[1] |
Adedze Y M N, Lu X, Xia Y, Sun Q, Nchongboh C G, Alam M A, Liu M, Yang X, Zhang W, Deng Z, Li W, Si L. 2021. Agarose-resolvable InDel markers based on whole genome re-sequencing in cucumber. Scientific Reports, 11 (1):3872.
|
[2] |
Armstrong G M, Armstrong J K, Netzer D. 1978. Pathogenic races of the cucumber-wilt Fusarium. Plant Disease Reporter,62:824-828.
|
[3] |
Bacon C W, Porter J K, Norred W P, Leslie J F. 1996. Production of fusaric acid by Fusarium species. Applied and Environmental Microbiology, 62 (11):4039-4043.
|
[4] |
Bartholomew E S, Black K, Feng Z, Liu W, Shan N, Zhang X, Wu L, Bailey L, Zhu N, Qi C, Ren H, Liu X. 2019. Comprehensive analysis of the chitinase gene family in cucumber(Cucumis sativus L.):from gene identification and evolution to expression in response to Fusarium oxysporum. International Journal of Molecular Sciences, 20 (21):5309.
|
[5] |
Bartholomew E S, Xu S, Zhang Y, Yin S, Feng Z, Chen S, Sun L, Yang S, Wang Y, Liu P, Ren H, Liu X. 2022. A chitinase CsChi23 promoter polymorphism underlies cucumber resistance against Fusarium oxysporum f. sp. cucumerinum New Phytologist, 236 (4):1471-1486.
|
[6] |
Bishop C D, Cooper R M. 1983. An ultrastructural study of root invasion in three vascular wilt diseases. Physiological Plant Pathology, 22 (1):13-15.
|
[7] |
Branham S E, Levi A, Farnham M W, Patrick W W. 2017. A GBS-SNP-based linkage map and quantitative trait loci(QTL)associated with resistance to Fusarium oxysporum f. sp. niveum race 2 identified in Citrullus lanatus var. citroides. Theoretical and Applied Genetics, 130 (2):319-330.
|
[8] |
Branham S E, Levi A, Katawczik M, Fei Z, Wechter W P. 2018. Construction of a genome-anchored,high-density genetic map for melon(Cucumis melo L.) and identification of Fusarium oxysporum f. sp. melonis race 1 resistance QTL. Theoretical and Applied Genetics, 131 (4):829-837.
|
[9] |
Branham S E, Levi A, Wechter W P. 2019. QTL mapping identifies novel source of resistance to Fusarium wilt race 1 in Citrullus amarus. Plant Disease, 103 (5):984-989.
|
[10] |
Branham S E, Patrick W W, Ling K S, Chanda B, Massey L, Zhao G, Guner N, Bello M, Kabelka E, Fei Z, Levi A. 2020. QTL mapping of resistance to Fusarium oxysporum f. sp. niveum race 2 and Papaya ringspot virus in Citrullus amarus. Theoretical and Applied Genetics, 133 (2):677-687.
|
[11] |
Bravo R G, Di Pietro A, Roncero M I. 2016. Combined action of the major secreted exo- and endopolygalacturonases is required for full virulence of Fusarium oxysporum. Molecular Plant Pathology, 17 (3):339-353.
|
[12] |
Brotman Y, Kovalski I, Dogimont C, Pitrat M, Portnoy V, Katzir N, Perl-Treves R. 2005. Molecular markers linked to papaya ring spot virus resistance and Fusarium race 2 resistance in melon. Theoretical and Applied Genetics, 110 (2):337-345.
|
[13] |
Brotman Y, Normantovich M, Goldenberg Z, Zvirin Z, Kovalski I, Stovbun N, Doniger T, Bolger A M, Troadec C, Bendahmane A, Cohen R, Katzir N, Pitrat M, Dogimont C, Perl-Treves R. 2013. Dual resistance of melon to Fusarium oxysporum races 0 and 2 and to Papaya ring-spot virus is controlled by a pair of head-to-head-oriented NB-LRR genes of unusual architecture. Molecular Plant, 6 (1):235-238.
|
[14] |
Catanzariti A M, Lim G D A. 2015. The tomato I-3 gene: a novel gene for resistance to Fusarium wilt disease. New Phytologist, 207 (1):106-118.
|
[15] |
Chanyalew S, Ferede S, Damte T, Fikre T, Genet Y, Kebede W, Tolossa K, Tadele Z, Assefa K. 2019. Significance and prospects of an orphan crop tef. Planta, 250 (3):753-767.
|
[16] |
Chen B, Wang Z, Jiao M, Zhang J, Liu J, Zhang D, Li Y, Wang G, Ke H, Cui Q, Yang J, Sun Z, Gu Q, Wang X, Wu J, Wu L, Zhang G, Wang X, Ma Z, Zhang Y. 2023. Lysine 2-hydroxyisobutyrylation- and succinylation-based pathways act inside chloroplasts to modulate plant photosynthesis and immunity. Advance Science (Weinh), 10 (27):e2301803.
|
[17] |
Chen Yuwen, Zhao Rongchong, Shen Mujie, Hu Hong, Hu Shengping, Yu Wenjin, Yang Yanjuan. 2022. Genetic analysis of resistance to Fusarium wilt in melon. Molecular Plant Breeding, 20 (12):4044-4050. (in Chinese)
|
|
陈渝文, 赵荣茺, 沈慕洁, 胡泓, 胡胜平, 于文进, 阳燕娟. 2022. 甜瓜抗枯萎病的遗传分析. 分子植物育种, 20 (12):4044-4050.
|
[18] |
Chen Zhendong. 2014. Studies on the identification,genetic diversity of Fusarium oxysporum f. sp. momordicae and differentially proteomic analysis on the pathogen-host interaction[Ph. D. Dissertation]. Nanning: Guangxi University. (in Chinese)
|
|
陈振东. 2014. 苦瓜枯萎病菌的鉴定、遗传多样性及其与寄主互作差异蛋白研究[博士论文]. 南宁: 广西大学.
|
[19] |
Davies D R, Bindschedler L V, Strickland T S, Bolwell G P. 2006. Production of reactive oxygen species in Arabidopsis thaliana cell suspension cultures in response to an elicitor from Fusarium oxysporum:implications for basal resistance. Journal of Experimental Botany, 57 (8):1817-1827.
|
[20] |
Deng M, Wu F, Zhou W, Li J, Shi H, Wang Z, Lin Y, Yang X, Wei Y, Zheng Y, Liu Y. 2019. Mapping of QTL for total spikelet number per spike on chromosome 2D in wheat using a high-density genetic map. Genetics and Molecular Biology, 42 (3):603-610.
|
[21] |
Diener A C, Ausubel F M. 2005. RESISTANCE TO FUSARIUM OXYSPORUM 1,a dominant Arabidopsis disease-resistance gene,is not race specific. Genetics, 171 (1):305-321.
|
[22] |
Ding C, Zhang Y, Chen C, Wang J, Qin M, Gu Y, Zhang S, Wang L, Luo Y. 2024. Hollow mesoporous silica nanoparticles as a new nanoscale resistance inducer for Fusarium wilt control:size effects and mechanism of action. International Journal of Molecular Sciences, 25 (8):
|
[23] |
Ding J, Shi K, Zhou Y, Yu J. 2009. Effects of root and foliar applications of 24-epibrassinolide on Fusarium wilt and antioxidant metabolism in cucumber roots. HortScience, 44 (5):1340-1345.
|
[24] |
Ding Yumei. 2019. The response mechanism of Cucurbita ficifolia infected by Fusarium oxysporum f. sp. cucumerium and selecting of NBS type disease-resistance genes[Ph. D. Dissertation]. Chongqing: Southwest University. (in Chinese)
|
|
丁玉梅. 2019. 黑籽南瓜对枯萎病菌侵染的应答机制及NBS类抗病基因筛选[博士论文]. 重庆: 西南大学.
|
[25] |
Ding Yumei, Zhang Jie, Xie Junjun, Yao Chunxin, Liu Qing, Zhou Xiaogang, Zhou Liying, Yang Zhengan, Zhang Xingguo. 2019. Expression analysis of HQRGA2and differences of anti-oxidant enzymes in three varieties of Cucurbita under stress of Fusarium oxysporum f. sp. cucumerinum. Plant Physiology Journal, 55 (3):349-358. (in Chinese)
|
|
丁玉梅, 张杰, 谢俊俊, 姚春馨, 刘庆, 周晓罡, 周丽英, 杨正安, 张兴国. 2019. 枯萎病菌胁迫下3种黑籽南瓜HQRGA2表达及抗氧化酶活性差异分析. 植物生理学报, 55 (3):349-358.
|
[26] |
Dong J, Wang Y, Xian Q, Chen X, Xu J. 2020. Transcriptome analysis reveals ethylene-mediated defense responses to Fusarium oxysporum f. sp. cucumerinum infection in Cucumis sativus L. BMC Plant Biology, 20 (1):334.
|
[27] |
Dong J, Xu J, Xu X, Xu Q, Chen X. 2019. Inheritance and quantitative trait locus mapping of Fusarium wilt resistance in cucumber. Frontiers in Plant Science,10:1425.
|
[28] |
Duijff B J, Pouhair D, Olivain C, Alabouvette C, Lemanceau P. 1998. Implication of systemic induced resistance in the suppression of Fusarium wilt of tomato by pseudomonas fluorescens WCS417r and by nonpathogenic Fusarium oxysporum Fo47. European Journal of Plant Pathology, 104 (9):903-910.
|
[29] |
Fan H, Dong H, Xu C, Liu J, Hu B, Ye J, Mai G, Li H. 2017. Pectin methylesterases contribute the pathogenic differences between races 1 and 4 of Fusarium oxysporum f. sp. cubense. Scientific Reports, 7 (1):13140.
|
[30] |
Feng Xihong, Shen Tairong, Wang Yangang, Sun Dexiang, Jing Tao, Zhang Xiaoli, Dong Jianli. 2023. Molecular marker-assisted selection of melon disease resistance gene cluster. Journal of Ningxia Agriculture and Forestry Science and Technology, 64 (6):5-8. (in Chinese)
|
|
冯锡鸿, 申太荣, 王彦刚, 孙德祥, 景涛, 张晓丽, 董建力. 2023. 甜瓜抗病基因聚合体的分子标记辅助选择. 宁夏农林科技, 64 (6):5-8.
|
[31] |
Francesconi S, Mazzaglia A, Balestra G M. 2019. Different inoculation methods affect components of Fusarium head blight resistance in wheat. Phytopathologia Mediterranea, 58 (3):679-692.
|
[32] |
Gao M, He Y, Yin X, Zhong X, Yan B, Wu Y, Chen J, Li X, Zhai K, Huang Y, Gong X, Chang H, Xie S, Liu J, Yue J, Xu J, Zhang G, Deng Y, Wang E, Tharreau D, Wang G L, Yang W, He Z. 2021. Ca2+ sensor-mediated ROS scavenging suppresses rice immunity and is exploited by a fungal effector. Cell, 184 (21):5391-5404.
|
[33] |
Gao P, Liu S, Zhu Q L, Luan F S. 2015. Marker-assisted selection of Fusarium wilt-resistant and gynoecious melon(Cucumis melo L.). Genetics and Molecular Research, 14 (4):16255-16264.
|
[34] |
Garcia-Mas J, van Leeuwen H, Monfort A, Carmen De Vicente M, Puigdomènech P, Arús P. 2001. Cloning and mapping of resistance gene homologues in melon. Plant Science, 161 (1):165-172.
|
[35] |
Garibaldi A, Gilardi G, Gullino M L. 2004. Seed transmission of Fusarium oxysporum f. sp. lactucae Phytoparasitica, 32 (1):61-65.
|
[36] |
Gaspar Y M, McKenna J A, McGinness B S, Hinch J, Poon S, Connelly A A, Anderson M A, Heath R L. 2014. Field resistance to Fusarium oxysporum and Verticillium dahliae in transgenic cotton expressing the plant defensin NaD1. Journal of Experimental Botany, 65 (6):1541-1550.
|
[37] |
Gordon T R, Martyn R D. 1997. The evolutionary biology of Fusarium oxysporum. Annual Review of Phytopathology,35:111-128.
|
[38] |
Gu T, Qi Z, Wang Y, Chen S, Yan J, Qiu H, Yu Y, Fang Z, Wang J, Gong J. 2024. An endophytic fungus interacts with the defensin-like protein OsCAL 1 to regulate cadmium allocation in rice. Molecular Plant, 17 (2):312-324.
|
[39] |
Guan F, Shi B, Zhang J, Wan X. 2023. Transcriptome analysis provides insights into lignin synthesis and MAPK signaling pathway that strengthen the resistance of bitter gourd(Momordica charantia)to Fusarium wilt. Genomics, 115 (1):110538.
|
[40] |
Guo Z, Wang H, Tao J, Ren Y, Xu C, Wu K, Zou C, Zhang J, Xu Y. 2019. Development of multiple SNP marker panels affordable to breeders through genotyping by target sequencing(GBTS)in maize. Molecular Breeding, 39.https://doi.org/10.1007/s11032-019-0940-4. https://doi.org/10.1007/s11032-019-0940-4
|
[41] |
Han Jinheng, Wang Lixia, Gao Hongbo, Lü Guiyun. 2016. Cloning and expression analysis of Fusarium wilt resistance related gene ClMYB transcription factor from Citrullus lanatus. Scientia Agricultura Sinica, 49 (17):3359-3369. (in Chinese)
|
|
韩金桓, 王丽霞, 高洪波, 吕桂云. 2016. 西瓜抗枯萎病相关基因ClMYB转录因子的克隆及表达分析. 中国农业科学, 49 (17):3359-3369.
|
[42] |
Herman R, Perl-Treves R. 2007. Characterization and inheritance of a new source of resistance to Fusarium oxysporum f. sp. melonis race 1.2 in Cucumis melo. Plant Disease, 91 (9):1180-1186.
|
[43] |
Houterman P M, Ma L, van Ooijen G, de Vroomen M J, Cornelissen B J, Takken F L, Rep M. 2009. The effector protein Avr 2 of the xylem-colonizing fungus Fusarium oxysporum activates the tomato resistance protein I-2 intracellularly. Plant Journal, 58 (6):970-978.
|
[44] |
Jaber E H A, Srour A Y, Zambounis A G, Vakalounakis D J, Doulis A G. 2020. Identification of SCAR markers linked to the Foc gene governing resistance to Fusarium oxysporum f. sp. cucumerinum in cucumber cv. SMR-18. European Journal of Plant Pathology:Published in cooperation with the European Foundation for Plant Pathology, 157 (4):845-855.
|
[45] |
Ji Wanli, Zhu Hongju, Lu Xuqiang, Zhao Shengjie, He Nan, Geng Lihua, Liu Wenge. 2018. The mechanism of resistance to Fusariun oxysporum f. sp. niveum race 1 in tetraploid watermelon. Scientia Agricultura Sinica, 51 (19):3750-3765.
|
|
姬万丽, 朱红菊, 路绪强, 赵胜杰, 何楠, 耿丽华, 刘文革. 2018. 四倍体西瓜抗枯萎病菌生理小种1的机理. 中国农业科学, 51 (19):3750-3765.
|
[46] |
Jones J D, Vance R E, Dangl J L. 2016. Intracellular innate immune surveillance devices in plants and animals. Science, 354 (6316):DOI: 10.1126/science.aaf6395.
|
[47] |
Joobeur T, King J J, Nolin S J, Thomas C E, Dean R A. 2004. The Fusarium wilt resistance locus Fom-2 of melon contains a single resistance gene with complex features. Plant Journal, 39 (3):283-297.
|
[48] |
Ju Qianqian, Huang Rukui, Huang Xiongjuan, Huang Yuhui, Chen Xiaofeng, Liang Jiazuo, Liu Xinglian, Feng Chengcheng. 2024. Germplasm screening and genetic analysis for Fusarium wilt resistance of Momordica charantia L. Molecular Plant Breeding, 22 (15):5014-5023. (in Chinese)
|
|
琚茜茜, 黄如葵, 黄熊娟, 黄玉辉, 陈小凤, 梁家作, 刘杏连, 冯诚诚. 2024. 苦瓜种质枯萎病抗性鉴定与抗性遗传特征分析. 分子植物育种, 22 (15):5014-5023.
|
[49] |
Kang Baoshan, Wu Huijie, Li Chaohan, Bai Erjun, Gu Weihong, Gu Qinsheng. 2020. Identification and evaluation of new watermelon cultivar for its resistance to Fusarium wilt by artificial inoculation method. China Vegetables,(11):80-84. (in Chinese)
|
|
康保珊, 吴会杰, 李超汉, 白二俊, 顾卫红, 古勤生. 2020. 人工接种法鉴定评价西瓜枯萎病抗性新品种. 中国蔬菜,(11):80-84.
|
[50] |
Kang Dexian, Chen Zhendong, Wu Yongguan, Li Wenjia, Huang Huili, Li Yan, Fan Shichao. 2012. Identification of wax gourd wilt pathogens and field resistance of germplasm resources to Fusarium wilt. Southwest China Journal of Agricultural Sciences, 25 (5):1698-1702. (in Chinese)
|
|
康德贤, 陈振东, 吴永官, 李文嘉, 黄慧俐, 黎炎, 范世超. 2012. 冬瓜枯萎病病原鉴定及种质资源田间抗性评价. 西南农业学报, 25 (5):1698-1702.
|
[51] |
Kang Yumei, Xue Zhuzheng, Li Yongping, Ma Huiwen, Huang Hao. 2022. Identification and evaluation of resistance to Fusarium wilt in new luffa varieties(lines). Bulletin of Agricultural Science and Technology,(8):126-130. (in Chinese)
|
|
康玉妹, 薛珠政, 李永平, 马慧斐, 黄昊. 2022. 丝瓜新品种(系)对枯萎病抗性的鉴定与评价. 农业科技通讯,(8):126-130.
|
[52] |
Kasote D M, Jayaprakasha G K, Ong K, Crosby K M, Patil B S. 2020. Hormonal and metabolites responses in Fusarium wilt-susceptible and -resistant watermelon plants during plant-pathogen interactions. BMC Plant Biology, 20 (1):481.
|
[53] |
Keinath A P, Coolong T W, Lanier J D, Ji P. 2019. Managing Fusarium wilt of watermelon with delayed transplanting and cultivar resistance. Plant Disease, 103 (1):44-50.
|
[54] |
Kidd B N, Kadoo N Y, Dombrecht B, Tekeoglu M, Gardiner D M, Thatcher L F, Aitken E A, Schenk P M, Manners J M, Kazan K. 2011. Auxin signaling and transport promote susceptibility to the root-infecting fungal pathogen Fusarium oxysporum in Arabidopsis. Molecular Plant-Microbe Interactions Journal, 24 (6):733-748.
|
[55] |
Kim H S, Park S Y, Lee S, Adams E L, Czymmek K, Kang S. 2011. Loss of cAMP-dependent protein kinase affects multiple traits important for root pathogenesis by Fusarium oxysporum. Molecular Plant-Microbe Interactions Journal, 24 (6):719-732.
|
[56] |
Kleczewski N M, Egel D S. 2011. A diagnostic guide for Fusarium wilt of watermelon. Plant Health Progress, 12 (1):27.
|
[57] |
Lambel S, Lanini B, Vivoda E, Fauve J, Patrick Wechter W, Harris-Shultz K R, Massey L, Levi A. 2014. A major QTL associated with Fusarium oxysporum race 1 resistance identified in genetic populations derived from closely related watermelon lines using selective genotyping and genotyping-by-sequencing for SNP discovery. Theoretical and Applied Genetics, 127 (10):2105-2115.
|
[58] |
Li C, Yang J, Li W, Sun J, Peng M. 2017. Direct root penetration and rhizome vascular colonization by Fusarium oxysporum f. sp. cubense are the key steps in the successful infection of Brazil Cavendish. Plant Disease, 101 (12):2073-2078.
|
[59] |
Li J, Wang X, Zhang L, Meng Q, Zhang N, Yang W, Liu D. 2017. A wheat NBS-LRR gene TaRGA19 participates in Lr19-mediated resistance to Puccinia triticina. Plant Physiology and Biochemistry,119:1-8.
|
[60] |
Li Mingyuan, Li Xinghong, Huang Jinbao, Yan Hong, Zhang Taotao, Zhou Ying. 2008. Fusarium wilt of cucurbits and its control. China Vegetables,(9):57-60. (in Chinese)
|
|
李明远, 李兴红, 黄金宝, 严红, 张涛涛, 周莹. 2008. 瓜类枯萎病及其防治. 中国蔬菜,(9):57-60.
|
[61] |
Li W M, Dita M, Rouard M, Wu W, Roux N, Xie J H, Ge X J. 2020. Deep RNA-seq analysis reveals key responding aspects of wild banana relative resistance to Fusarium oxysporum f. sp. cubense tropical race 4. Functional & Integrative Genomics, 20 (4):551-562.
|
[62] |
Li Wei, Hu Jiangchun, Wang Shujing. 2008. Growth-promotion and biocontrol of cucumber Fusarium wilt by Marine Bacillus subtilis 3212A. Journal of Shenyang Agricultural University,(2):182-185. (in Chinese)
|
|
李伟, 胡江春, 王书锦. 2008. 海洋细菌3512A对黄瓜枯萎病的防治及促进植株生长的效应. 沈阳农业大学学报,(2):182-185.
|
[63] |
Li Xin, Si Longting. 2008. Studies on genetic characteristics of resistance to Fusarium wilt in cucumber. Agricultural Science & Technology and Equipment,(2):10-13. (in Chinese)
|
|
李新, 司龙亭. 2008. 黄瓜抗枯萎病遗传特性的研究. 农业科技与装备,(2):10-13.
|
[64] |
Li Y, Wang Y, Wu X, Wang J, Wu X, Wang B, Lu Z, Li G. 2021. Novel genomic regions of Fusarium wilt resistance in bottle gourd [Lagenaria siceraria(Mol.)Standl.] discovered in genome-wide association study. Frontiers in Plant Science,12:650157.
|
[65] |
Li Yali, Hou Dong, Yue Hongzhong, Zhang Dongqin. 2018. Evaluation on resistance of 33 cucumber core germplasms to Fusarium wilt and studies on genetic characteristics. Gansu Agricultural Science and Technology,(1):25-30. (in Chinese)
|
|
李亚莉, 侯栋, 岳宏忠, 张东琴. 2018. 33份黄瓜核心种质对枯萎病的抗性评价及遗传特性研究. 甘肃农业科技,(1):25-30.
|
[66] |
Lin Zhongzheng, Wei Runjie, Sheng Yunze, Tang Qianjun, Xiao Qiming. 2011. Research overview of cucumber Fusarium wilt. Beijing Agriculture,(30):91-92. (in Chinese)
|
|
林中正, 魏润洁, 盛云泽, 唐前君, 肖启明. 2011. 黄瓜枯萎病研究概述. 北京农业,(30):91-92.
|
[67] |
Ling N, Zhang W, Wang D, Mao J, Huang Q, Guo S, Shen Q. 2013. Root exudates from grafted-root watermelon showed a certain contribution in inhibiting Fusarium oxysporum f. sp. niveum. PLoS One, 8 (5):e63383.
|
[68] |
Liu Dianlin, Yang Ruihuan, Ha Yujie. 2003. Research on genetic characteristics of cucumbers resisting to Fusarium wilt. Tianjin Agricultural Sciences,(2):33-35. (in Chinese)
|
|
刘殿林, 杨瑞环, 哈玉洁. 2003. 黄瓜抗枯萎病遗传特性的研究. 天津农业科学,(2):33-35.
|
[69] |
Liu G, Lu G, Zeng L, Wang G L. 2002. Two broad-spectrum blast resistance genes, Pi9(t) and Pi2(t), are physically linked on rice chromosome 6. Molecular Genetics and Genomics,267 ( 4):472-480.
|
[70] |
Liu N, Yang J, Fu X, Zhang L, Tang K, Guy K M, Hu Z, Guo S, Xu Y, Zhang M. 2016. Genome-wide identification and comparative analysis of grafting-responsive mRNA in watermelon grafted onto bottle gourd and squash rootstocks by high-throughput sequencing. Molecular Genetics and Genomics, 291 (2):621-633.
|
[71] |
Liu Wei, Zhang Yanqiu, Xu Gang, Sun Ke. 2004. Research progress of watermelon fusarium wilt control. Journal of Anhui Agricultural Sciences,(6):1235-1237. (in Chinese)
|
|
刘伟, 张艳秋, 徐刚, 孙科. 2004. 西瓜枯萎病防治研究进展. 安徽农业科学,(6):1235-1237.
|
[72] |
Liu Y, Cui J, Zhou X, Luan Y, Luan F. 2020. Genome-wide identification,characterization and expression analysis of the TLP gene family in melon(Cucumis melo L.). Genomics, 112 (3):2499-2509.
|
[73] |
Liu Ziji, Zhu Jie, Niu Yu, Yang Yan. 2018. Genetic model analysis of wilt resistance in bitter gourd germplasm Thai4-6. Chinese Journal of Tropical Crops, 39 ( 8):1501-1506. (in Chinese)
|
|
刘子记, 朱婕, 牛玉, 杨衍. 2018. 苦瓜枯萎病抗性材料Thai4-6的遗传模型分析. 热带作物学报, 39 (8):1501-1506.
|
[74] |
Lu C, Du J, Chen H, Gong S, Jin Y, Meng X, Zhang T, Fu B, Molnar I, Holusova K, Said M, Xing L, Kong L, Dolezel J, Li G, Wu J, Chen P, Cao A, Zhang R. 2024. Wheat Pm55 alleles exhibit distinct interactions with an inhibitor to cause different powdery mildew resistance. Nature Communication, 15 (1):503.
|
[75] |
Lü Guiyun. 2010 Preliminary investigations on interactions of watermelon with Fusarium oxysparum f. sp. niveum in histology and transcriptomics.[Ph. D. Dissertation]. Beijing: Chinese Academy of Agricultural Sciences.. (in Chinese)
|
[113] |
van Leeuwen H, Garcia-Mas J, Coca M, Puigdoménech P, Monfort A. 2005. Analysis of the melon genome in regions encompassing TIR-NBS-LRR resistance genes. Molecular Genetics and Genomics, 273 (3):240-251.
|
[114] |
Wang C, Yang Q, Wang W, Li Y, Guo Y, Zhang D, Ma X, Song W, Zhao J, Xu M. 2017. A transposon-directed epigenetic change in ZmCCT underlies quantitative resistance to Gibberella stalk rot in maize. New Phytologist, 215 (4):1503-1515.
|
[115] |
Wang Hexiang, Xu Xiaohua. 1988. Relationship between Fusarium acid production and pathogenicity of Fusarium wilt in cotton. Acta Phytopathologica Sinica,(2):37-40. (in Chinese)
|
|
王贺祥, 徐孝华. 1988. 棉花枯萎病菌镰刀菌酸的产生和致病力的关系. 植物病理学报,(2):37-40.
|
[116] |
Wang N, Tang C, Fan X, He M, Gan P, Zhang S, Hu Z, Wang X, Yan T, Shu W, Yu L, Zhao J, He J, Li L, Wang J, Huang X, Huang L, Zhou J M, Kang Z, Wang X. 2022. Inactivation of a wheat protein kinase gene confers broad-spectrum resistance to rust fungi. Cell, 185 (16):2961-2974.
|
[117] |
Wang Qing, Lin Ling. 2016. Research progress on Fusarium wilt of cucurbits. China Cucurbits and Vegetables, 29 (3):1-6. (in Chinese)
|
|
王卿, 林玲. 2016. 瓜类枯萎病研究进展. 中国瓜菜, 29 (3):1-6.
|
[118] |
Wang S, Yang J, Zhang M. 2011. Developments of functional markers for Fom-2-mediated fusarium wilt resistance based on single nucleotide polymorphism in melon(Cucumis melo L.). Molecular Breeding, 27 (3):385-393.
|
[75] |
吕桂云. 2010. 吕桂云. 西瓜与枯萎病菌互作的组织学和转录组学初步分析[博士论文]. 北京: 中国农业科学院.
|
[76] |
Lü Guiyun, Guo Shaogui, Zhang Haiying, Geng Lihua, Xu Yong. 2010. Analysis of expressed sequence tags in the incompatible interaction between watermelon and Fusarium oxysporum. Scientia Agricultura Sinica, 43 (9):1883-1894. (in Chinese)
|
|
吕桂云, 郭绍贵, 张海英, 耿丽华, 许勇. 2010. 西瓜与枯萎病菌非亲和互作的表达序列标签分析. 中国农业科学, 43 (9):1883-1894.
|
[77] |
Mahmoud A F, Abd E B. 2020. Genetic diversity studies and identification of molecular and biochemical markers associated with Fusarium wilt resistance in cultivated Faba bean(Vicia faba). The Plant Pathology Journal, 36 (1):11-28.
|
[78] |
Mao Aijun, Zhang Feng, Zhang Lirong, Wang Yongjian. 2008. Identification of resistance to Fusarium oxysporum f. sp. cucumerinum on cucumber. Acta Agriculturae Boreali-Sinica,(2):214-216. (in Chinese)
|
|
毛爱军, 张峰, 张丽蓉, 王永健. 2008. 不同黄瓜材料对枯萎病的抗性评价. 华北农学报,(2):214-216.
|
[79] |
Mao Y, Jiang B, Peng Q, Liu W, Lin Y, Xie D, He X, Li S. 2017. Cloning and characterization of WRKY gene homologs in Chieh-qua(Benincasa hispida Cogn. var. Chieh-qua How)and their expression in response to fusaric acid treatment. 3 Biotech,7 (1):86.
|
[80] |
Martyn R D. 1991. Resistance to races 0,1,and 2 of Fusarium wilt of watermelon in Citrullus sp. PI-296341 -FR. Hortscience, 26 (4):429.
|
[81] |
Mateos F R, Petek M, Gerasymenko I, Jutersek M, Baebler S, Kallam K, Moreno G E, Gondolf J, Nordmann A, Gruden K, Orzaez D, Patron N J. 2022. Insect pest management in the age of synthetic biology. Plant Biotechnology Journal, 20 (1):25-36.
|
[82] |
Meru G, McGregor C E. 2016. A genetic locus associated with resistance to Fusarium oxysporum f. sp. niveum Race 2 in Citrullus lanatus-type watermelon. Journal of the American Society for Horticultural Science Journal, 141 (6):617-622.
|
[83] |
Mes J J, van Doorn A A, Wijbrandi J, Simons G, Cornelissen B, Haring M A. 2000. Expression of the Fusarium resistance gene I-2 colocalizes with the site of fungal containment. Plant Journal, 23 (2):183-193.
|
[84] |
Nelson R, Wiesner-Hanks T, Wisser R, Balint-Kurti P. 2018. Navigating complexity to breed disease-resistant crops. Nature Reviews Genetics, 19 (1):21-33.
|
[85] |
Netzer D, Niego S, Galun E. 1977. A dominant gene conferring resistance to Fusarium wilt in cucumber. Phytopathology,67:525-527.
|
[86] |
Ntui V O, Thirukkumaran G, Azadi P, Khan R S, Nakamura I, Mii M. 2010. Stable integration and expression of wasabi defensin gene in“Egusi”melon(Colocynthis citrullus L.) confers resistance to Fusarium wilt and Alternaria leaf spot. Plant Cell Reports, 29 (9):943-954.
|
[87] |
Oumouloud A, Arnedo-Andres M S, Gonzalez-Torres R, Alvarez J M. 2010. Inheritance of resistance to Fusarium oxysporum f. sp. melonis races 0 and 2 in melon accession Tortuga. Euphytica, 176 (2):183-189.
|
[88] |
Oumouloud A, El Otmani M, Álvarez J M. 2015. Molecular characterization of Fom-1 gene and development of functional markers for molecular breeding of resistance to Fusarium race 2 in melon. Euphytica, 205 (2):491-501.
|
[89] |
Oumouloud A, Mokhtari M, Chikh-Rouhou H, Arnedo-Andrés M S, GonzálezTorres R, Álvarez J M. 2012. Characterization of the Fusarium wilt resistance Fom-2 gene in melon. Molecular Breeding, 30 (1):325-334.
|
[90] |
Pareek M, Rajam M V. 2017. RNAi-mediated silencing of MAP kinase signalling genes(Fmk1,Hog1,and Pbs2)in Fusarium oxysporum reduces pathogenesis on tomato plants. Fungal Biology, 121 (9):775-784.
|
[91] |
Perchepied L, Pitrat M. 2004. Polygenic Inheritance of partial resistance to Fusarium oxysporum f. sp. melonis race 1.2 in melon. Phytopathology, 94 (12):1331-1336.
|
[92] |
Piattoni F, Roberti R, Servidio G, D Aulerio A Z. 2014. Studies on the potential role of root exudates in the interaction between musk melon roots and Fusarium oxysporum f. sp. melonis. Journal of Plant Diseases and Protection, 121 (2):64-70.
|
[93] |
Pu X, Xie B, Li P, Mao Z, Ling J, Shen H, Zhang J, Huang N, Lin B. 2014. Analysis of the defence-related mechanism in cucumber seedlings in relation to root colonization by nonpathogenic Fusarium oxysporum CS-20. FEMS Microbiology Letters, 355 (2):142-151.
|
[94] |
Qi Yongzhi, Sun Yaru, Wang Bing, Guo Hanfei, Ma Ke, Zhen Wenchao. 2021. Research progress on allelopathy of root exudates and decompositions of strawberry. Acta Horticulturae Sinica, 48 (4):778-790. (in Chinese)
|
|
齐永志, 孙雅如, 王冰, 郭邯菲, 马可, 甄文超. 2021. 草莓根系分泌物和腐解物化感作用研究进展. 园艺学报, 48 (4):778-790.
|
[95] |
Rani L, Thapa K, Kanojia N, Sharma N, Singh S, Grewal A S, Srivastav A L, Kaushal J. 2021. An extensive review on the consequences of chemical pesticides on human health and environment. Journal of Cleaner Production,283:124657.
|
[96] |
Ren Y, Di Jiao, Gong G, Zhang H, Guo S, Zhang J, Xu Y. 2015. Genetic analysis and chromosome mapping of resistance to Fusarium oxysporum f. sp. niveum(FON)race 1 and race 2 in watermelon(Citrullus lanatus L.). Molecular Breeding, 35 (9):183.
|
[97] |
Risser G, Banihashemi Z, Davis D W. 1976. A proposed nomenclature of Fusarium oxysporum f. sp. melonis races and resistance genes in Cucumis melo. Phytopathology,66:1105.
|
[98] |
Sanchez-Martin J, Keller B. 2021. NLR immune receptors and diverse types of non-NLR proteins control race-specific resistance in Triticeae. Current Opinion in Plant Biology,62:102053.
|
[99] |
Shao Z Q, Xue J Y, Wu P, Zhang Y M, Wu Y, Hang Y Y, Wang B, Chen J Q. 2016. Large-scale analyses of angiosperm nucleotide-binding site-leucine-rich repeat genes reveal three anciently diverged classes with distinct evolutionary patterns. Plant Physiology, 170 (4):2095-2109.
|
[100] |
She Xiaoman, He Zifu, Luo Fangfang, Yu Hao. 2011. Fusarium wilt of melon and its comprehensive control technology. Guangdong Agricultural Sciences, 38 (2):84-87. (in Chinese)
|
|
佘小漫, 何自福, 罗方芳, 虞皓. 2011. 瓜类枯萎病及其综合防治技术. 广东农业科学, 38 (2):84-87.
|
[101] |
Sheikh M, Iqra F, Ambreen H, Pravin K A, Ikra M, Chung Y S. 2023. Integrating artificial intelligence and high-throughput phenotyping for crop improvement. Journal of Integrative Agriculture, 23 (6):1787-1802.
|
[102] |
Shokouhifar F, Mamarabadi M, Khyrabad M M. 2016. Tracking of the gene Fom2 and study on the genetic diversity of NB-ARC domain in the number of resistant and sensitive melon cultivars against Fusarium oxysporum f. sp. melonis(race 1) Australasian Plant Pathology, 45 (3):279-288.
|
[103] |
Sweellum T A, Naguib D M. 2023. Tomato potato onion intercropping induces tomato resistance against soil borne pathogen,Fusarium oxysporum through improvement soil enzymatic status,and the metabolic status of tomato root and shoot. Journal of Plant Diseases and Protection, 130 (2):245-261.
|
[104] |
Tassone M R, Bagnaresi P, Desiderio F, Bassolino L, Barchi L, Florio F E, Sunseri F, Sirangelo T M, Rotino G L, Toppino L. 2022. A genomic BSAseq approach for the characterization of QTLs underlying resistance to Fusarium oxysporum in eggplant. Cells, 11 (16):2548.
|
[105] |
Tezuka T, Waki K, Kuzuya M, Ishikawa T, Takatsu Y, Miyagi M. 2011. Development of new DNA markers linked to the Fusarium wilt resistance locus Fom-1 in melon. Plant Breeding, 130 (2):261-267.
|
[106] |
Thatcher L F, Powell J J, Aitken E A, Kazan K, Manners J M. 2012. The lateral organ boundaries domain transcription factor LBD 20 functions in Fusarium wilt susceptibility and jasmonate signaling in Arabidopsis. Plant Physiology, 160 (1):407-418.
|
[107] |
Trillas M I, Cotxarrera L, Casanova E, Cortadellas N. 2000. Ultrastructural changes and localization of chitin and callose in compatible and incompatible interactions between carnation callus and Fusarium oxysporum. Physiological and Molecular Plant Pathology, 56 (3):107-116.
|
[108] |
Vakalounakis D J. 1996. Allelism of the Fcu-1 and Foc genes conferring resistance to Fusarium wilt in cucumber. European Journal of Plant Pathology, 102 (9):855-858.
|
[109] |
Vakalounakis D J, Lamprou K. 2018. The Foc gene governs resistance to race 3 of Fusarium oxysporum f. sp. cucumerinum in the cucumber cv. SMR-18. European Journal of Plant Pathology, 152 (3):653-656.
|
[110] |
VAN DEN Berg N, Berger D K, Hein I, Birch P R, Wingfield M J, Viljoen A. 2007. Tolerance in banana to Fusarium wilt is associated with early up-regulation of cell wall-strengthening genes in the roots. Molecular Plant Pathology, 8 (3):333-341.
|
[111] |
van der Does H C, Lievens B, Claes L, Houterman P M, Cornelissen B J, Rep M. 2008. The presence of a virulence locus discriminates Fusarium oxysporum isolates causing tomato wilt from other isolates. Environmental Microbiology, 10 (6):1475-1485.
|
[112] |
van Esse H P, Reuber T L, van der Does D. 2020. Genetic modification to improve disease resistance in crops. New Phytologist, 225 (1):70-86.
|
[119] |
Wang Y, Thomas C E, Dean R A. 2000. Genetic mapping of a fusarium wilt resistance gene(Fom-2)in melon(Cucumis melo L.). Molecular Breeding, 6 (4):379-389.
|
[120] |
Wang Y H, Choi W, Thomas C E, Dean R A. 2002. Cloning of disease-resistance homologues in end sequences of BAC clones linked to Fom-2,a gene conferring resistance to Fusarium wilt in melon(Cucumis melo L.). Genome, 45 (3):473-480.
|
[121] |
Wang Yajuan. 2005. Studies on molecular marker of Fusarium wilt resistance-related gene in cucumber(Cucumis sativus L.)[Ph. D. Dissertation]. Yangling: Northwest A & F University. (in Chinese)
|
|
王亚娟. 2005. 黄瓜(Cucumis sativus L.)枯萎病抗性相关基因的分子标记研究[博士论文]. 杨凌g: 西北农林科技大学.
|
[122] |
Wang Yuhuan. 2023. Function analysis of ClTSN protein interacting with Fusarium oxysporum effect protein FonSIX6 in watermelon resistance to Fusarium wilt disease[M. D. Dissertation]. Urumqi: Xinjiang Agricultural University. (in Chinese)
|
|
王玉环, 2023. 与尖孢镰刀菌效应蛋白FonSIX6互作的ClTSN蛋白在西瓜抗枯萎病过程中的功能分析[硕士论文]. 乌鲁木齐: 新疆农业大学.
|
[123] |
Wei W, Wu X, Garcia A, McCoppin N, Viana J, Murad P S, Walker D R, Hartman G L, Domier L L, Hudson M E, Clough S J. 2023. An NBS-LRR protein in the Rpp1 locus negates the dominance of Rpp1-mediated resistance against Phakopsora pachyrhizi in soybean. Plant Journal, 113 (5):915-933.
|
[124] |
Wen Changlong, Mao Aijun, Dong Congjuan, Zhang Haiying, Wang Yongqin, Wang Yongjian, Yu Shuangcang, Xu Yong. 2014. Molecular markers of Fusarium wilt disease resistance gene Foc-4 and its special primers and applications. CN103882017A,2014.06.25.
|
|
温常龙, 毛爱军, 董从娟, 张海英, 王永勤, 王永健, 于拴仓, 许勇. 2014. 黄瓜枯萎病抗病基因Foc-4的分子标记及其专用引物和应用. CN103882017A,2014.06.25.
|
[125] |
Wen T, Xie P, Penton C R, Hale L, Thomashow L S, Yang S, Ding Z, Su Y, Yuan J, Shen Q. 2022. Specific metabolites drive the deterministic assembly of diseased rhizosphere microbiome through weakening microbial degradation of autotoxin. Microbiome, 10 (1):177.
|
[126] |
Wen T, Yuan J, He X, Lin Y, Huang Q, Shen Q. 2020. Enrichment of beneficial cucumber rhizosphere microbes mediated by organic acid secretion. Horticulture Research,7:154.
|
[127] |
Weng Zuxin, Xu Xinbo, Feng Dongxin. 1989. Preliminary study on physiological subspecies of Fusarium of cucumber. China Vegetables,(1):19-21. (in Chinese)
|
|
翁祖信, 徐新波, 冯东昕. 1989. 黄瓜枯萎病菌生理小种研究初报. 中国蔬菜,(1):19-21.
|
[128] |
Wheeler T A, Dotray J, Monclova-Santana C. 2022. Effects of Fusarium wilt on cotton cultivars with and without Meloidogyne incognita resistance in fields. Journal of Nematology, 54 (1):20220017.
|
[129] |
Wu Fengzhi, Meng Lijun, Wen Jingzhi. 2002. Effect of cucumber root exudates on hyphal growth of Fusarium oxysporum. China Vegetables,(5):26-27. (in Chinese)
|
|
吴凤芝, 孟立君, 文景芝. 2002. 黄瓜根系分泌物对枯萎病菌菌丝生长的影响. 中国蔬菜,(5):26-27.
|
[130] |
Wu Zhitao, Li Zhuo, Zhang Li. 2016. Resistance evaluation of cucumber varieties cultivated in Xinjiang to Fusarium wilt. Northern Horticulture,(11):119-122. (in Chinese)
|
|
吴之涛, 李卓, 张莉. 2016. 新疆黄瓜品种对枯萎病的抗性鉴定评价. 北方园艺,(11):119-122.
|
[131] |
Xia X J, Zhou Y H, Ding J, Shi K, Asami T, Chen Z, Yu J Q. 2011. Induction of systemic stress tolerance by brassinosteroid in Cucumis sativus. New Phytologist, 191 (3):706-720.
|
[132] |
Xiao J, Zhang Y, Yang K, Tang Y, Wei L, Liu E, Liang Z. 2022. Protein kinase Ime 2 is associated with mycelial growth,conidiation,osmoregulation,and pathogenicity in Fusarium oxysporum. Archives of Microbiology, 204 (8):455.
|
[133] |
Xie C, Shao Y, Li X, He Y. 2015. Detection of early blight and late blight diseases on tomato leaves using hyperspectral imaging. Scientific Reports,5:16564.
|
[134] |
Xie D, Ma L, Samaj J, Xu C. 2011. Immunohistochemical analysis of cell wall hydroxyproline-rich glycoproteins in the roots of resistant and susceptible wax gourd cultivars in response to Fusarium oxysporum f. sp. Benincasae infection and fusaric acid treatment. Plant Cell Reporter, 30 (8):1555-1569.
|
[135] |
Xie Dasen, He Xiaoming, Peng Qingwu, Li Huaping. 2009. Inheritance of resistance to Fusarium wilt in winter melon. Chinese Journal of Tropical Crops, 30 (7):1005-1008. (in Chinese)
|
|
谢大森, 何晓明, 彭庆务, 李华平. 2009. 冬瓜枯萎病的抗性遗传规律. 热带作物学报, 30 (7):1005-1008.
|
[136] |
Xu J, Xian Q, Wang K, Dong J, Zhang C, Du S, Xu X, Chen X. 2022. Screening and identification of candidate Fusarium wilt-resistance genes from pumpkin. Horticultural Plant Journal, 8 (5):583-592.
|
[137] |
Xu J, Xian Q, Zhang N, Wang K, Zhou X, Li Y, Dong J, Chen X. 2021a. Identification of miRNA-target gene Pairs responsive to Fusarium wilt of cucumber via an integrated analysis of miRNA and transcriptome profiles. Biomolecules, 11 (11):1620.
|
[138] |
Xu J, Zhang N, Wang K, Xian Q, Dong J, Qi X, Chen X. 2021b. Chitinase Chi 2 positively regulates cucumber resistance against Fusarium oxysporum f. sp. cucumerinum. Genes(Basel), 13 (1):62.
|
[139] |
Xu Jinhua, Yang Xingping, Gao Zhangzhou, Jiang Jiao. 2006. Identification of resistance in tetraploid watermelon germplasm to Fusarium wilt and genetic analysis, Jiangsu Journal of Agricultural Sciences,(2):141-144. (in Chinese)
|
|
徐锦华, 羊杏平, 高长洲, 江蛟. 2006. 四倍体西瓜种质资源的抗枯萎病性鉴定及其遗传规律初探. 江苏农业学报,(2):141-144.
|
[140] |
Xu Runfang. 1990. Progress in watermelon breeding for resistance to fusarium wilt in the United States. China Cucurbits and Vegetables,(2):1-5. (in Chinese)
|
|
徐润芳. 1990. 美国西瓜抗枯萎病育种进展. 中国西瓜甜瓜,(2):1-5.
|
[141] |
Yadeta K A, Hanemian M, Smit P, Hiemstra J A, Pereira A, Marco Y, Thomma B P. 2011. The Arabidopsis thaliana DNA-binding protein AHL 19 mediates verticillium wilt resistance. Molecular Plant-Microbe Interactions Journal, 24 (12):1582-1591.
|
[142] |
Yang Mengfei, Xia Ling, Liang Xinjing, Han Xiaoyan, Yang Xiaofeng. 2024. Localization of melon wilt resistance-related genes based on BSA-seq and annotation of candidate genes. Molecular Plant Breeding, 22 (10):3156-3165. (in Chinese)
|
|
杨梦飞, 夏玲, 梁昕景, 韩晓燕, 杨小锋. 2024. 基于BSA-seq的甜瓜抗枯萎病相关基因的定位与候选基因的注释. 分子植物育种, 22 (10):3156-3165.
|
[143] |
Yang N, Yu J, Wang A, Tang J, Zhang R, Xie L, Shu F, Kwabena O P. 2020. A rapid rice blast detection and identification method based on crop disease spores' diffraction fingerprint texture. Journal of the Science of Food and Agriculture, 100 (9):3608-3621.
|
[144] |
Yang T, Liu J, Li X, Amanullah S, Lu X, Zhang M, Zhang Y, Luan F, Liu H, Wang X. 2022. Transcriptomic analysis of Fusarium oxysporum stress-induced pathosystem and screening of Fom-2 interaction factors in contrasted melon plants. Frontiers in Plant Science,13:961586.
|
[145] |
Yao H, Wu F. 2010. Soil microbial community structure in cucumber rhizosphere of different resistance cultivars to fusarium wilt. FEMS Microbiology Ecology, 72 (3):456-463.
|
[146] |
Yao Yixiu, Li Yulin, He Yanjun, Fan Min, Gao Jie. 2022. Identification of watermelon NCED genes and analysis of its expression pattern against Fusarium wilt and abscisic acid. Molecular Plant Breeding, 20 (5):1393-1405. (in Chinese)
|
|
姚依秀, 李玉林, 何艳军, 范敏, 高杰. 2022. 西瓜NCED基因的鉴定及其对枯萎病和脱落酸的表达模式分析. 分子植物育种, 20 (5):1393-1405.
|
[147] |
Yu Jing, Feng Xiangjun, Jin Yingxue, Ding Guohua. 2024. Inhibitory effect of pyropheophorbide-a on cucumber Fusarium wilt. Acta Horticulturae Sinica, 51 (4):859-874. (in Chinese)
|
|
于静, 冯向君, 金英学, 丁国华. 2024. 焦脱镁叶绿酸a对黄瓜枯萎病菌的抑制作用. 园艺学报, 51 (4):859-874.
|
[148] |
Yuan Na, Xu Qinyuan, Xu Zhaolong, Zhou Ling, Liu Xiaoqing, Chen Xin, Du Jianchang. 2024. The development and verification of SNP liquid chips for common bean based on target sequencing technology. Acta Horticulturae Sinica, 51 (5):1017-1032. (in Chinese)
|
|
袁娜, 徐勤圆, 徐照龙, 周玲, 刘晓庆, 陈新, 杜建厂. 2024. 基于靶向测序技术的菜豆SNP液相芯片开发及验证. 园艺学报, 51 (5):1017-1032.
|
[149] |
Zhang C, Chen H, Cai T, Deng Y, Zhuang R, Zhang N, Zeng Y, Zheng Y, Tang R, Pan R, Zhuang W. 2017. Overexpression of a novel peanut NBS-LRR gene AhRRS5 enhances disease resistance to Ralstonia solanacearum in tobacco. Plant Biotechnology Journal, 15 (1):39-55.
|
[150] |
Zhang S, Miao H, Yang Y, Xie B, Wang Y, Gu X. 2014. A major quantitative trait locus conferring resistance to Fusarium wilt was detected in cucumber by using recombinant inbred lines. Molecular Breeding, 34 (4):1805-1815.
|
[151] |
Zhang S, Tan F, Chung C, Slavkovic F, Devani R S, Troadec C, Marcel F, Morin H, Camps C, Gomez Roldan M V, Benhamed M, Dogimont C, Boualem A, Bendahmane A. 2022. The control of carpel determinacy pathway leads to sex determination in cucurbits. Science, 378 (6619):543-549.
|
[152] |
Zhang Y, Yuan Y, Xi H, Zhang Y, Gao C, Ma M, Huang Q, Li F, Yang Z. 2024. Promotion of apoplastic oxidative burst by artificially selected GhCBSX3A enhances Verticillium dahliae resistance in upland cotton. Plant Journal, 118 (6):2154-2168.
|
[153] |
Zhao L, Liu A, Song T, Jin Y, Xu X, Gao Y, Ye X, Qi H. 2018. Transcriptome analysis reveals the effects of grafting on sugar and alpha-linolenic acid metabolisms in fruits of cucumber with two different rootstocks. Plant Physiology and Biochemistry,130:289-302.
|
[154] |
Zhao J, Fang Y, Chu G, Yan H, Hu L, Huang L. 2020. Identification of leaf-scale wheat powdery mildew(Blumeria graminis f. sp. Tritici)combining hyperspectral imaging and an SVM classifier. Plants, 9 (8):936.
|
[155] |
Zhao Rongchong, Shen Mujie, Zhang Gui, Huo Yulai, Li Kunfeng, Chen Yi, Yu Wenjin, Wang Peng, Yang Yanjuan. 2023. Genetic analysis of resistance to Fusarum wilt in bottle gourd. Molecular Plant Breeding, https://kns.cnki.net/kcms/detail/46.1068.S.20230310.1349.004.html in Chinese)
|
|
赵荣茺, 沈慕洁, 张归, 霍雨来, 李昆峰, 陈艺, 于文进, 王鹏, 阳燕娟. 2023. 瓠瓜枯萎病抗性的遗传规律分析. 分子植物育种, https://kns.cnki.net/kcms/detail/46.1068.S.20230310.1349.004.html
|
[156] |
Zhao Xiujuan, Tang Xin, Hu Kailin. 2013. Studies on the identification technology and inheritance of disease resistance to Fusarium wilt in bitter gourd. Acta Horticulturae Sinica, 40 (4):685-692. (in Chinese)
|
|
赵秀娟, 唐鑫, 胡开林. 2013. 苦瓜枯萎病抗性鉴定与抗性遗传规律研究. 园艺学报, 40 (4):685-692.
|
[157] |
Zhong Y, Xun W, Wang X, Tian S, Zhang Y, Li D, Zhou Y, Qin Y, Zhang B, Zhao G, Cheng X, Liu Y, Chen H, Li L, Osbourn A, Lucas W J, Huang S, Ma Y, Shang Y. 2022. Root-secreted bitter triterpene modulates the rhizosphere microbiota to improve plant fitness. Nature Plants, 8 (8):887-896.
|
[158] |
Zhou Hongmei, Dong Congjuan, Zhang Haiying, Ren Yi, Guo Shaogui, Yang Wencai, Mao Aijun. 2015. SSR molecular markers and localization of the gene Foc-4 linked to the resistance to Fusarium wilt of cucumber. Molecular Plant Breeding, 13 (9):1980-1986. (in Chinese)
|
|
周红梅, 董从娟, 张海英, 任毅, 郭绍贵, 杨文才, 毛爱军. 2015. 黄瓜抗枯萎病基因连锁分析和定位. 分子植物育种, 13 (9):1980-1986.
|
[159] |
Zink F W, Gubler W D. 1985. Inheritance of resistance in muskmelon to Fusarium wilt. Journal of the American Society for Horticultural Science. DOI: 10.21273/jashs.110.5.600.
|
[160] |
Zou Xiaohua, Zhang Haiying, Li Sheng, Geng Lihua, Gong Guoyi, Ren Yi, Xu Yong. 2011. Inheritance of resistance to race 2 of Fusarium oxysporum f. sp. niveurm in watermelon wild germplasm PI296341-FR(Citrullus lanatus var. citriodes). Acta Horticulturae Sinica,, 38 (9):1699-1706. (in Chinese)
|
|
邹小花, 张海英, 李胜, 耿丽华, 宫国义, 任毅, 许勇. 2011. 野生西瓜种质PI296341-FR抗枯萎病菌生理小种2的遗传规律. 园艺学报, 38 (9):1699-1706.
|