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4 期                    杜春梅等: 微生物防治猕猴桃细菌性溃疡病的研究进展                                            6 6 9

            SHENG C Bꎬ AN D Rꎬ LU Y Wꎬ et al.ꎬ 2006. Study on control  博真ꎬ 2022. 基于病原菌富集的猕猴桃溃疡病生防细菌的
               effect of kiwifruit bacterial canker by bio ̄control strain B56 ̄3  高效发 掘 及 其 与 产 酶 溶 杆 菌 复 配 菌 剂 的 初 步 研 发
               [J]. Acta Agriculturae Boreali ̄occidentalis Sinicaꎬ 15(3):  [D]. 南京: 南京农业大学: 1-63.]
               75-78. [盛存波ꎬ 安德荣ꎬ 鲁燕汶ꎬ 等ꎬ 2006. 生防菌株            WANG B Zꎬ LI Lꎬ LIN Y Hꎬ et al.ꎬ 2022. Targeted isolation of
               B56 ̄3 防治猕猴桃溃疡病的初步研究 [J]. 西北农业学                    biocontrol agents from plants through phytopathogen co ̄
               报ꎬ 15(3): 75-78.]                                 culture and pathogen enrichment [ J ]. Phytopathology
            SHI Y Wꎬ HOU J Qꎬ XU L Kꎬ et al.ꎬ 2023. Screening and  Researchꎬ 4: 19.
               identification of marine bacteria antagonistic to the pathogen  WANG Fꎬ LI Dꎬ ZHANG X Wꎬ et al.ꎬ 2017. Control efficacy
               causing kiwifruit bacterial canker [ J ]. Light Industry  of Streptomyces sp. SY ̄L12 on Pseudomonas syringae pv.
               Science and Technologyꎬ 39(3): 33-35. [石悦炜ꎬ 侯景    actinidiaeꎬ causal agent of kiwifruit bacterial canker
               棋ꎬ 徐麓凯ꎬ 等ꎬ 2023. 拮抗猕猴桃溃疡病致病菌的海洋                   [J]. Northern Horticulture(7): 139-142. [王芳ꎬ 李丹ꎬ 张
               细菌的筛选与鉴定 [J]. 轻工科技ꎬ 39(3): 33-35.]                信旺ꎬ 等ꎬ 2017. 一株链霉菌对猕猴桃溃疡病的防效
            SONG Y Rꎬ VU N Tꎬ PARK Jꎬ et al.ꎬ 2021. Phage PPPL ̄1ꎬ a  [J]. 北方园艺 (7): 139-142.]
               new biological agent to control bacterial canker caused by  WANG Hꎬ MI Q Qꎬ MAO Y Rꎬ et al.ꎬ 2024. Streptothricin ̄F
               Pseudomonas syringae pv. actinidiae in kiwifruit [ J ].  inhibition of FtsZ function: a promising approach for
               Antibiotics (Basel)ꎬ 10(5): 554.                  controlling Pseudomonas syringae pv. actinidiae [J]. Journal
            TIAN R Zꎬ TIAN Y Jꎬ DANG Q Qꎬ et al.ꎬ 2025a. Vascular  of Agricultural and Food Chemistryꎬ 72(5): 2624-2633.
               network ̄mediated systemic spread of Pseudomonas syringae  WANG Hꎬ WANG N Nꎬ TAN Y Xꎬ et al.ꎬ 2023. Paenibacillus
               pv. actinidiae causes the bacterial canker of kiwifruit  polymyxa YLC1: a promising antagonistic strain for
               [J]. Horticultural Plant Journalꎬ 11(6): 2093-2108.  biocontrol of Pseudomonas syringae pv. actinidiaeꎬ causing
            TIAN R Zꎬ TIAN Y Jꎬ MI Q Qꎬ et al.ꎬ 2025b. Histocytological  kiwifruit bacterial canker [ J]. Pest Management Scienceꎬ
               analysis reveals the biocontrol activity of a rhizospheric  79(11): 4357-4366.
               bacterium Pseudomonas rhizophila Z98 against kiwifruit  WANG Q Pꎬ ZHANG Cꎬ LONG Y Hꎬ et al.ꎬ 2021. Bioactivity
               bacterial canker [J]. Pesticide Biochemistry and Physiologyꎬ  and control efficacy of the novel antibiotic tetramycin against
               208: 106251.                                      various kiwifruit diseases [J]. Antibioticsꎬ 10(3): 289.
            TIAN X Lꎬ YIN X Hꎬ LONG Y Hꎬ et al.ꎬ 2017. Screeningꎬ  WANG W Xꎬ SHEN Bꎬ JIA H Bꎬ et al.ꎬ 2020. Application of
               identification and optimization of fermentation conditions for  rhizospheric  biocontrol  consortia  and  the  potential
               antagonistic actinomycetes against Pseudomonas syringae  mechanisms of  their  enhancing  efficacy  on  disease ̄
               pv. actinidiae [J]. Food Scienceꎬ 38(16): 79-85. [田雪莲ꎬ  suppressive effect [J]. Biotechnology Bulletinꎬ 36(9): 31-
               尹显慧ꎬ 龙友华ꎬ 等ꎬ 2017. 猕猴桃溃疡病菌拮抗菌筛选、                  41. [王卫雄ꎬ 沈博ꎬ 贾洪柏ꎬ 等ꎬ 2020. 根际生防菌群的
               鉴定及发酵条件优化 [J]. 食品科学ꎬ 38(16): 79-85.]              应用及其防病增效的潜在机制 [J]. 生物技术通报ꎬ
            VANNESTE J Lꎬ 2012. Pseudomonas syringae pv. actinidiae  36(9): 31-41.]
               (Psa): a threat to the New Zealand and global kiwifruit  WICAKSONO W Aꎬ JONES E Eꎬ CASONATO Sꎬ et al.ꎬ
               industry [J]. New Zealand Journal of Crop and Horticultural  2018. Biological control of Pseudomonas syringae pv.
               Scienceꎬ 40(4): 265-267.                          actinidiae ( Psa)ꎬ the causal agent of bacterial canker of
            VANNESTE J Lꎬ 2017. The scientificꎬ economicꎬ and social  kiwifruitꎬ using endophytic bacteria recovered from a
               impacts of the New Zealand outbreak of bacterial canker of  medicinal plant [J]. Biological Controlꎬ 116: 103-112.
               kiwifruit (Pseudomonas syringae pv. actinidiae) [J]. Annual  WU Q Hꎬ 2023. Development of targeted biocontrol bacterial
               Review of Phytopathologyꎬ 55: 377-399.            agents against kiwifruit bacterial canker and study on its
            WANG B Cꎬ GUO Y Sꎬ CHEN X Tꎬ et al.ꎬ 2023. Assessment  antibacterial mechanism [D]. Nanjing: Nanjing Agricultural
               of the biocontrol potential of Bacillus velezensis WL ̄23  University: 1-92. [吴倩桦ꎬ 2023. 猕猴桃溃疡病靶向性生
               against kiwifruit canker caused by Pseudomonas syringae  防菌剂的研发及其杀菌机制研究 [D]. 南京: 南京农业
               pv. actinidiae [ J ]. International Journal of Molecular  大学: 1-92.]
               Sciencesꎬ 24(14): 11541.                        YAN J Yꎬ CUI Y Lꎬ DING Jꎬ et al.ꎬ 2013. Isolation and
            WANG B Zꎬ 2022. Pathogen ̄enrichment dependent screening of  identification of the causal pathogens for kiwifruit bacterial
               host ̄derived biocontrol bacteria for controlling kiwifruit  canker and the isolation of the antagonistic endophytic fungi
               bacterial canker disease and its application with Lysobacter  from kiwifruit in Sichuanꎬ China [J]. Journal of Agricultural
               enzymogenes in developing a complex biocontrol community  Scienceꎬ 5(7): 262-268.
               [D]. Nanjing: Nanjing Agricultural University: 1-63. [王  YAN Zꎬ FU Mꎬ MIR S Hꎬ et al.ꎬ 2023. Diversity and
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