ALIZADEH H R, SHARIFI-TEHRANI A, HEDJAROUDE G A. Evaluation of the Effects of Chemical Versus Biological Control on Botrytis cinerea Agent of Gray Mould Disease of Strawberry [J]. Communications in Agricultural and Applied Biological Sciences, 2007, 72(4): 795-800.
|
WILLIAMSON B, TUDZYNSKI B, TUDZYNSKI P, et al. Botrytis cinerea: The Cause of Grey Mould Disease [J]. Molecular Plant Pathology, 2007, 8(5): 561-580. doi: 10.1111/j.1364-3703.2007.00417.x
|
AVENOT H, SIMONEAU P, IACOMI-VASILESCU B, et al. Characterization of Mutations in the Two-Component Histidine Kinase Gene AbNIK1 from Alternaria brassicicola that Confer High Dicarboximide and Phenylpyrrole Resistance [J]. Current Genetics, 2005, 47(4): 234-243. doi: 10.1007/s00294-005-0568-2
|
DUAN Y B, GE C Y, ZHOU M G. Molecular and Biochemical Characterization of Sclerotinia sclerotiorum Laboratory Mutants Resistant to Dicarboximide and Phenylpyrrole Fungicides [J]. Journal of Pest Science, 2014, 87(1): 221-230. doi: 10.1007/s10340-013-0526-6
|
JIANG J H, DING L S, MICHAILIDES T J, et al. Molecular Characterization of Field Azoxystrobin-Resistant Isolates of Botrytis cinerea [J]. Pesticide Biochemistry and Physiology, 2009, 93(2): 72-76. doi: 10.1016/j.pestbp.2008.11.004
|
赵建江, 王文桥, 马志强, 等. 啶酰菌胺与吡唑醚菌酯混配对灰葡萄孢的增效作用[J]. 农药, 2016, 55(3): 211-213.
|
祝明亮, 严金平, 孙启玲, 等. 植物病原真菌对二甲酰亚胺类杀菌剂的抗性分子机制[J]. 生物技术, 2005, 15(5): 95-97.
|
MAIA J N, BEGER G, PEREIRA W V, et al. Gray Mold in Strawberries in the Paraná State of Brazil Is Caused by Botrytis cinerea and Its Isolates Exhibit Multiple-Fungicide Resistance [J]. Crop Protection, 2021, 140: 105415. doi: 10.1016/j.cropro.2020.105415
|
宋晰, 肖露, 林东, 等. 番茄灰霉病菌对腐霉利的抗药性检测及生物学性状研究[J]. 农药学学报, 2013, 15(4): 398-404.
|
杜颖. 辽宁省番茄灰霉病菌对腐霉利抗药性机制及快速检测技术研究[D]. 沈阳: 沈阳农业大学, 2018.
|
裴艳刚, 朱宇航, 岁立云, 等. 四川猕猴桃灰霉病菌对4种杀菌剂的抗药性检测[J]. 植物保护, 2021, 47(4): 180-185.
|
肖婷, 钱荣明, 张富荣, 等. 江苏省域草莓灰霉病菌种群多药剂抗性检测[J]. 中国农学通报, 2022, 38(14): 110-117.
|
CUI W, BEEVER R E, PARKES S L, et al. An Osmosensing Histidine Kinase Mediates Dicarboximide Fungicide Resistance in Botryotinia fuckeliana (Botrytis cinerea) [J]. Fungal Genetics and Biology, 2002, 36(3): 187-198.
|
LEROUX P, FRITZ R, DEBIEU D, et al. Mechanisms of Resistance to Fungicides in Field Strains of Botrytis cinerea [J]. Pest Management Science, 2002, 58(9): 876-888.
|
MA Z H, MICHAILIDES T J. Advances in Understanding Molecular Mechanisms of Fungicide Resistance and Molecular Detection of Resistant Genotypes in Phytopathogenic Fungi [J]. Crop Protection, 2005, 24(10): 853-863.
|
ORTH A B, RZHETSKAYA M, PELL E J, et al. A Serine (Threonine) Protein Kinase Confers Fungicide Resistance in the Phytopathogenic Fungus Ustilago maydis [J]. Applied and Environmental Microbiology, 1995, 61(6): 2341-2345.
|
陈夕军, 王艳, 童蕴慧, 等. 灰葡萄孢抗二甲酰亚胺类杀菌剂研究进展[J]. 植物保护, 2009, 35(3): 16-19.
|
严蕾艳. 灰霉病菌双组分组氨酸激酶信号途径上五个关键基因的功能研究[D]. 杭州: 浙江大学, 2011.
|
LIU W W, LEROUX P, FILLINGER S. The HOG1-Like MAP Kinase Sak1 of Botrytis cinerea Is Negatively Regulated by the Upstream Histidine Kinase Bos1 and Is Not Involved in Dicarboximide- and Phenylpyrrole-Resistance [J]. Fungal Genetics and Biology, 2008, 45(7): 1062-1074.
|
CUI W, BEEVER R E, PARKES S L, et al. An Osmosensing Histidine Kinase Mediates Dicarboximide Fungicide Resistance in Botryotinia fuckeliana (Botrytis cinerea) [J]. Fungal Genetics and Biology, 2002, 36(3): 187-198.
|
CUI W, BEEVER R E, PARKES S L, et al. Evolution of an Osmosensing Histidine Kinase in Field Strains of Botryotinia fuckeliana (Botrytis cinerea) in Response to Dicarboximide Fungicide Usage [J]. Phytopathology ©, 2004, 94(10): 1129-1135.
|
OSHIMA M, FUJIMURA M, BANNO S, et al. A Point Mutation in the Two-Component Histidine Kinase BcOS-1 Gene Confers Dicarboximide Resistance in Field Isolates of Botrytis cinerea [J]. Phytopathology, 2002, 92(1): 75-80.
|
BANNO S, FUKUMORI F, ICHIISHI A, et al. Genotyping of Benzimidazole-Resistant and Dicarboximide-Resistant Mutations in Botrytis cinerea Using Real-Time Polymerase Chain Reaction Assays [J]. Phytopathology, 2008, 98(4): 397-404.
|
MA Z H, YAN L Y, LUO Y, et al. Sequence Variation in the Two-Component Histidine Kinase Gene of Botrytis cinerea Associated with Resistance to Dicarboximide Fungicides [J]. Pesticide Biochemistry and Physiology, 2007, 88(3): 300-306.
|
MA Z H, MICHAILIDES T J. Characterization of Iprodione-Resistant Alternaria Isolates from Pistachio in California [J]. Pesticide Biochemistry and Physiology, 2004, 80(2): 75-84.
|
贡常委, 秦旖曼, 屈劲松, 等. 四川省草莓灰霉病菌对咯菌腈的抗性测定及其机制[J]. 中国农业科学, 2018, 51(22): 4277-4287.
|
张鑫, 马雪梅. 灰霉病菌抗药位点及其分子检测方法研究进展[J]. 生物技术进展, 2014, 4(4): 251-257.
|
李鹏飞. 重庆市草莓灰霉病菌抗药性监测及抗药性机理研究[D]. 重庆: 西南大学, 2023.
|
ANON. Recommended Methods for the Detection and Measurement of Resistance of Agricultural Pests to Pesticides [J]. Food and Agriculture Organization Plant Protection Bulletin, 1982: 30, 36-143.
|
ANON. FRAC Methods for Monitoring Fungicide Resistance [J]. Organization for Plant Protection of the European and Mediterranean Region Bulletin, West Sussex, 1991: 21, 291-354.
|
MA D C, ZHU J M, JIANG J G, et al. Evaluation of Bioactivity and Control Efficacy of Tetramycin Against Corynespora cassiicola [J]. Pesticide Biochemistry and Physiology, 2018, 152: 106-113.
|
RAMPERSAD S N. A Rapid Colorimetric Microtiter Bioassay to Evaluate Fungicide Sensitivity among Verticillium dahliae Isolates [J]. Plant Disease, 2011, 95(3): 248-255.
|
王真. 几种植物病原菌对杀菌剂的抗药性研究[D]. 武汉: 华中农业大学, 2009.
|
PERCIVAL G C, BOYLE S. Evaluation of Film Forming Polymers to Control Apple Scab (Venturia inaequalis (Cooke) G. Wint. ) under Laboratory and Field Conditions [J]. Crop Protection, 2009, 28(1): 30-35.
|
MA Z H, YOSHIMURA M A, MICHAILIDES T J. Identification and Characterization of Benzimidazole Resistance in Monilinia fructicola from Stone Fruit Orchards in California [J]. Applied and Environmental Microbiology, 2003, 69(12): 7145-7152.
|
罗梅, 阴伟晓, 罗朝喜. 桃褐腐病菌对多菌灵抗性的AS-PCR检测技术[J]. 植物保护, 2020, 46(6): 136-143, 154.
|
郭东锋, 钟林宇, 周挺, 等. 马铃薯晚疫病菌对甲霜灵抗性的快速检测方法[J]. 植物保护学报, 2023, 50(1): 214-223.
|
CONLON B H, SCHMIDT S, POULSEN M, et al. Orthogonal Protocols for DNA Extraction from Filamentous Fungi [J]. STAR Protocols, 2022, 3(1): 101126.
|
申利娜. 禾谷镰孢菌异核体多菌灵抗性的表达规律及川渝地区小麦赤霉病菌田间抗药性监测[D]. 重庆: 西南大学, 2023.
|
纪明山, 刘妍, 朱赫, 等. 辽宁省番茄灰霉病菌对常用杀菌剂的抗药性监测与交互抗药性[J]. 农药, 2017, 56(9): 676-678.
|
MUÑOZ C, GÓMEZ TALQUENCA S, VOLPE M L. Tetra Primer ARMS-PCR for Identification of SNP in Β-Tubulin of Botrytis cinerea, Responsible of Resistance to Benzimidazole [J]. Journal of Microbiological Methods, 2009, 78(2): 245-246.
|
YIN Y N, KIM Y K, XIAO C L. Molecular Characterization of Boscalid Resistance in Field Isolates of Botrytis cinerea from Apple [J]. Phytopathology, 2011, 101(8): 986-995.
|
赵培宝, 周庆新, 郭芳先, 等. 限制性内切酶介导的串珠镰刀菌插入突变和致病性突变体的分离[J]. 植物病理学报, 2007, 37(5): 545-548.
|
HASHIMOTO M, AOKI Y, SAITO S, et al. Characterisation of Heteroplasmic Status at Codon 143 of the Botrytis cinerea Cytochrome b Gene in a Semi-Quantitative AS-PCR Assay [J]. Pest Management Science, 2015, 71(3): 467-477.
|