[1]Bacharis C,Gouziotis A,Kalogeropoulou P,et al. Characterization of Rhizoctonia spp. isolates associated with damping-off disease in cotton and tobacco seedlings in greece[J]. Plant Disease,2010,94(11):1314-1322.
[2]Costa A S. Mancha aureolada erequeima do fumo causades por Corticium solani[J]. Biologicol,1948,14:113-114.
[3]吴元华,王左斌,刘志恒,等. 我国烟草新病害——靶斑病[J]. 中国烟草学报,2006(6):22,51.
[4]吴元华,赵艳琴,赵秀香,等. 烟草靶斑病原鉴定及生物学特性研究[J]. 沈阳农业大学学报,2012,43(5):521-527.
[5]李再明,杨学红,王庙昌,等. 9种防治烟草靶斑病的药剂筛选试验[J]. 云南农业科技,2022(2):13-15.
[6]孙美丽,汪汉成,郭沫言,等. 4种杀菌剂对烟草靶斑病菌的抑菌活性[J]. 贵州农业科学,2022,50(9):62-68.
[7]王左斌,吴元华,赵秀香,等. “嘧肽菌净”对烟草靶斑病的抑菌作用及田间药效试验[J]. 烟草科技,2007(9):61-64.
[8]周建全,张忠光,董雪,等. 不同药剂对烟草靶斑病的抑菌作用及田间药效研究[J]. 安徽农业科学,2015,43(25):96-97,99.
[9]马欣,寇宝石,李继博,等. 新农药8%井冈霉素可溶液剂对烟草靶斑病的防治效果[J]. 安徽农业科学,2022,50(11):133-134.
[10]吴家全,李军民. 多抗霉素研究现状与市场前景[J]. 农药科学与管理,2010,31(11):21-23.
[11]Hori M,Eguchi J,Kakiki K,et al. Studies on the mode of action of polyoxins. Ⅵ. Effect of polyoxin B on chitin synthesis in polyoxin-sensitive and resistant strains of Alternaria kikuchiana[J]. The Journal of antibiotics,1974,27(4):260-266.
[12]Nobuya O,Kazuo K,Tomomasa M. Studies on the mode of action of polyoxin D[J]. Agricultural and Biological Chemistry,2014,34(8):1224-1234.
[13]吴祥,吉沐祥,郭玉人,等. 多抗霉素与丁子香酚混配对草莓灰霉病的防治效果[J]. 江苏农业科学,2017,45(22):94-97.
[14]康萍芝,杜玉宁,白小军,等. 不同化学杀菌剂与多抗霉素混配对压砂西瓜炭疽病的联合生物活性及田间防效[J]. 农药,2021,60(1):70-73.
[15]韩磊,杨超然,樊荣,等. 几种杀菌剂对白菜霜霉病的防治效果[J]. 农药,2019,58(12):915-917.
[16]张海宽,周斌. 春雷霉素、多抗霉素防治番茄灰霉病田间药效试验[J]. 农药科学与管理,2010,31(5):48-49.
[17]陶树春,贾秀芬,李锦龙,等. 多抗霉素等6种生物农药对温室黄瓜白粉病的防治效果[J]. 农业科技与信息,2007(10):19.
[18]赵纲,刘保安. 多抗霉素防治烟草赤星病的效果[J]. 烟草科技,1983(4):30-33.
[19]连海,申昌优,钟善良,等. 赣州烟区烟草赤星病防治药剂筛选[J]. 安徽农业科学,2020,48(22):148-149,165.
[20]Wang R,Zhang H C,Sun L G,et al. Microbial community composition is related to soil biological and chemical properties and bacterial wilt outbreak[J]. Scientific Reports,2017,7:343.
[21]Yang H W,Li J,Xiao Y H,et al. An integrated insight into the relationship between soil microbial community and tobacco bacterial wilt disease[J]. Frontiers in Microbiology,2017,8:2179.
[22]Dai Y F,Wu X M,Wang H C,et al. Spatio-gemporal variation in the phyllospheric microbial biodiversity of Alternaria alternata-infected tobacco foliage[J]. Front Microbiol,2022,13:920109.
[23]刘亭亭,曾陨涛,汪汉成,等. 赤星病发生期不同成熟度烟叶叶际微生物代谢与群落结构[J]. 中国烟草科学,2021,42(6):22-29.
[24]Sun M L,Shi C H,Huang Y,et al. Effect of disease severity on the structure and diversity of the phyllosphere microbial community in tobacco[J]. Frontiers in Microbiology,2023,4(13):1081576.
[25]刁春玲,刘芳,宋宝安. 农用杀菌剂作用机理的研究进展[J]. 农药,2006(6):374-377.
[26]Huang Y,Wang H C,Cai L T,et al. Phyllospheric microbial composition and diversity of the tobacco leaves infected by Didymella segeticola[J]. Frontiers in Microbiology,2021,12:699699.
[27]向立刚,汪汉成,郑苹,等. 一种未知真菌性叶斑病发病烟叶真菌群落分析[J]. 中国烟草科学,2021,42(1):40-46.
[28]刘天波,滕凯,周向平,等. 拮抗菌群对烟草野火病的防治效果及叶际微生物群落多样性的影响[J]. 微生物学通报,2021,48(8):2643-2652.
[29]刘畅,汪汉成,谢红炼,等. 感赤星病烟叶的真菌群落结构分析[J]. 贵州农业科学,2019,47(7):54-59.
[30]刘畅,汪汉成,谢红炼,等. 感染赤星病烟草叶际细菌的多样性分析[J]. 烟草科技,2020,53(2):8-14.
[31]谭舒心. 蜘蛛兰褐斑病及其病原菌鉴定与病害的药剂控制试验[D]. 重庆:西南大学,2009.
[32]刘斯泓,纪明山. 防治烟草靶斑病的复配药剂配方筛选及田间药效试验[J]. 江苏农业科学,2014,42(6):140-143.
[33]Haas B J,Gevers D,Earl A M,et al. Chimeric 16S rRNA sequence formation and detection in Sanger and 454-pyrosequenced PCR amplicons[J]. Genome Res,2011,21(3):494-504.
[34]刁春玲,刘芳,宋宝安. 农用杀菌剂作用机理的研究进展[J]. 农药,2006(6):374-377.
[35]孙美丽,史彩华,肖本青,等. 烟草靶斑病叶际微生物群落结构与多样性分析[J]. 烟草科技,2023,56(4):1-9.
[36]韩永琴. 多黏类菌剂和化学药剂对辣椒疫病的防效及对根际微生物的影响[D]. 长沙:湖南农业大学,2019.
[37]刘亭亭,汪汉成,孙美丽,等. 波尔多液对烟草叶际微生物群落结构与代谢功能的影响[J]. 农药学学报,2022,24(6):1446-1455.
[38]Sun M L,Wang H C,Shi C H,et al. Effect of azoxystrobin on tobacco leaf microbial composition and diversity[J]. Frontiers in Plant Science,2023,13:1101039.
[39]Zeng Y T,Xiong T,Bai Z Q,et al. Establishment of the sensitivity baseline of Diaporthe citri population to azoxystrobin (in Chinese)[J]. Plant Protection,2022,48(4):138-142.
[1]刘斯泓,纪明山.防治烟草靶斑病的复配药剂配方筛选及田间药效试验[J].江苏农业科学,2014,42(06):140.
Liu Sihong,et al.Screening and field efficacy trials of complex pharmaceutical formulations controlling tobacco target leaf spot pathogen[J].Jiangsu Agricultural Sciences,2014,42(3):140.
[2]龙亚飞,王啸,邱树毅,等.农用多抗霉素对不同地域莱氏野村菌的抑制效果[J].江苏农业科学,2015,43(01):144.
Long Yafei,et al.Inhibitory effect of agricultural polyoxin on Nomuraea rileyi from different regions[J].Jiangsu Agricultural Sciences,2015,43(3):144.
[3]吴祥,吉沐祥,郭玉人,等.多抗霉素与丁子香酚混配对草莓灰霉病的防治效果[J].江苏农业科学,2017,45(22):94.
Wu Xiang,et al.Control effect of mixture of polyoxin and eugenol on Botrytis cinerea in strawberry[J].Jiangsu Agricultural Sciences,2017,45(3):94.
[4]张艺,张兴红,王丰,等.代森锰锌对烟草靶斑病的防效及其叶际微生态的影响[J].江苏农业科学,2023,51(17):122.
Zhang Yi,et al.Field efficacy of mancozeb against tobacco target spot and its effect on tobacco leaf microecology[JY。]Zhang Yi,et al(122)[J].Jiangsu Agricultural Sciences,2023,51(3):122.
[5]汤佳萸,桑维钧,张得平,等.广西烟草靶斑病病原菌鉴定与防效试验[J].江苏农业科学,2024,52(24):127.
Tang Jiayu,et al.Identification and control effect test of tobacco target spot disease pathogen in Guangxi area[J].Jiangsu Agricultural Sciences,2024,52(3):127.