[1] 张旭颖,岑伊静.亚洲柑橘木虱与柑橘黄龙病菌互作的研究进展[J].环境昆虫学报, 2020, 42(3):630-637.
[2] 唐利华,郭堂勋,李其利,等.柑橘黄龙病田间诊断与检测技术研究进展[J].中国植保导刊, 2018, 38(8):81-87.
[3] 黄峰,崔一平,宋晓兵,等.黄龙病对柑橘叶际微生物组的影响[J].植物保护学报, 2023, 50(5):1150-1160.
[4] 黄家权,李莉,吴丰年,等.携带不同原噬菌体的黄龙病菌在柑橘木虱体内的增殖及致病力[J].中国农业科学, 2022, 55(4):719-728.
[5] 白华菊,龙梦玲.柑橘黄龙病研究进展[J].中国植保导刊, 2009, 29(3):13-16.
[6] 陈文利,徐婉,程保平,等.柑橘黄龙病检测及治疗方法的研究进展[J].华南师范大学学报(自然科学版), 2017, 49(5):9-15.
[7] 秦紫芳,石旺鹏.木虱寄生蜂研发现状及趋势[J].中国生物防治学报, 2021, 37(5):1082-1089.
[8] 黎海霖,郑霞林,王小云,等.柑橘木虱成虫繁殖行为前期及活动规律研究[J].南方农业学报, 2019, 50(9):2009-2014.
[9] 程春振,曾继吾,钟云,等.柑橘黄龙病研究进展[J].园艺学报, 2013, 40(9):1656-1668.
[10] 乌天宇,张旭颖, George A C B,等.亚洲柑橘木虱成虫和5龄若虫在感染黄龙病的柑橘上的取食行为及获菌效率比较[J].昆虫学报, 2020, 63(2):166-173.
[11] Fan J, Chen C, Brlansky R H, et al. Changes in carbohy-drate metabolism in citrus sinensis infected with "Candi-datus Liberibacter asiaticus" [J]. Plant Pathology, 2010(59):1037-1043.
[12] Texeira D C, Ayres J, Kitajima E W, et al. First report of a huanglongbing-like disease of Citrus in Sao Paulo state, Brazil and association of a new Liberibacter spe-cies, "Candidatus Liberibacter americanus", with the dis-ease[J]. Plant Disease, 2005, 89(1):107.
[13] 谢攀.柑橘黄龙病病原菌共培养体系的构建[D].重庆:重庆大学, 2015.
[14] 樊晶.柑橘宿主对黄龙病病原菌侵染的应答机制[D].重庆:重庆大学, 2010.
[15] 吴英林.柑橘黄龙病疫情监测与防控措施[J].现代农业科技, 2022(4):117-118, 125.
[16] 文庆利,谢竹,吴柳,等.柑橘响应黄龙病侵染的韧皮部蛋白2基因CsPP2B15的克隆与表达分析[J].园艺学报, 2018, 45(12):2347-2357.
[17] Ma W X, Pang Z Q, Huang X E, et al. Citrus huanglong-bing is a pathogen-triggered immune disease that can be mitigated with antioxidants and gibberellin[J]. Nature Communications, 2022, 13:529.
[18] 王许会,郭洋洋,全金成,等.柑橘黄龙病碘-淀粉法快速检测技术优化[J].福建农林大学学报(自然科学版), 2017, 46(4):392-396.
[19] 晏建红,关巍,宾羽,等.柑橘黄龙病菌分泌蛋白05150的筛选、原核表达及抗血清制备[J].果树学报, 2020, 37(9):1384-1393.
[20] 黄伟锋,洪添胜,吴伟斌,等.柑橘黄龙病检测方法研究进展[J].广东农业科学, 2012, 39(16):60-64, 239.
[21] 李彬,罗聪,苏玲,等.柑橘黄龙病病原快速检测技术研究进展[J].基因组学与应用生物学, 2020, 39(2):652-657.
[22] Keremane M L, McCollum T G, Roose M L, et al. An improved reference gene for detection of "Candidatus Li-beribacter asiaticus" associated with Citrus huanglong-bing by qPCR and digital droplet PCR assays[J]. Plants, 2021, 10(10):2111.
[23] Hu T S, Chitnis N, Monos D, et al. Next-generation se-quencing technologies:An overview[J]. Human Immunol-ogy, 2021, 82(11):801-811.
[24] 卢慧林,陈大嵩,陈逢浩,等.基于纳米孔测序技术的柑橘黄龙病检测方法建立[J].环境昆虫学报, 2021, 43(6):1596-1600.
[25] Wang Y H, Zhao Y, Bollas A, et al. Nanopore sequenc-ing technology, bioinformatics and applications[J]. Na-ture Biotechnology, 2021, 39(11):1348-1365.
[26] 路惠馨,孙凯,尹传林,等.纳米孔测序技术在植物病原检测中的应用与展望[J].农业生物技术学报, 2021, 29(9):1817-1824.
[27] 李中浤,杜彩丽,林彦锋,等.纳米孔测序技术在环境微生物研究中的应用[J].生物工程学报, 2022, 38(1):5-13.
[28] 范世达,马伟荣,姜文博,等.基于深度学习的柑橘黄龙病远程诊断技术初探[J].中国果树, 2022(4):76-79.
[29] 曾伟辉,陈亚飞,胡根生,等. SMS和双向特征融合的自然背景柑橘黄龙病检测技术[J].农业机械学报, 2022, 53(11):280-287.
[30] He C C, Li X B, Liu Y S, et al. Combining multicolor fluorescence imaging with multispectral reflectance imag-ing for rapid Citrus huanglongbing detection based on lightweight convolutional neural network using a hand-held device[J]. Computers and Electronics in Agricul-ture, 2022, 194:106808.
[31] 林少丹,李效彬,杨碧云,等.适用于小样本显微图像数据集的柑橘黄龙病快速诊断模型[J].农业工程学报, 2022, 38(12):216-223.
[32] Gómez-Flores W, Garza-Saldaña J J, Varela-Fuentes S E. Detection of huanglongbing disease based on intensi-ty-invariant texture analysis of images in the visible spectrum[J]. Computers and Electronics in Agriculture, 2019, 162:825-835.
[33] Liu Y D, Xiao H C, Xu H, et al. Visual discrimination of citrus HLB based on image features[J]. Vibrational Spectroscopy, 2019, 102:103-111.
[34] Su C, Ding F, Wang W J, et al. Time-resolved fluores-cent microsphere lateral flow biosensors for rapid detec-tion of Candidatus Liberibacter asiaticus[J]. Plant Bio-technology Journal, 2022, 20(7):1235-1237.
[35] Puspitasari, Yunimar, Sastro Y. Utilization of rapid de-tection kit in measuring huanglongbing outbreak level:Case study in Koto Tinggi, West Sumatera, Indonesia[J]. IOP Conference Series Earth and Environmental Sci-ence, 2020, 468(1):012046.
[36] Weng J F, Zhang J Z, Zhang C Y, et al. Effective detec-tion of early Citrus huanglongbing by polyethyleneimine modified multi-walled carbon nanotubes gas sensor[J]. Sensors and Actuators B-Chemical, 2022, 371:132508.
[37] 周常勇.对柑橘黄龙病防控对策的再思考[J].植物保护, 2018, 44(5):30-33.
[38] 胡雪芳,田志清.柑橘黄龙病防治技术研究进展[J].中国植保导刊, 2021, 41(7):32-38, 20.
[39] 王飞燕,张瑞敏,吴文,等.柑橘黄龙病对沙田柚树体特性和果实品质的影响[J].热带作物学报, 2020, 41(9):1847-1855.
[40] Zou X P, Jiang X Y, Xu L Z, et al. Transgenic Citrus ex-pressing synthesized cecropin B genes in the phloem ex-hibits decreased susceptibility to huanglongbing[J]. Plant Molecular Biology, 2017, 93(4):341-353.
[41] Kosmiatin M, Martasari C, Yunimar, et al. In vitro selec-tion to increase huanglongbing tolerance of Citrus de-rived from in vitro breeding[J]. IOP Conference Series:Earth and Environmental Science, 2020, 457(1):012080.
[42] Deng H, Achor D, Exteberria E, et al. Phloem regenera-tion is a mechanism for huanglongbing-tolerance of "Bearss" lemon and "LB8-9" Sugar Belle® mandarin[J]. Frontiers in Plant Science, 2019, 10:277.
[43] Cheng C Z, Zhong Y, Wang B, et al. The upregulated ex-pression of the Citrus RIN4 gene in HLB diseased Cit-rus aids Candidatus Liberibacter asiaticus infection[J]. In-ternational Journal of Molecular Sciences, 2022, 23(13):6971.
[44] 武晓晓,娄兵海,唐艳,等.耐(抗)柑橘黄龙病种质材料的评价研究[J].中国果树, 2021(11):44-49.
[45] 陈仕钦,卢小林,陈玉龙,等.柑橘黄龙病防控药剂筛选试验初报[J].植物保护, 2014, 40(2):166-170.
[46] Archer L, Qureshi J, Albrecht U. Efficacy of trunk inject-ed imidacloprid and oxytetracycline in managing huan-glongbing and Asian Citrus psyllid in infected sweet or-ange (Citrus sinensis) trees[J]. Agriculture, 2022, 12(10):1592.
[47] 韩鹤友,程帅华,宋智勇,等.柑橘黄龙病药物防治策略[J].华中农业大学学报, 2021, 40(1):49-57.
[48] 黄洋,关巍,王铁霖,等.两类抗生素药剂对‘纽荷尔'脐橙黄龙病菌的抑制作用及根际细菌群落结构的影响[J].植物保护, 2021, 47(6):83-92.
[49] 孟华岳,郑淑琼,文英杰,等.滴灌施用噻虫胺防治柑橘木虱研究[J].华南农业大学学报, 2019, 40(2):47-52.
[50] Roldan E L, Stelinski L L, Pelz-Stelinski K S. Foliar an-tibiotic treatment reduces Candidatus Liberibacter asiati-cus acquisition by the Asian Citrus psyllid, Diaphorina citri (Hemiptera:Liviidae), but does not reduce tree in-fection rate[J]. Journal of Economic Entomology, 2023, 116(1):78-89.
[51] Huang C Y, Araujo K, Sánchez J N, et al. A stable anti-microbial peptide with dual functions of treating and pre-venting Citrus huanglongbing[J]. Proceedings of the Na-tional Academy of Sciences of the United States of America, 2021, 118(6):e2019628118.
[52] Widyaningsih S, Joko T, Utami S N H, et al. The effec-tiveness and bacterial communities of biofertilizer appli-cation for huanglongbing disease control in indonesia[C]//International Symposia on Horticulture. Bali, Indonesia:Filodiritto Editore, 2018:80-88.
[53] Munir S, Li Y M, He P B, et al. Defeating huanglong-bing pathogen Candidatus Liberibacter asiaticus with in-digenous Citrus endophyte Bacillus subtilis L1-21[J]. Frontiers in Plant Science, 2022, 12:789065.
[54] Maluta N, Castro T, Lopes J R S. Entomopathogenic fun-gus disrupts the phloem-probing behavior of Diaphorina citri and may be an important biological control tool in Citrus[J]. Scientific Reports, 2022, 12:7959.
[55] 周雅婷.柑橘木虱寄生天敌亮腹釉小蜂的生物学基础研究[D].广州:华南农业大学, 2016.
[56] Gabriel D, Gottwald T R, Lopes S A, et al. Bacterial pathogens of Citrus:Citrus canker, Citrus variegated chlorosis and huanglongbing[M]//The Genus Citrus. Am-sterdam:Elsevier, 2020:371-389.
[57] Zhang Y, Chen Y, Ma J, et al. Controlling Citrus huan-glongbing based on soil remediation and biocontrol[J]. European Journal of Plant Pathology, 2024, doi:10.1007/s10658-024-02835-y.