[1]
|
吾玛尔·阿布力孜, 孜比妮沙·吾布力, 阿布都拉·阿巴斯. 我国螨类研究的最新进展[J]. 生物学通报, 2009, 44(4):12-15.
Google Scholar
|
[2]
|
BROWN S, KERNS D L, GORE J, et al. Susceptibility of Twospotted Spider Mites (Tetranychus urticae) to Abamectin in Midsouth Cotton[J]. Crop Protection, 2017, 98:179-183.
Google Scholar
|
[3]
|
LI L T, YU L C, HE L M, et al. Temperature-Dependent Development and Reproduction of Tarsonemus confusus (Acari:Tarsonemidae):an Important Pest Mite of Horticulture[J]. Experimental and Applied Acarology, 2022, 88(3-4):301-316.
Google Scholar
|
[4]
|
TIFTIKÇI P, KÖKŞ, KASAP. The Effect of Host Plant on the Biological Control Efficacy of the Predatory Mite, Phytoseiulus persimilis Athias-Henriot Against Two-Spotted Spidermites, Tetranychus urticae Koch on Field-Grown Vegetables[J]. Crop Protection, 2022, 158:106012.
Google Scholar
|
[5]
|
SARMAH M, TALUKDAR T, HANDIQUE G, et al. Millettia pinnata and Sesamum indicum Seed Oil Based Green Pesticide Formulations for the Management of Tea Red Spider Mite, Oligonychus coffeae Nietner (Acari:Tetranychidae)[J]. International Journal of Tropical Insect Science, 2021, 41(1):619-628.
Google Scholar
|
[6]
|
洪晓月, 薛晓峰, 王进军, 等. 作物重要叶螨综合防控技术研究与示范推广[J]. 应用昆虫学报, 2013, 50(2):321-328.
Google Scholar
|
[7]
|
章冰川, 罗金香, 赖婷, 等. 香豆素类化合物对朱砂叶螨的触杀活性及定量构效关系研究[J]. 农药学学报, 2016, 18(1):37-48.
Google Scholar
|
[8]
|
孙贝贝, 郑书恒, 梁铁双, 等. 几种常见捕食螨的研究与应用[J]. 农业工程技术, 2020, 40(1):20-23.
Google Scholar
|
[9]
|
徐学农, 吕佳乐, 王恩东. 国际捕食螨研发与应用的热点问题及启示[J]. 中国生物防治学报, 2013, 29(2):163-174.
Google Scholar
|
[10]
|
王利军, 谭万忠, 罗华东, 等. 虫生真菌及其在害虫生物控制中的应用现状与展望[J]. 河南农业科学, 2010, 39(4):119-125.
Google Scholar
|
[11]
|
刘艳梅, 杨航宇, 张宗舟. 昆虫病原真菌的种类和致病机理[J]. 天水师范学院学报, 2009, 29(2):40-43.
Google Scholar
|
[12]
|
徐心砚, 初梦璇. 虫生真菌防治茶叶害虫的研究[J]. 现代农机, 2021(4):99-101.
Google Scholar
|
[13]
|
王露露, 王辉, 熊焰, 等. 虫生真菌防治农作物害虫的研究进展[J]. 热带生物学报, 2022, 13(3):309-314.
Google Scholar
|
[14]
|
CANASSA F, TALL S, MORAL R A, et al. Effects of Bean Seed Treatment by the Entomopathogenic Fungi Metarhizium robertsii and Beauveria bassiana on Plant Growth, Spider Mite Populations and Behavior of Predatory Mites[J]. Biological Control, 2019, 132:199-208.
Google Scholar
|
[15]
|
严森, 任小云, 王登杰, 等. 昆虫病原真菌在害虫防治中对天敌生物的影响研究进展[J]. 中国生物防治学报, 2023, 39(1):221-230.
Google Scholar
|
[16]
|
WRAIGHT S P, RAMOS M E. Delayed Efficacy of Beauveria bassiana Foliar Spray Applications Against Colorado Potato Beetle:Impacts of Number and Timing of Applications on Larval and Next-Generation Adult Populations[J]. Biological Control, 2015, 83:51-67.
Google Scholar
|
[17]
|
吴圣勇, 杨清坡, 徐长春, 等. 昆虫病原真菌和捕食螨间的互作关系及二者联合应用研究进展[J]. 中国生物防治学报, 2019, 35(1):127-133.
Google Scholar
|
[18]
|
IKEGAWA Y, EZOE H, NAMBA T. Adaptive Defense of Pests and Switching Predation can Improve Biological Control by Multiple Natural Enemies[J]. Population Ecology, 2015, 57(2):381-395.
Google Scholar
|
[19]
|
陈耀年. 巴氏新小绥螨及与顶孢霉联用对二斑叶螨捕食功能的研究[D]. 兰州:甘肃农业大学, 2016.
Google Scholar
|
[20]
|
WU S Y, GAO Y L, SMAGGHE G, et al. Interactions between the Entomopathogenic Fungus Beauveria bassiana and the Predatory Mite Neoseiulus barkeri and Biological Control of Their Shared Prey/Host Frankliniella occidentalis[J]. Biological Control, 2016, 98:43-51.
Google Scholar
|
[21]
|
CHANDLER D, DAVIDSON G, JACOBSON R. Laboratory and Glasshouse Evaluation of Entomopathogenic Fungi Against the Two-Spotted Spider Mite, Tetranychus urticae (Acari:Tetranychidae), on Tomato, Lycopersicon esculentum[J]. Biocontrol Science and Technology, 2005, 15:37-54.
Google Scholar
|
[22]
|
吴圣勇. 白僵菌、巴氏新小绥螨和西花蓟马间的互作关系研究[D]. 北京:中国农业科学院, 2014.
Google Scholar
|
[23]
|
ONG T W Y, VANDERMEER J H. Coupling Unstable Agents in Biological Control[J]. Nature Communications, 2015, 6(1):5991.
Google Scholar
|
[24]
|
王清海, 万平平, 黄玉杰, 等. 虫生真菌在害虫生物防治中的应用研究[J]. 山东科学, 2005, 18(4):37-41.
Google Scholar
|
[25]
|
余思源. 球孢白僵菌BEdy1对白背飞虱的亚致死效应研究及互作转录组分析[D]. 四川农业大学, 2022.
Google Scholar
|
[26]
|
SARANRAJ P, JAYAPRAKASH A. Agrobeneficial Entomopathogenic Fungi-Beauveria Bassiana:AReview[J]. Indo-Asian Journal of Multidisciplinary Research, 2017, 3(2):1051-1087.
Google Scholar
|
[27]
|
BRUCK D J. Fungal Entomopathogens in the Rhizosphere[J]. Bio Control, 2010, 55(1):103-112.
Google Scholar
|
[28]
|
BEHIE S W, JONES S J, BIDOCHKA M J. Plant Tissue Localization of the Endophytic Insect Pathogenic Fungi Metarhizium and Beauveria[J]. Fungal Ecology, 2015, 13:112-119.
Google Scholar
|
[29]
|
郭东升, 翟颖妍, 任广伟, 等. 白僵菌属分类研究进展[J]. 西北农业学报, 2019, 28(4):497-509.
Google Scholar
|
[30]
|
KIM J J, JEONG G, HAN J H, et al. Biological Control of Aphid Using Fungal Culture and Culture Filtrates of Beauveria bassiana[J]. Mycobiology, 2013, 41(4):221-224.
Google Scholar
|
[31]
|
DAUD I D, JUNAID M, TUWO M. Endophytic Seed with Beauveria bassiana and Liquid Compost:Control of Pest Stem Borer of Corn, Ostrinia furnacalis and Increase Yield Resilient in Marginal Land?[J]. IOP Conference Series:Earth and Environmental Science, 2020, 486(1):012142.
Google Scholar
|
[32]
|
NAG S, BHULLAR M B, KAUR P. Efficacy of Biorationals Against Two-Spotted Spider Mite, Tetranychus urticae Koch, (Acari:Tetranychidae) Infesting Green Pepper Cultivated under Protected Conditions[J]. International Journal of Acarology, 2020, 46(7):489-495.
Google Scholar
|
[33]
|
ZIMMERMANN G. Review on Safety of the Entomopathogenic Fungi Beauveria bassiana and Beauveria brongniartii[J]. Biocontrol Science and Technology, 2007, 17(6):553-596.
Google Scholar
|
[34]
|
赵薇. 一株白僵菌菌株的分离鉴定培养及致病力研究[D]. 哈尔滨:东北农业大学, 2019.
Google Scholar
|
[35]
|
李增智. 虫生真菌研究展望[J]. 安徽农学院学报, 1987, 14(3):61-72.
Google Scholar
|
[36]
|
WRAIGHTSP, JACKSON M A, DEKOKC S L. Production, Stabilization and Formulation of Fungal Biocontrol Agents[M]//Fungi as Biocontrol Agents:Progress, Problems and Potential. UK:CABI Publishing, 2001:253-287.
Google Scholar
|
[37]
|
PENG Z Y, HUANG S T, CHEN J T, et al. An Update of a Green Pesticide:Metarhizium anisopliae[J]. All Life, 2022, 15(1):1141-1159.
Google Scholar
|
[38]
|
裘维蕃. 评《安、比氏菌物辞典》第8版的内容[J]. 吉林农业大学学报, 1998, 20(S1):12-13.
Google Scholar
|
[39]
|
LAHEY S, ANGELONE S, DEBARTOLO M O, et al. Localization of the Insect Pathogenic Fungal Plant Symbionts Metarhizium robertsii and Metarhizium brunneum in Bean and Corn Roots[J]. Fungal Biology, 2020, 124(10):877-883.
Google Scholar
|
[40]
|
ST LEGER R J, WANG J B. Metarhizium:Jack of All Trades, Master of Many[J]. Open Biology, 2020, 10(12):200307.
Google Scholar
|
[41]
|
余丹. 绿僵菌紫外诱变株的蛋白表达变化及nrb6基因突变分析[D]. 广州:华南农业大学, 2019.
Google Scholar
|
[42]
|
马丽娟, 滕忠才, 臧欢, 等. 对斜纹夜蛾高效绿僵菌的筛选[J]. 植物保护, 2012, 38(5):78-83.
Google Scholar
|
[43]
|
雷妍圆, 王德森, 薛志洪, 等. 广州地区一株绿僵菌的鉴定及其对草地贪夜蛾的致病力测定[J]. 南方农业学报, 2020, 51(6):1265-1273.
Google Scholar
|
[44]
|
TANG J F, LIU X Y, DING Y C, et al. Evaluation of Metarhizium anisopliae for Rice Planthopper Control and Its Synergy with Selected Insecticides[J]. Crop Protection, 2019, 121:132-138.
Google Scholar
|
[45]
|
FERNANDEZ FERRARI M C, FAVARO R, MAIR S, et al. Application of Metarhizium anisopliaeas a Potential Biological Control of Varroa destructorin Italy[J]. Journal of Apicultural Research, 2020, 59(4):528-538.
Google Scholar
|
[46]
|
裘晖, 吴振强, 梁世中. 金龟子绿僵菌及其杀虫机理[J]. 农药, 2004, 43(8):342-345.
Google Scholar
|
[47]
|
杨华, 杨恩兰, 张功营, 等. 绿僵菌防治烟田主要害虫的研究进展与展望[J]. 中国烟草科学, 2015, 36(5):101-107.
Google Scholar
|
[48]
|
张彦丰. 绿僵菌对东亚飞蝗中肠致病机理的研究[D]. 乌鲁木齐:新疆农业大学, 2015.
Google Scholar
|
[49]
|
黄汉成, 吴天乐, 陈绍基, 等. 白色拟青霉分离鉴定及优势毒力菌株筛选[J]. 西南大学学报(自然科学版), 2023, 45(7):67-74.
Google Scholar
|
[50]
|
MORENO-GAVÍRA A, HUERTAS V, DIÁNEZ F, et al. Paecilomyces and Its Importance in the Biological Control of Agricultural Pests and Diseases[J]. Plants, 2020, 9(12):1746.
Google Scholar
|
[51]
|
闫芳芳, 曾庆宾, 官宇, 等. 猪屎豆与淡紫拟青霉联合防治烟草根结线虫病的效果评价[J]. 中国农学通报, 2018, 34(9):136-140.
Google Scholar
|
[52]
|
KASSAM R, JAISWAL N, HADA A, et al. Evaluation of Paecilomyces tenuis Producing Huperzine A for the Management of Root-Knot Nematode Meloidogyne incognita (Nematoda:Meloidogynidae)[J]. Journal of Pest Science, 2023, 96(2):723-743.
Google Scholar
|
[53]
|
王记祥, 马良进. 虫生真菌在农林害虫生物防治中的应用[J]. 浙江林学院学报, 2009, 26(2):286-291.
Google Scholar
|
[54]
|
KIEWNICK S, SIKORA R A. Biological Control of the Root-Knot Nematode Meloidogyne incognita by Paecilomyces lilacinus Strain 251[J]. Biological Control, 2006, 38(2):179-187.
Google Scholar
|
[55]
|
NGUYEN H C, VANANHTRANT, NGUYEN Q L, et al. Newly Isolated Paecilomyces lilacinus and Paecilomyces javanicus as Novel Biocontrol Agents for Plutella xylostella and Spodoptera litura[J]. Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 2017, 45(1):280-286.
Google Scholar
|
[56]
|
HAN J H, JIN B R, KIM J J, et al. Virulence of Entomopathogenic Fungi Metarhizium anisopliae and Paecilomyces fumosoroseus for the Microbial Control of Spodoptera exigua[J]. Mycobiology, 2014, 42(4):385-390.
Google Scholar
|
[57]
|
CHANDLER D, DAVIDSON G, PELL J K, et al. Fungal Biocontrol of Acari[J]. Biocontrol Science and Technology, 2000, 10(4):357-384.
Google Scholar
|
[58]
|
王宏民, 张奂, 郝赤, 等. 玫烟色拟青霉对小菜蛾幼虫的侵染过程及接菌方法对其致病力的影响[J]. 中国生态农业学报, 2009, 17(4):704-708.
Google Scholar
|
[59]
|
聂海珍. 棉隆与淡紫拟青霉联合防治番茄根结线虫病研究[D]. 北京:中国农业科学院, 2015.
Google Scholar
|
[60]
|
张定朋. PUB25和PUB26参与调控拟南芥对大丽花轮枝孢免疫反应机制的研究[D]. 北京:中国农业大学, 2016.
Google Scholar
|
[61]
|
ELHAKIM E, MOHAMED O, ELAZOUNI I. Virulence and Proteolytic Activity of Entomopathogenic Fungi Against the Two-Spotted Spider Mite, Tetranychus urticae Koch (Acari:Tetranychidae)[J]. Egyptian Journal of Biological Pest Control, 2020, 30(1):1-8.
Google Scholar
|
[62]
|
曾君. 蜡蚧轮枝菌耐热性菌株的筛选及耐热性机理的初步分析[D]. 福州:福建农林大学, 2014.
Google Scholar
|
[63]
|
曾君, 田麟, 王金明, 等. 蜡蚧轮枝菌侵染黑刺粉虱体表过程的显微观察[J]. 武夷科学, 2013, 29(1):186-191.
Google Scholar
|
[64]
|
AQUEEL M A, LEATHER S R. Virulence of Verticillium lecanii (Z.) Against Cereal Aphids; Does Timing of Infection Affect the Performance of Parasitoids and Predators?[J]. Pest Management Science, 2013, 69(4):493-498.
Google Scholar
|
[65]
|
杨通, 黄国泰. 蜡蚧轮枝菌对小麦长管蚜的致病效果初步研究[J]. 广东农业科学, 2011, 38(20):71-72.
Google Scholar
|
[66]
|
GHAFFARI S, KARIMI J, KAMALI S, et al. Biocontrol of Planococcus citri (Hemiptera:Pseudococcidae) by Lecanicillium longisporum and Lecanicillium lecanii under Laboratory and Greenhouse Conditions[J]. Journal of Asia-Pacific Entomology, 2017, 20(2):605-612.
Google Scholar
|
[67]
|
张鹏飞, 张昕然, 张龙. 蜡蚧轮枝菌及其在有害生物防治中的应用研究进展[J]. 环境昆虫学报, 2023, 45(4):910-921.
Google Scholar
|
[68]
|
WANG L, HUANG J, YOU M, et al. Time-Dose-Mortality Modelling and Virulence Indices for Six Strains of Verticillium lecanii Against Sweetpotato Whitefly, Bemisia tabaci (Gennadius)[J]. Journal of Applied Entomology, 2004, 128(7):494-500.
Google Scholar
|
[69]
|
HYDE K D, NORPHANPHOUN C, MAHARACHCHIKUMBURA SSN, et al. Refined Families of Sordariomycetes[J]. Mycosphere, 2020, 11(1):305-1059.
Google Scholar
|
[70]
|
SUNG G H, HYWEL-JONES N L, SUNG J M, et al. Phylogenetic Classification of Cordyceps and the Clavicipitaceous Fungi[J]. Studies in Mycology, 2007, 57(1):5-59.
Google Scholar
|
[71]
|
曲德鹏, 邹晓. 被毛孢属真菌防治植食性螨类的研究进展[J]. 现代农业科技, 2011(4):36-38.
Google Scholar
|
[72]
|
邹晓, 韩燕峰, 梁宗琦, 等. 两个产孢梗束的节肢动物病原真菌新种[J]. 山地农业生物学报, 2021, 40(6):1-10.
Google Scholar
|
[73]
|
贾春生, 洪波. 一种潜在的褐飞虱生防真菌:桔形被毛孢的分离、鉴定与培养[J]. 东北农业大学学报, 2010, 41(7):27-31.
Google Scholar
|
[74]
|
CHEN S Y, LIU X Z. Control of the Soybean Cyst Nematode by the Fungi Hirsutella rhossiliensis and Hirsutella minnesotensis in Greenhouse Studies[J]. Biological Control, 2005, 32(2):208-219.
Google Scholar
|
[75]
|
CIANCIO A, COLAGIERO M, ROSSO L C, et al. Phylogeny and Morphology of Hirsutella tunicata Sp. Nov. (Ophiocordycipitaceae), ANovel Mite Parasite from Peru[J]. Mycoscience, 2013, 54(5):378-386.
Google Scholar
|
[76]
|
THONGTAN J, SAENBOONRUENG J, RACHTAWEE P, et al. An Antimalarial Tetrapeptide from the Entomopathogenic Fungus Hirsutella sp. BCC 1528[J]. Journal of Natural Products, 2006, 69(4):713-714.
Google Scholar
|
[77]
|
FEI G E, LIN G, WAN-ZHEN L I. Study on Effects of Hirsutella sinensis Fermented Mycelia on Immunologic Function in Mice[J]. Chinese Journal of Clinical Pharmacology and Therapeutics, 2008, 13(8):852.
Google Scholar
|
[78]
|
WANG C S, HUG, ST LEGER R J. Differential Gene Expression by Metarhizium anisopliae Growing in Root Exudate and Host (Manduca sexta) Cuticle or Hemolymph Reveals Mechanisms of Physiological Adaptation[J]. Fungal Genetics and Biology, 2005, 42(8):704-718.
Google Scholar
|
[79]
|
王磊. 爪哇虫草YFS01菌株的筛选及其与丽蚜小蜂对烟粉虱的联合控害技术研究[D]. 广州:华南农业大学, 2019.
Google Scholar
|
[80]
|
张君. 球孢白僵菌与RNA干扰技术联合喷雾控蚜研究[D]. 重庆:西南大学, 2020.
Google Scholar
|
[81]
|
况再银, 童文, 孙佩, 等. 球孢白僵菌的侵染特性及应用研究进展[J]. 微生物学通报, 2023, 50(7):3187-3197.
Google Scholar
|
[82]
|
LI J, YING S H, SHAN L T, et al. A New Non-Hydrophobic Cell Wall Protein (CWP10) of Metarhizium anisopliae Enhances Conidial Hydrophobicity when Expressed in Beauveria bassiana[J]. Applied Microbiology and Biotechnology, 2010, 85(4):975-984.
Google Scholar
|
[83]
|
GOTTAR M, GOBERT V, MATSKEVICH A A, et al. Dual Detection of Fungal Infections in Drosophila via Recognition of Glucans and Sensing of Virulence Factors[J]. Cell, 2006, 127(7):1425-1437.
Google Scholar
|
[84]
|
张娜. 金龟子绿僵菌对绵羊痒螨(兔亚种)的致病力及致病机制初探[D]. 雅安:四川农业大学, 2018.
Google Scholar
|
[85]
|
JIANG A, YUAN Y, YANG R, et al. Beauveria bassiana is a Potential Effective Biological Agent Against Psoroptes ovis var. Cuniculi Mites[J]. Biological Control, 2019:43-48.
Google Scholar
|
[86]
|
余素红, 曾明森, 吴光远. 球孢白僵菌的研究应用与展望[J]. 茶叶科学技术, 2009, 50(3):8-11.
Google Scholar
|
[87]
|
SHI W B, FENG M G. Lethal Effect of Beauveria bassiana, Metarhizium anisopliae, and Paecilomyces fumosoroseus on the Eggs of Tetranychus cinnabarinus (Acari:Tetranychidae) with a Description of a Mite Egg Bioassay System[J]. Biological Control, 2004, 30(2):165-173.
Google Scholar
|
[88]
|
ULLAH M S, LIM U T. Synergism of Beauveria bassiana and Phytoseiulus persimilis in Control of Tetranychus urticae on Bean Plants[J]. Systematic and Applied Acarology, 2017, 22(11):1924.
Google Scholar
|
[89]
|
彭军. 球孢白僵菌对胡瓜钝绥螨和朱砂叶螨的影响[D]. 重庆:西南大学, 2013.
Google Scholar
|
[90]
|
徐华苹, 贺小勇, 蒋洪丽, 等. 球孢白僵菌对二斑叶螨的致病性和对天敌智利小植绥螨的间接影响[J]. 中国生物防治学报, 2021, 37(3):436-442.
Google Scholar
|
[91]
|
李一玉. 球孢白僵菌Bb025对朱砂叶螨实验种群的控制作用研究[D]. 重庆:西南大学, 2014.
Google Scholar
|
[92]
|
SÁENZ-DE-CABEZÓN IRIGARAY F J, MARCO-MANCEBÓN V, PÉREZ-MORENO I. The Entomopathogenic Fungus Beauveria bassiana and Its Compatibility with Triflumuron:Effects on the Twospotted Spider Mite Tetranychus urticae[J]. Biological Control, 2003, 26(2):168-173.
Google Scholar
|
[93]
|
施卫兵, 冯明光. 两种丝孢类昆虫病原真菌对朱砂叶螨卵的侵染及杀灭活性[J]. 科学通报, 2003, 48(24):2534-2538.
Google Scholar
|
[94]
|
PENA J E, OSBORNE L S, DUNCAN R E. Potential of Fungi as Biocontrol Agents of Polyphagotarsonemus latus (Acari:Tarsonemidae)[J]. Entomophaga, 1996, 41(1):27-36.
Google Scholar
|
[95]
|
施卫兵. 生防真菌对叶螨类植物害螨的微生物防治研究[D]. 杭州:浙江大学, 2007.
Google Scholar
|
[96]
|
BUGEME D M, KNAPP M, EKESI S, et al. Efficacy of Metarhizium anisopliae in Controlling the Two-Spotted Spider Mite Tetranychus urticae on Common Bean in Screenhouse and Field Experiments[J]. Insect Science, 2015, 22(1):121-128.
Google Scholar
|
[97]
|
BATTA Y A. Production and Testing of Novel Formulations of the Entomopathogenic Fungus Metarhizium anisopliae (Metschinkoff) Sorokin (Deuteromycotina:Hyphomycetes)[J]. Crop Protection, 2003, 22(2):415-422.
Google Scholar
|
[98]
|
徐美娟, 宋勇义. 一株绿僵菌对苹果二斑叶螨的室内致病力测定[J]. 现代农业科技, 2012(4):186, 188.
Google Scholar
|
[99]
|
DOGAN Y O, HAZIR S, YILDIZ A, et al. Evaluation of Entomopathogenic Fungi for the Control of Tetranychus urticae (Acari:Tetranychidae) and the Effect of Metarhizium brunneum on the Predatory Mites (Acari:Phytoseiidae)[J]. Biological Control, 2017, 111:6-12.
Google Scholar
|
[100]
|
王兴民, 邵振芳, SHAUKAT ALI, 等. 2%阿维·绿僵菌素悬浮剂对朱砂叶螨的生物活性[J]. 热带农业工程, 2015, 39(2):17-20.
Google Scholar
|
[101]
|
刘春来. 昆虫病原真菌在农林害虫生物防治中的应用[J]. 黑龙江农业科学, 2017(3):68-73.
Google Scholar
|
[102]
|
李丰伯, 汪传友, 姚剑飞, 等. 环链拟青霉防治黄山风景区细纹新须螨[J]. 东北林业大学学报, 2011, 39(7):77-78.
Google Scholar
|
[103]
|
RAMARETHINAM S, MARIMUTHU S, MURUGESAN N V, et al. Evaluation of Paecilomyces fumosoroseus, an Entomopathogenic Fungus for Controlling the Red Spider Mite, Oligonychus Coffeae (Nietner) (Acarina:Tetranychidae), Infesting Tea in India[J]. Pestology, 2000, 24(9):1-5.
Google Scholar
|
[104]
|
姜渝, 冯明光. 常用化学杀螨剂对两种生防真菌孢子的相容性测定[J]. 应用生态学报, 2006, 17(7):1264-1268.
Google Scholar
|
[105]
|
张仙红, 贺运春, 王建明, 等. 蜡蚧轮枝菌致病性初步研究[J]. 昆虫天敌, 2000, 22(4):155-159.
Google Scholar
|
[106]
|
AMJAD M, BASHIR M, AFZAL M, et al. Synergistic Effect of Some Entomopathogenic Fungi and Synthetic Pesticides, Against Two Spotted Spider Mite, Tetranychus urticae Koch (Acari:Tetranychidae)[J]. Pakistan Journal of Zoology, 2012, 44(4):977-984.
Google Scholar
|
[107]
|
SHAW K E, DAVIDSON G, CLARK S J, et al. Laboratory Bioassays to Assess the Pathogenicity of Mitosporic Fungi to Varroa destructor (Acari:Mesostigmata), an Ectoparasitic Mite of the Honeybee, Apis mellifera[J]. Biological Control, 2002, 24(3):266-276.
Google Scholar
|
[108]
|
余德亿, 黄鹏, 姚锦爱, 等. 蜡蚧轮枝菌V3450菌株对榕管蓟马及斯氏钝绥螨的毒力比较[J]. 西北农林科技大学学报(自然科学版), 2015, 43(8):133-139.
Google Scholar
|
[109]
|
任月萍, 刘生祥. 汤普森多毛菌应用研究进展[J]. 农业科学研究, 2007, 28(1):45-48.
Google Scholar
|
[110]
|
赵晓晖, 许艳丽. 生防真菌被毛孢的研究进展[J]. 农业系统科学与综合研究, 2011, 27(3):376-381.
Google Scholar
|
[111]
|
MCCOY C W, COUCH T L. Microbial Control of the Citrus Rust Mite with the Mycoacaricide, Mycar[J]. The Florida Entomologist, 1982, 65(1):116-126.
Google Scholar
|
[112]
|
OMOTO C, MCCOY C W. Toxicity of Purified Fungal Toxin Hirsutellin a to the Citrus Rust Mite Phyllocoptruta oleivora (Ash.)[J]. Journal of Invertebrate Pathology, 1998, 72(3):319-322.
Google Scholar
|
[113]
|
FERNANDO L C P, MANOJ P, HAPUARACHCHI D C L, et al. Evaluation of Four Isolates of Hirsutella thompsonii Against Coconut Mite (Aceria guerreronis) in Sri Lanka[J]. Crop Protection, 2007, 26(7):1062-1066.
Google Scholar
|
[114]
|
KUMAR P S, SINGH L. Enabling Mycelial Application of Hirsutella thompsonii for Managing the Coconut Mite[J]. Experimental and Applied Acarology, 2008, 46(1):169-182.
Google Scholar
|
[115]
|
PENG C Y S, ZHOU X S, KAYA H K. Virulence and Site of Infection of the Fungus, Hirsutella thompsonii, to the Honey Bee Ectoparasitic Mite, Varroa destructor[J]. Journal of Invertebrate Pathology, 2002, 81(3):185-195.
Google Scholar
|
[116]
|
ROSAS-ACEVEDO J L, BOUCIAS D G, LEZAMA R, et al. Exudate from Sporulating Cultures of Hirsutella thompsonii Inhibit Oviposition by the Two-Spotted Spider Mite Tetranychus urticae[J]. Experimental & Applied Acarology, 2003, 29(3):213-225.
Google Scholar
|
[117]
|
任月萍, 刘生祥, 李燕, 等. 枸杞瘿螨汤普森多毛菌的分离培养与鉴定[J]. 农业科学研究, 2006, 27(3):31-33.
Google Scholar
|
[118]
|
吴圣勇, 徐丽荣, 李宁, 等. 天敌昆虫在诱集植物上的多样性及对温室蚜虫的防治作用[J]. 中国农业科学, 2016, 49(15):2955-2964.
Google Scholar
|
[119]
|
HARMONJ P, ANDOW D A. "Book-Review" Theoretical Approaches to Biological Control[J]. The Quarterly Review of Biology, 2001, 76(1):110.
Google Scholar
|
[120]
|
孙莉, 张艳璇, 赵玲玲, 等. 利用胡瓜新小绥螨携带玫烟色拟青霉菌兼防茄子蚜虫和叶螨[J]. Agricultural Science & Technology, 2015, 16(12):2720-2724, 2729.
Google Scholar
|
[121]
|
WU S Y, GAO Y L, XU X N, et al. Compatibility of Beauveria bassiana with Neoseiulus barkeri for Control of Frankliniella occidentalis[J]. Journal of Integrative Agriculture, 2015, 14(1):98-105.
Google Scholar
|
[122]
|
张晓娜, 金道超, 邹晓, 等. 杀二斑叶螨高毒力环链棒束孢菌株的筛选及其对尼氏真绥螨的影响[J]. 环境昆虫学报, 2014, 36(3):372-380.
Google Scholar
|
[123]
|
ULLAH M S, LIM U T. Laboratory Evaluation of the Effect of Beauveria bassiana on the Predatory Mite Phytoseiulus persimilis (Acari:Phytoseiidae)[J]. Journal of Invertebrate Pathology, 2017, 148:102-109.
Google Scholar
|
[124]
|
NUMA VERGEL S J, BUSTOS R A, RODRÍGUEZ C D, et al. Laboratory and Greenhouse Evaluation of the Entomopathogenic Fungi and Garlic-Pepper Extract on the Predatory Mites, Phytoseiulus persimilis and Neoseiulus californicus and Their Effect on the Spider Mite Tetranychus urticae[J]. Biological Control, 2011, 57(2):143-149.
Google Scholar
|