医学昆虫治理方法的理念更新。

本文引用格式

张瑞玲, 陈丹, 刘婧, 庄桂芬, 张忠 . “推-拉策略”在医学昆虫综合治理中的应用[J]. 中国媒介生物学及控制杂志, 2016 , 27(6) : 624 -628 . DOI: 10.11853/j.issn.1003.8280.2016.06.027

Abstract

Push-pull strategy is a new integrated, nontoxic pest management method. The strategies involve the behavioral manipulation of insect pests and their natural enemies via the integration of stimuli that make the protected sources unattractive or unsuitable to the pests (push), while luring them toward attractive sources (pull) from where the pests are subsequently removed. The strategy is a useful tool for integrated pest management programs reducing pesticide application. The strategy has been successfully used in agriculture pest management. But in management of public health pests, it was only used in few species. In this paper, it summarized some cases of push-pull strategies used in public health pest control, in order to promote the push-pull application in the future.

参考文献

[1] Takken W, Knols BGJ. Malaria vector control:current and future strategies[J]. Trends Parasitol, 2009, 25(3):101-104.
[2] Njie M,Dilger E,Lindsay SW,et al. Importance of eaves to house entry by anopheline,but not culicine,mosquitoes[J]. J Med Entomol, 2009, 46(3):505-510.
[3] Imbahale SS,Mweresa CK,Takken W,et al. Development of environmental tools for anopheline larval control[J]. Parasit Vectors, 2011, 4:130. DOI:10.1186/1756-3305-4-130.
[4] Okumu FO,Govella NJ,Moore SJ,et al. Potential benefits, limitations and target product-profiles of odor-baited mosquito traps for malaria control in Africa[J]. PLoS One,2010,5(7):e11573. DOI:10.1371/journal.pone.0011573.
[5] Thomas MB, Godfray HCJ,Read AF,et al. Lessons from agriculture for the sustainable management of malaria vectors[J]. PLoS Med, 2012, 9(7):e1001262. DOI:10.1371/journal. pmed.1001262.
[6] Cook SM,Khan ZR,Pickett JA. The use of push-pull strategies in integrated pest management[J]. Annu Rev Entomol, 2007, 52:375-400.
[7] Pyke B,Rice M,Sabine B,et al. The push-pull strategy-behavioural control of Heliothis[J]. Aust Cotton Grow, 1987, 9:7-9.
[8] Martel JW,Alford AR,Dickens JC. Synthetic host volatiles increase efficacy of trap cropping for management of Colorado potato beetle,Leptinotarsa decemlineata (Say)[J]. Agric For Entomol, 2005, 7(1):79-86.
[9] Barnard DR,Xue RD. Laboratory evaluation of mosquito repellents against Aedes albopictus, Culex nigripalpus, and Ochlerotatus triseriatus(Diptera:Culicidae)[J]. J Med Entomol, 2004, 41(4):726-730.
[10] Fradin MS,Day JF. Comparative efficacy of insect repellents against mosquito bites[J]. N Engl J Med, 2002, 347(1):13-18.
[11] Costantini C,Birkett MA,Gibson G,et al. Electroantennogram and behavioural responses of the malaria vector Anopheles gambiae to human-specific sweat components[J]. Med Vet Entomol, 2001, 15(3):259-266.
[12] Blackwell A,Dyer C,Luntz AJM,et al. Field and laboratory evidence for a volatile pheromone produced by parous females of the Scottish biting midge,Culicoides impunctatus[J]. Physiol Entomol, 1994, 19(4):251-257.
[13] Blackwell A, Evans KA, Strang RHC, et al. Toward development of neem-based repellents against the Scottish Highland biting midge Culicoides impunctatus[J]. Med Vet Entomol, 2004, 18(4):449-452.
[14] Bhasin A,Luntz AJM,Mordue W. Field studies on efficacy of host odour baits for the biting midge Culicoides impunctatus in Scotland[J]. Med Vet Entomol, 2001, 15(2):147-156.
[15] Nalyanya G,Moore CB,Schal C. Integration of repellents, attractants,and insecticides in a "push-pull" strategy for managing German cockroach (Dictyoptera:Blattellidae) populations[J]. J Med Entomol, 2000, 37(3):427-434.
[16] WHO. World malaria report 2013[M]. Geneva:World Health Organization, 2013:23-28.
[17] Braks MAH, Meijerink J,Takken W. The response of the malaria mosquito,Anopheles gambiae,to two components of human sweat,ammonia and L-lactic acid,in an olfactometer[J]. Physiol Entomol, 2001, 26(2):142-148.
[18] Smallegange RC,Qiu YT,Bukovinszkiné-Kiss G,et al. The effect of aliphatic carboxylic acids on olfaction-based host-seeking of the malaria mosquito Anopheles gambiae sensu stricto[J]. J Chem Ecol, 2009, 35(8):933-943.
[19] Okumu FO,Killeen GF,Ogoma S,et al. Development and field evaluation of a synthetic mosquito lure that is more attractive than humans[J]. PLoS One, 2010, 5(1):e8951. DOI:10.1371/journal.pone.0008951.
[20] Jawara M,Smallegange RC,Jeffries D,et al. Optimizing odor-baited trap methods for collecting mosquitoes during the malaria season in the Gambia[J]. PLoS One, 2009, 4(12):e8167. DOI:10.1371/journal.pone.0008167.
[21] Mukabana WR, Mweresa CK, Otieno B, et al. A novel synthetic odorant blend for trapping of malaria and other African mosquito species[J]. J Chem Ecol, 2012, 38(3):235-244.
[22] Lindsay LR,Surgeoner GA,Heal JD,et al. Evaluation of the efficacy of 3% citronella candles and 5% citronella incense for protection against field populations of Aedes mosquitoes[J]. J Am Mosq Control Assoc, 1996, 12(2 Pt 1):293-294.
[23] Seyoum A,Pålsson K,Kung'a S,et al. Traditional use of mosquito-repellent plants in western Kenya and their evaluation in semi-field experimental huts against Anopheles gambiae:ethnobotanical studies and application by thermal expulsion and direct burning[J]. Trans R Soc Trop Med Hyg, 2002, 96(3):225-231.
[24] Alten B,Caglar SS,Simsek FM,et al. Field evaluation of an area repellent system(Thermacell)against Phlebotomus papatasi (Diptera:Psychodidae) and Ochlerotatus caspius (Diptera:Culicidae)in Sanliurfa province, Turkey[J]. J Med Entomol, 2003, 40(6):930-934.
[25] Menger DJ,Omusula P,Holdinga M,et al. Field evaluation of a push-pull system to reduce malaria transmission[J]. PLoS One, 2015, 10(4):e0123415. DOI:10.1371/journal.pone.0123415.
[26] Jawara M, Awolola TS, Pinder M, et al. Field testing of different chemical combinations as odour baits for trapping wild mosquitoes in the Gambia[J]. PLoS One, 2011, 6(5):e19676. DOI:10.1371/journal.pone.0019676.
[27] Day JF,Sjogren RD. Vector control by removal trapping[J]. Am J Trop Med Hyg, 1994, 50(6 Suppl):S126-133.
[28] Maia MF,Onyango SP,Thele M,et al. Do topical repellents divert mosquitoes within a community?-health equity implications of topical repellents as a mosquito bite prevention tool[J]. PLoS One, 2013, 8(12):e84875. DOI:10.1371/journal. pone.0084875.
[29] Menger DJ,Otieno B,De Rijk M,et al. A push-pull system to reduce house entry of malaria mosquitoes[J]. Malaria J, 2014, 13:119. DOI:10.1186/1475-2875-13-119.
[30] Reddy MR, Overgaard HJ, Abaga S,et al. Outdoor host seeking behaviour of Anopheles gambiae mosquitoes following initiation of malaria vector control on Bioko Island,Equatorial Guinea[J]. Malar J, 2011, 10:184. DOI:10.1186/1475-2875-10-184.
[31] Russell TL,Beebe NW,Cooper RD,et al. Successful malaria elimination strategies require interventions that target changing vector behaviours[J]. Malar J,2013,12:56. DOI:10.1186/1475-2875-12-56.
[32] Herrera-Varela M, Lindh J, Lindsay SW,et al. Habitat discrimination by gravid Anopheles gambiae sensu lato-a push-pull system[J]. Malar J,2014,13:133. DOI:10.1186/1475-2875-13-133.
[33] McPhatter LP,Debboun M. Attractiveness of botanical infusions to ovipositing Culex quinquefasciatus,Cx. nigripalpus, and Cx. erraticus in San Antonio,Texas[J]. J Am Mosq Control Assoc, 2009, 25(4):508-510.
[34] Rasgon JL. Wolbachia induces male-specific mortality in the mosquito Culex pipiens(LIN strain)[J]. PLoS One, 2012, 7(3):e30381. DOI:10.1371/journal.pone.0030381.
[35] Iwashita H,Dida GO,Sonye GO,et al. Push by a net,pull by a cow:can zooprophylaxis enhance the impact of insecticide treated bed nets on malaria control?[J]. Parasit Vectors, 2014, 7:52. DOI:10.1186/1756-3305-7-52.
[36] Mutuku FM, Alaii JA, Bayoh MN, et al. Distribution, description,and local knowledge of larval habitats of Anopheles gambiae s. l. in a village in western Kenya[J]. Am J Trop Med Hyg, 2006, 74(1):44-53.
[37] Roberts DR,Alecrim WD,Hshieh P,et al. A probability model of vector behavior:effects of DDT repellency,irritancy,and toxicity in malaria control[J]. J Vector Ecol, 2000, 25(1):48-61.
[38] Fay RW,Prince WH. A modified visual trap for Aedes aegypti[J]. Mosq News, 1970, 30(1):20-23.
[39] Maciel-de-Freitas R,Eiras AE,Lourenço-de-Oliveira R. Field evaluation of effectiveness of the BG-Sentinel,a new trap for capturing adult Aedes aegypti (Diptera:Culicidae)[J]. Mem Inst Oswaldo Cruz, 2006, 101(3):321-325.
[40] Reiter P. Comments ULV for Aedes aegypti control[J]. Vector Ecol Newsl, 1991, 22(2):3-4.
[41] Perich MJ,Davila G,Turner A,et al. Behavior of resting Aedes aegypti(Culicidae:Diptera)and its relation to ultra-low volume adulticide efficacy in Panama city,Panama[J]. J Med Entomol, 2000, 37(4):541-546.
[42] Thavara U,Tawatsin A,Chansang C,et al. Larval occurrence, oviposition behavior and biting activity of potential mosquito vectors of dengue on Samui Island, Thailand[J]. J Vector Ecol, 2001, 26(2):172-180.
[43] Manda H, Arce LM, Foggie T, et al. Effects of irritant chemicals on Aedes aegypti resting behavior:is there a simple shift to untreated "safe sites"?[J]. PLoS Negl Trop Dis, 2011, 5(7):e1243. DOI:10.1371/journal.pntd.0001243.
[44] Tainchum K,Polsomboon S,Grieco JP,et al. Comparison of Aedes aegypti (Diptera:Culicidae) resting behavior on two fabric types under consideration for insecticide treatment in a push-pull strategy[J]. J Med Entomol, 2013, 50(1):59-68.
[45] Salazar FV,Achee NL,Grieco JP,et al. Evaluation of a peridomestic mosquito trap for integration into an Aedes aegypti (Diptera:Culicidae) push-pull control strategy[J]. J Vector Ecol, 2012, 37(1):8-19.
[46] Kröckel U,Rose A,Eiras AE,et al. New tools for surveillance of adult yellow fever mosquitoes:comparison of trap catches with human landing rates in an urban environment[J]. J Am Mosq Contr Assoc, 2006, 22(2):229-238.
[47] Obermayr U,Ruther J,Bernier U,et al. Laboratory evaluation techniques to investigate the spatial potential of repellents for push and pull mosquito control systems[J]. J Med Entomol, 2012, 49(6):1387-1397.
[48] Mng' ong'o FC,Sambali JJ,Sabas E,et al. Repellent plants provide affordable natural screening to prevent mosquito house entry in tropical rural settings-results from a pilot efficacy study[J]. PLoS One, 2011, 6(10):e25927. DOI:10.1371/journal. pone.0025927.
[49] Paz-Soldan VA, Plasai V,Morrison AC,et al. Initial assessment of the acceptability of a push-pull Aedes aegypti control strategy in Iquitos,Peru and Kanchanaburi,Thailand[J]. Am J Trop Med Hyg, 2011, 84(2):208-217.
[50] Kopanic RJ Jr, Schal C. Coprophagy facilitates horizontal transmission of bait among cockroaches (Dictyoptera:Blattellidae)[J]. Environ Entomol, 1999, 28(3):431-438.

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