[1] Johansson MA,Powers AM,Pesik N,et al. Nowcasting the spread of chikungunya virus in the Americas[J]. PLoS One, 2014,9(8):e104915. [2] 林钟宇,潘华峰,王正,等. 2014年广东登革热流行趋势与防控对策[J]. 卫生软科学,2015,29(9):590-592. [3] Dengue challenges India's health system[J]. Lancet,2015,386(10000):1212. [4] Petersen LR,Jamieson DJ,Powers AM,et al. Zika virus[J]. N Engl J Med,2016,374(16):1552-1563. [5] Barrett ADT. Yellow fever in Angola and beyond-the problem of vaccine supply and demand[J]. N Engl J Med,2016,375(4):301-303. [6] Guy B,Jackson N. Dengue vaccine:hypotheses to understand CYD-TDV-induced protection[J]. Nat Rev Microbiol,2016,14(1):45-54. [7] 龚震宇. WHO关于登革热疫苗的意见书(摘要)(2016年7月)[J]. 疾病监测,2016,31(12):1076-1078. [8] Pardi N,Hogan MJ,Pelc RS,et al. Zika virus protection by a single low-dose nucleoside-modified mRNA vaccination[J]. Nature,2017,543(7644):248-251. [9] Larocca RA,Abbink P,Peron JPS,et al. Vaccine protection against Zika virus from Brazil[J]. Nature,2016,536(7617):474-478. [10] Bowman LR,Donegan S,McCall PJ. Is dengue vector control deficient in effectiveness or evidence?:systematic review and Meta-analysis[J]. PLoS Negl Trop Dis,2016,10(3):e0004551. [11] 晁斌,阮峰,崔利伟,等. 环境治理与化学方法防治蚊虫效果的比较[J]. 寄生虫与医学昆虫学报,2013,20(4):255-260. [12] Kusumawathie PH,Yapabandarab AM,Jayasooriya GA,et al. Effectiveness of net covers on water storage tanks for the control of dengue vectors in Sri Lanka[J]. J Vector Borne Dis,2009,46(2):160-163. [13] Ngrenngarmlert W,Sukkanon C,Yaicharoen R,et al. Physical influence on larvicidal and pupicidal activity of the silicone-based monomolecular film[J]. Acta Trop,2016,162:239-244. [14] Senanayake N, Johnson MK. Acute polyneuropathy after poisoning by a new organophosphate insecticide[J]. N Engl J Med,1982,306(3):155-157. [15] Heckel DG. Insecticide resistance after silent spring[J]. Science, 2012,337(6102):1612-1614. [16] Marcombe S,Mathieu RB, Pocquet N, et al. Insecticide resistance in the dengue vector Aedes aegypti from martinique:distribution, mechanisms and relations with environmental factors[J]. PLoS One,2012,7(2):e30989. [17] 中华人民共和国国家卫生和计划生育委员会. GB/T 31714-2015病媒生物化学防治技术指南空间喷雾[S]. 北京:中国标准出版社,2016. [18] 克勤. 超低容量喷雾剂简介[J]. 农业技术与装备,2014(5):67. [19] 王飞,陆珏磊,蒋璐,等. 绿篱施药技术现场控制白纹伊蚊的效果研究[J]. 中国媒介生物学及控制杂志,2016,27(6):555-557. [20] Thavara U,Tawatsin A,Kong-Ngamsuk W,et al. Efficacy and longevity of a new formulation of temephos larvicide tested in village-scale trials against larval Aedes aegypti in water-storage containers[J]. J Am Mosq Control Assoc,2004,20(2):176-182. [21] 冷培恩,徐仁权,刘洪霞,等. 1%双硫磷砂粒剂现场灭蚊幼效果研究[J]. 中华卫生杀虫药械,2008,14(5):330-333. [22] 刘小波,刘起勇,任东升,等. 两种多杀菌素剂型对三带喙库蚊幼虫现场防治评价[J]. 中华卫生杀虫药械,2014,20(2):115-118. [23] Dos Santos Dias L,Macoris ML,Andrighetti MT,et al. Toxicity of spinosad to temephos-resistant Aedes aegypti populations in Brazil[J]. PLoS One,2017,12(3):e0173689. [24] 张晓越,孟凤霞,刘起勇,等. 多杀菌素Natular G30对海南省不同生境致倦库蚊的控制效果比较研究[J]. 中国媒介生物学及控制杂志,2014,25(2):105-108,112. [25] Bond JG,Marina CF,Williams T. The naturally derived insecticide spinosad is highly toxic to Aedes and Anopheles mosquito larvae[J]. Med Vet Entomol,2004,18(1):50-56. [26] 王以燕,钟亚凤,赵永辉,等. WHO更新推荐用于防治蚊虫的农药和剂型[J]. 中华卫生杀虫药械,2016,22(3):216-219. [27] 徐仁权,刘洪霞,冷培恩,等. 0.5%吡丙醚颗粒剂对白纹伊蚊控制效果的研究[J]. 中国媒介生物学及控制杂志,2010,21(4):297-299. [28] Wu N,Wang SS,Han GX,et al. Control of Aedes aegypti larvae in household water containers by Chinese cat fish[J]. Bull World Health Organ,1987,65(4):503-506. [29] Setha T,Chantha N,Benjamin S,et al. Bacterial Larvicide, Bacillus thuringiensis israelensis strain AM 65-52 water dispersible granule formulation impacts both dengue vector, Aedes aegypti(L.)population density and disease transmission in cambodia[J]. PLoS Negl Trop Dis,2016,10(9):e0004973. [30] Walker T,Johnson PH,Moreira LA,et al. The wMel Wolbachia strain blocks dengue and invades caged Aedes aegypti populations[J]. Nature,2011,476(7361):450-453. [31] Bian GW,Xu Y,Lu P,et al. The endosymbiotic bacterium Wolbachia induces resistance to dengue virus in Aedes aegypti[J]. PLoS Pathog,2010,6(4):e1000833. [32] Hoffmann AA,Montgomery BL,Popovici J,et al. Successful establishment of Wolbachia in Aedes populations to suppress dengue transmission[J]. Nature,2011,476(7361):454-457. [33] 李永军,刘起勇,奚志勇,等. 应用沃尔巴克氏体通过种群替换阻断蚊媒病的传播[J]. 中国媒介生物学及控制杂志, 2015,26(1):11-15. [34] LePage D,Bordenstein SR. Wolbachia:can we save lives with a great pandemic?[J]. Trends Parasitol,2013,29(8):385-393. [35] Wise de Valdez MR,Nimmo D,Betz J,et al. Genetic elimination of dengue vector mosquitoes[J]. Proc Natl Acad Sci USA,2011, 108(12):4772-4775. [36] Thomas DD,Donnelly CA,Wood RJ,et al. Insect population control using a dominant,repressible,lethal genetic system[J]. Science,2000,287(5462):2474-2476. [37] Harris AF,McKemey AR,Nimmo D,et al. Successful suppression of a field mosquito population by sustained release of engineered male mosquitoes[J]. Nat Biotechnol,2012,30(9):828-830. [38] Paes de Andrade P,Aragão FJL,Colli W,et al. Use of transgenic Aedes aegypti in Brazil:risk perception and assessment[J]. Bull World Health Organ,2016,94(10):766-771. [39] World Health Organization. Mosquito(vector)control emergency response and preparedness for Zika virus[EB/OL]. (2016-03-18)[2017-05-30]. http://www.who.int/neglected_diseases/news/mosquito_vector_control_response/en. |