
Chinese Journal of Applied Ecology ›› 2026, Vol. 37 ›› Issue (7): 2373-2382.doi: 10.13287/j.1001-9332.202607.010
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DONG Qianqian1, CHANG Yinghang1, XU Tengjiao2, LIANG Juan1, ZHANG Jie1, SUN Runhong1, XIA Mingcong1, WU Chao1, YANG Lirong1*
Received:2025-11-25
Accepted:2026-05-28
Online:2026-07-18
Published:2027-01-18
DONG Qianqian, CHANG Yinghang, XU Tengjiao, LIANG Juan, ZHANG Jie, SUN Runhong, XIA Mingcong, WU Chao, YANG Lirong. Screening and characterization of Paenibacillus polymyxa YB-393, a biocontrol agent against wheat crown rot[J]. Chinese Journal of Applied Ecology, 2026, 37(7): 2373-2382.
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URL: https://www.cjae.net/EN/10.13287/j.1001-9332.202607.010
| [1] Xu F, Yang GQ, Wang JM, et al. Spatial distribution of root and crown rot fungi associated with winter wheat in the North China Plain and its relationship with climate variables. Frontiers in Microbiology, 2018, 9: 1054 [2] Kazan K, Gardiner DM. Fusarium crown rot caused by Fusarium pseudograminearum in cereal crops: Recent progress and future prospects. Molecular Plant Pathology, 2018, 19: 1547-1562 [3] Hagerty CH, Irvine T, Rivedal HM, et al. Diagnostic guide: Fusarium crown rot of winter wheat. Plant Health Progress, 2021, 22: 176-181 [4] Xu F, Shi RJ, Liu LL, et al. Fusarium pseudograminearum biomass and toxin accumulation in wheat tissues with and without Fusarium crown rot symptoms. Frontiers in Plant Science, 2024, 15: 1356723 [5] 陈汝婷, 陆翰文, 庄宇彤, 等. 农药对土壤微生物种群的影响以及对抗药性菌株的初筛. 北京林业大学学报, 2023, 45(5): 133-142 [6] 李雪男. 生防菌对小麦茎基腐病的防治和不同种植制度下土壤微生物多样性分析. 硕士论文. 泰安: 山东农业大学, 2023 [7] 刘震, 闫青地, 陈捷, 等. 哈茨木霉与芽孢杆菌共培养及对小麦茎基腐病的防治效果. 周口师范学院学报, 2025, 42(2): 37-43 [8] 张臻. 两株生防菌对小麦赤霉病和茎基腐病防治效果的评价. 硕士论文. 武汉: 华中农业大学, 2018 [9] 许玲, 孟璇, 郭立, 等. 不同生物制剂防治小麦茎基腐病的田间防治效果试验. 东北农业科学, 2025, 50(1): 10-15 [10] 朱文亭, 张梦宁, 赵培怡, 等. 小麦茎基腐病拮抗菌FCR-Y1的分离鉴定及其防病促生效果. 中国生物防治学报, 2025, 41(2): 373-383 [11] 赵利民, 冯超红, 蒋向, 等. 小麦茎基腐病防治技术研究进展. 中国植保导刊, 2022, 42(11): 22-27 [12] Serrão CP, Ortega JCG, Rodrigues PC, et al. Bacillus species as tools for biocontrol of plant diseases: A meta-analysis of twenty-two years of research, 2000-2021. World Journal of Microbiology and Biotechnology, 2024, 40: 110 [13] Velmourougane K, Prasanna R, Saxena AK. Agricultu-rally important microbial biofilms: Present status and future prospects. Journal of Basic Microbiology, 2017, 57: 548-573 [14] Blake C, Christensen MN, Kovács ÁT. Molecular aspects of plant growth promotion and protection by Bacillus subtilis. Molecular Plant-Microbe Interactions, 2021, 34: 15-25 [15] Heredia-Ponce Z, Gutiérrez-Barranquero JA, Purtschert-Montenegro G, et al. Role of extracellular matrix components in the formation of biofilms and their contribution to the biocontrol activity of Pseudomonas chlororaphis PCL1606. Environmental Microbiology, 2021, 23: 2086-2101 [16] Haggag WM, Timmusk S. Colonization of peanut roots by biofilm-forming Paenibacillus polymyxa initiates biocontrol against crown rot disease. Journal of Applied Microbiology, 2008, 104: 961-969 [17] 包文杰, 申凌婕, 夏尚文, 等. pH对木霉菌和镰刀菌生长及其竞争的影响. 应用生态学报, 2024, 35(9): 2535-2542 [18] Dong QQ, Liu QX, Goodwin PH, et al. Isolation and genome-based characterization of biocontrol potential of Bacillus siamensis YB-1631 against wheat crown rot caused by Fusarium pseudograminearum. Journal of Fungi, 2023, 9: 547 [19] 庞娅楠, 邱慧珍, 成志远, 等. 马铃薯根系分泌物及氨基酸对萎缩芽孢杆菌QHZ3趋化成膜的影响. 干旱地区农业研究, 2023, 41(5): 236-245 [20] 徐文, 谢夏, 李盼, 等. 贝莱斯芽胞杆菌YB-1465生防特性分析及对小麦茎基腐病的生防作用. 中国生物防治学报, 2025, 41(4): 877-886 [21] Kumar S, Stecher G, Li M, et al. MEGA X: Molecular evolutionary genetics analysis across computing platforms. Molecular Biology and Evolution, 2018, 35: 1547-1549 [22] Richter M, Rosselló-Móra R, Oliver Glöckner F, et al. JSpeciesWS: A web server for prokaryotic species circumscription based on pairwise genome comparison. Bioinformatics, 2016, 32: 929-931 [23] Chen CJ, Chen H, Zhang Y, et al. TBtools: An integrative toolkit developed for interactive analyses of big biological data. Molecular Plant, 2020, 13: 1194-1202 [24] Glickmann E, Dessaux Y. A critical examination of the specificity of the salkowski reagent for indolic compounds produced by phytopathogenic bacteria. Applied and Environmental Microbiology, 1995, 61: 793-796 [25] Smiley RW, Gourlie JA, Easley SA, et al. Pathogenicity of fungi associated with the wheat crown rot complex in Oregon and Washington. Plant Disease, 2005, 89: 949-957 [26] Li JY, Gao TT, Wang Q. Comparative and functional analyses of two sequenced Paenibacillus polymyxa genomes provides insights into their potential genes related to plant growth-promoting features and biocontrol mechanisms. Frontiers in Genetics, 2020, 11: 564939 [27] 谢永丽, 高学文. 可可西里低温适生拮抗芽孢杆菌的筛选鉴定及脂肽化合物分析. 应用生态学报, 2013, 24(1): 149-155 [28] Yang AM, Zeng S, Yu L, et al. Characterization and antifungal activity against Pestalotiopsis of a fusaricidin-type compound produced by Paenibacillus polymyxa Y-1. Pesticide Biochemistry and Physiology, 2018, 147: 67-74 [29] 郭赛赛, 张敬泽. 多粘类芽孢杆菌及其脂肽化合物研究进展. 农药学学报, 2019, 21(5): 787-798 [30] Park JE, Kim HR, Park SY, et al. Identification of the biosynthesis gene cluster for the novel lantibiotic paenilan from Paenibacillus polymyxa E681 and characterization of its product. Journal of Applied Microbiology, 2017, 123: 1133-1147 [31] Lohans CT, Huang ZD, van Belkum MJ, et al. Structural characterization of the highly cyclized lantibiotic paenicidin A via a partial desulfurization/reduction stra-tegy. Journal of the American Chemical Society, 2012, 134: 19540-19543 [32] Zhou X, Huang HB, Chen YC, et al. Marthiapeptide A, an anti-infective and cytotoxic polythiazole cyclopeptide from a 60 L scale fermentation of the deep sea-derived Marinactinospora thermotolerans SCSIO 00652. Journal of Natural Products, 2012, 75: 2251-2255 [33] Daud NS, Mohd Din ARJ, Rosli MA, et al. Paenibacillus polymyxa bioactive compounds for agricultural and biotechnological applications. Biocatalysis and Agricultural Biotechnology, 2019, 18: 101092 [34] Deng LX, Zhang AL, Wang AZ, et al. Wheat domestication alters root metabolic functions to drive the assembly of endophytic bacteria. The Plant Journal, 2024, 120: 1263-1277 [35] Yegorenkova IV, Tregubova KV, Krasov AI, et al. Effect of exopolysaccharides of Paenibacillus polymyxa rhizobacteria on physiological and morphological variables of wheat seedlings. Journal of Microbiology, 2021, 59: 729-735 [36] 徐玲, 王伟, 魏鸿刚, 等. 多粘类芽孢杆菌HY96-2对番茄青枯病的防治作用. 中国生物防治, 2006, 22(3): 216-220 [37] Cai FF, Yang CD, Ma T, et al. An endophytic Paenibacillus polymyxa Hg18 and its biocontrol potential against Fusarium oxysporum f.sp. cucumerinum. Biological Control, 2024, 188: 105380 [38] 窦龙涛, 曲晓军, 胡基华, 等. 一株多粘类芽孢杆菌的鉴定及对水稻稻瘟病菌的抑菌作用. 中国农学通报, 2024, 40(23): 118-125 [39] 邓云, 田大刚, 苏妍, 等. 多粘类芽孢杆菌NPDY05-8对玉米茎基腐病的防治效果及对土壤微生物的影响. 福建农业学报, 2023, 38(12): 1445-1452 [40] Zhang F, Li XL, Zhu SJ, et al. Biocontrol potential of Paenibacillus polymyxa against Verticillium dahliae infecting cotton plants. Biological Control, 2018, 127: 70-77 [41] Wang YJ, Feng J, Gao JH, et al. The occurrence of wheat crown rot correlates with the microbial community and function in rhizosphere soil. Frontiers in Microbiology, 2025, 16: 1538093 [42] 林琪童, 杨丽荣, 夏明聪, 等. 小麦茎基腐病生防菌株YB-161的分离鉴定及防效测定. 植物保护学报, 2020, 47(4): 939-948 [43] Kim YT, Monkhung S, Lee YS, et al. Effects of Lysobacter antibioticus HS124, an effective biocontrol agent against Fusarium graminearum, on crown rot disease and growth promotion of wheat. Canadian Journal of Microbiology, 2019, 65: 904-912 |
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