| 蔡珍. 受体组氨酸激酶RpfC感应脂肪酸分子DSF信号的生物化学机制[D]. 北京: 中国科学院大学, 2025. |
| AN S Q, POTNIS N, DOW M, et al. Mechanistic Insights into Host Adaptation, Virulence and Epidemiology of the Phytopathogen Xanthomonas[J]. FEMS Microbiology Reviews, 2020, 44(1): 1-32. doi: 10.1093/femsre/fuz024 |
| 李明远. 十字花科蔬菜黑腐病的发生与防治[J]. 当代蔬菜, 2004, (11): 36-37. |
| 赖传雅, 袁高庆. 农业植物病理学[M]. 北京: 科学出版社, 2003. |
| 胡姗姗. 十字花科黑腐病菌tRNA衍生片段的系统鉴定及假tRNA基因的功能研究[D]. 南宁: 广西大学, 2024. |
| LENG M, LU Z J, QIN Z S, et al. FLP, a Fis-Like Protein, Contributes to the Regulation of Type Ⅲ Secretion and Virulence Processes in the phytopathogen Xanthomonas campestris pv. campestris[J]. Molecular Plant Pathology, 2019, 20(8): 1119-1133. doi: 10.1111/mpp.12818 |
| STEFFENS T, VORHÖLTER F J, GIAMPÀ M, et al. The Influence of a Modified Lipopolysaccharide O-Antigen on the Biosynthesis of Xanthan in Xanthomonas campestris pv. campestris B100[J]. BMC Microbiology, 2016, 16(1): 93. doi: 10.1186/s12866-016-0710-y |
| HUANG J, DONG Y R, LI N N, et al. The Type Ⅲ Effector XopLXcc in Xanthomonas campestris pv. campestris Targets the Proton Pump Interactor 1 and Suppresses Innate Immunity in Arabidopsis[J]. International Journal of Molecular Sciences, 2024, 25(17): 9175. doi: 10.3390/ijms25179175 |
| WANG J T, CHEN H H, WANG N, et al. Chitosan Oligosaccharides: A Natural Rich, High-Efficiency, and Safe Frontrunner for the Futural Fruits/Vegetables Preservation[J]. Food and Bioprocess Technology, 2025, 18(2): 1104-1124. doi: 10.1007/s11947-024-03506-w |
| 贾盼盼, 刘晓丹, 吝晨晨, 等. 壳寡糖对杏果实采后主要病原菌抑菌作用的研究[J]. 新疆农业科学, 2012, 49(2): 290-295. |
| LU H Y, WANG M, ZHOU S F, et al. Chitosan Oligosaccharides Mitigate Flooding Stress Damage in Rice by Affecting Antioxidants, Osmoregulation, and Hormones[J]. Antioxidants, 2024, 13(5): 521. doi: 10.3390/antiox13050521 |
| 高雨萌, 费昭雪, 史健飞, 等. 壳寡糖对花椒干腐病菌的抑菌活性研究[J]. 中国森林病虫, 2021, 40(3): 1-8. |
| SHANG W J, WU Y F, ZHAO X M, et al. Effect of Chito-Oligosaccharide Induction on Long-Distance Movement of TMV in Tobacco[J]. Acta Botanica Boreali-Occidentalia Sinica, 2006, 26(9): 1759-1763. |
| 邢芸, 占昭宏, 吴可建, 等. 脯氨酸亚氨基肽酶调控野油菜黄单胞菌的致病力[J]. 热带生物学报, 2025, 16(3): 406-414. |
| YAN X, ZHANG Q L, ZOU J, et al. Selection of Optimized Reference Genes for QRT-PCR Normalization in Xanthomonas campestris pv. campestris Cultured in Different Media[J]. Current Microbiology, 2019, 76(5): 613-619. doi: 10.1007/s00284-019-01667-y |
| 李峰, 邓江丽, 陈雯雯, 等. 儿茶素对野油菜黄单胞菌的抑菌作用[J]. 云南农业大学学报(自然科学版), 2021(2): 215-222. |
| 李晓霞. Hfq调控十字花科黑腐病菌运动机理研究[D]. 南宁: 广西大学, 2022. |
| YE T, ZHOU T, LI Q T, et al. Cupriavidus Sp. HN-2, a Novel Quorum Quenching Bacterial Isolate, Is a Potent Biocontrol Agent Against Xanthomonas campestris pv. campestris[J]. Microorganisms, 2020, 8(1): 45. |
| RYAN R P, VORHÖLTER F J, POTNIS N, et al. Pathogenomics of Xanthomonas: Understanding Bacterium-Plant Interactions[J]. Nature Reviews Microbiology, 2011, 9(5): 344-355. doi: 10.1038/nrmicro2558 |
| RYAN R P, AN S Q, ALLAN J H, et al. The DSF Family of Cell-Cell Signals: An Expanding Class of Bacterial Virulence Regulators[J]. PLoS Pathogens, 2015, 11(7): e1004986. doi: 10.1371/journal.ppat.1004986 |
| VICENTE J G, HOLUB E B. Xanthomonas campestris pv. campestris (Cause of Black Rot of Crucifers) in the Genomic Era Is still a Worldwide Threat to Brassica Crops[J]. Molecular Plant Pathology, 2013, 14(1): 2-18. doi: 10.1111/j.1364-3703.2012.00833.x |
| ZHOU L, ZHANG L H, CÁMARA M, et al. The DSF Family of Quorum Sensing Signals: Diversity, Biosynthesis, and Turnover[J]. Trends in Microbiology, 2017, 25(4): 293-303. doi: 10.1016/j.tim.2016.11.013 |
| TAMPAKAKI A P, FADOULOGLOU V E, GAZI A D, et al. Conserved Features of Type Ⅲ Secretion[J]. Cellular Microbiology, 2004, 6(9): 805-816. doi: 10.1111/j.1462-5822.2004.00432.x |
| RAMNARINE S D B, JAYARAMAN J, RAMSUBHAG A. Comparative Genomics of the Black Rot Pathogen Xanthomonas campestris pv. campestris and Non-Pathogenic Co-inhabitant Xanthomonas melonis from Trinidad Reveal Unique Pathogenicity Determinants and Secretion System Profiles[J]. PeerJ, 2022, 9: e12632. doi: 10.7717/peerj.12632 |
| ADLUNG N, BONAS U. Dissecting Virulence Function from Recognition: Cell Death Suppression in Nicotiana Benthamiana by XopQ/HopQ1-Family Effectors Relies on EDS1-Dependent Immunity[J]. The Plant Journal, 2017, 91(3): 430-442. doi: 10.1111/tpj.13578 |
| DAI H J, HU L L, WANG J, et al. Constructing a Novel Disease Resistance Mechanism Model for Cruciferous Crops: An Example from Black Rot[J]. Molecular Plant Pathology, 2025, 26(2): e70060. doi: 10.1111/mpp.70060 |
| KIM J G, STORK W, MUDGETT M B. Xanthomonas Type Ⅲ Effector XopD Desumoylates Tomato Transcription Factor SlERF4 to Suppress Ethylene Responses and Promote Pathogen Growth[J]. Cell Host & Microbe, 2013, 13(2): 143-154. |
| HUANG J, ZHOU H, ZHOU M, et al. Functional Analysis of Type Ⅲ Effectors in Xanthomonas campestris pv. campestris Reveals Distinct Roles in Modulating Arabidopsis Innate Immunity[J]. Pathogens, 2024, 13(6): 448. doi: 10.3390/pathogens13060448 |
| XIE Q B, WEI B Z, ZHAN Z H, et al. Arabidopsis Membrane Protein AMAR1 Interaction with Type Ⅲ Effector XopAM Triggers a Hypersensitive Response[J]. Plant Physiology, 2023, 193(4): 2768-2787. doi: 10.1093/plphys/kiad478 |
| LI J, LIU C H, WANG S, et al. Staphylococcus Aureus Enters Viable-but-Nonculturable State in Response to Chitooligosaccharide Stress by Altering Metabolic Pattern and Transmembrane Transport Function[J]. Carbohydrate Polymers, 2024, 330: 121772. doi: 10.1016/j.carbpol.2023.121772 |
| BENCHAMAS G, HUANG G L, HUANG S Y, et al. Preparation and Biological Activities of Chitosan Oligosaccharides[J]. Trends in Food Science & Technology, 2021, 107: 38-44. |
| HE X J, HWANG H M, AKER W G, et al. Synergistic Combination of Marine Oligosaccharides and Azithromycin Against Pseudomonas Aeruginosa[J]. Microbiological Research, 2014, 169(9-10): 759-767. doi: 10.1016/j.micres.2014.01.001 |
| 罗华丽, 遇艳萍, 李娜, 等. 壳寡糖在果蔬中的应用研究[J]. 中国果菜, 2023, 43(8): 54-57. |
| CUI K B, SHU C, ZHAO H D, et al. Preharvest Chitosan Oligochitosan and Salicylic Acid Treatments Enhance Phenol Metabolism and Maintain the Postharvest Quality of Apricots (Prunus armeniaca L.)[J]. Scientia Horticulturae, 2020, 267: 109334. doi: 10.1016/j.scienta.2020.109334 |