Journal of Zhejiang Agricultural Sciences ›› 2024, Vol. 65 ›› Issue (9): 2165-2169.DOI: 10.16178/j.issn.0528-9017.20231010
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ZHOU Yang(), LI Yingzhuang, HAN Xinjun, FU Hao, LI Zhihui*(
)
Received:
2023-10-24
Online:
2024-09-11
Published:
2024-09-11
CLC Number:
ZHOU Yang, LI Yingzhuang, HAN Xinjun, FU Hao, LI Zhihui. Advances on soybean cyst nematode disease[J]. Journal of Zhejiang Agricultural Sciences, 2024, 65(9): 2165-2169.
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[1] | PENG D L, JIANG R, PENG H, et al. Soybean cyst nematodes: a destructive threat to soybean production in China[J]. Phytopathology Research, 2021, 3(1): 19. |
[2] | WRATHER J A, KOENNING S R. Estimates of disease effects on soybean yields in the United States 2003 to 2005[J]. Journal of Nematology, 2006, 38(2): 173-180. |
[3] | 吴伟. 大豆胞囊线虫病的发生与防治[J]. 农村科技, 2011(1): 30. |
[4] | 石红利. 大豆孢囊线虫的生物学特性及诱导抗性研究[D]. 杭州: 浙江大学, 2013. |
[5] | NIBLACK T L, ARELLI P R, NOEL G R, et al. A revised classification scheme for genetically diverse populations of Heterodera glycines[J]. Journal of Nematology, 2002, 34(4): 279-288. |
[6] | 练云, 卢为国. 大豆抗SCN机制及抗病相关基因研究进展[J]. 中国油料作物学报, 2013, 35(6): 727-732. |
[7] | 于宝泉, 高林. 大豆胞囊线虫病发生和防治研究进展[J]. 大豆科技, 2012(3): 29-33. |
[8] | ICHINOHE M. Studies on the morphology and ecology of the soy bean nematode, Heterodera glycines, in Japan[J]. Report of the Hokkaido National Agricultural Experiment Station, 1955. |
[9] | WINSTEAD N N, SKOTLAND C B, SASSERr J N. Soybean cyst nematode in North Carolina[J]. Plant Disease Reporter, 1955. |
[10] | YAN G P, BAIDOO R. Current research status of Heterodera glycines resistance and its implication on soybean breeding[J]. Engineering, 2018, 4(4): 226-242. |
[11] | 宋美静, 朱晓峰, 王东, 等. 我国大豆主产区大豆胞囊线虫群体分布及致病性分化研究[J]. 大豆科学, 2016, 35(4): 630-636. |
[12] | 孟凡立, 于瑾瑶, 李春杰, 等. 东北地区大豆孢囊线虫病发生和防控技术研究进展[J]. 东北农业大学学报, 2022, 53(1): 87-94. |
[13] | PENG D L, PENG H, WU D Q, et al. First report of soybean cyst nematode (Heterodera glycines) on soybean from Gansu and Ningxia China[J]. Plant Disease, 2016, 100(1): 229. |
[14] | WANG D, DUAN Y X, WANG Y Y, et al. First report of soybean cyst nematode, Heterodera glycines, on soybean from Guangxi, Guizhou, and Jiangxi Provinces, China[J]. Plant Disease, 2015, 99(6): 893. |
[15] | 张悦. 浅谈大豆胞囊线虫的防治[J]. 现代化农业, 2015(7): 10. |
[16] | 曹广禄. 大豆胞囊线虫病的发病规律及常见的防治方法[J]. 新农业, 2021(8): 50-51. |
[17] | ANAND S C. Identification of additional soybean germplasm with resistance to race 3 of the soybean cyst nematode[J]. Plant Disease, 1984, 68(1): 593. |
[18] | KADAM S, VUONG T D, QIU D, et al. Genomic-assisted phylogenetic analysis and marker development for next generation soybean cyst nematode resistance breeding[J]. Plant Science, 2016, 242: 342-350. |
[19] | 刘冰. 大豆胞囊线虫病的发生条件及防治措施[J]. 现代农业科技, 2011(3): 186. |
[20] | 孔祥超, 李红梅, 耿甜, 等. 大豆种质资源对大豆孢囊线虫3号和4号生理小种的抗性鉴定[J]. 植物保护, 2012, 38(1): 146-150. |
[21] | 段玉玺, 周博, 陈立杰, 等. 抗大豆胞囊线虫3号生理小种(SCN3)核心种质代表性分析[J]. 大豆科学, 2008, 27(3): 366-372. |
[22] | 魏荷, 练云, 李金英, 等. 抗胞囊线虫2号生理小种大豆种质的评价和利用[J]. 植物遗传资源学报, 2022, 23(2): 450-459. |
[23] | 练云, 周扬, 雷晨芳, 等. 一种提高实验重复性的大豆胞囊线虫抗性鉴定方法[J]. 浙江农业科学, 2022, 63(10): 2359-2363, 2367. |
[24] | 潘凤娟, 韩晓增, 邹文秀. 春大豆长期连作对土壤线虫群落结构和食物网的影响[J]. 大豆科学, 2017, 36(4): 606-613. |
[25] | 李文娇, 杨殿林, 赵建宁, 等. 长期连作和轮作对农田土壤生物学特性的影响研究进展[J]. 中国农学通报, 2015, 31(3): 173-178. |
[26] | GRABAU Z J, VETSCH J A, CHEN S Y. Effects of fertilizer, nematicide, and tillage on plant-parasitic nematodes and yield in corn and soybean[J]. Agronomy Journal, 2017, 109(4): 1651-1662. |
[27] | 姜伟, 张海英, 李金鸿, 等. 5种药剂对大豆孢囊线虫孵化及2龄幼虫室内毒力的影响[J]. 甘肃农业大学学报, 2021, 56(4): 36-42. |
[28] | 宋洁, 许艳丽, 姚钦, 等. 尿素对大豆胞囊线虫的抑制作用[J]. 大豆科学, 2012, 31(5): 784-788. |
[29] | 许艳丽, 鲁建聪, 宋洁. 寄生真菌发酵液对大豆胞囊线虫3号生理小种毒力和防效研究[J]. 大豆科学, 2020, 39(4): 595-604. |
[30] | 王超, 郭坚华, 席运官, 等. 拮抗细菌在植物病害生物防治中应用的研究进展[J]. 江苏农业科学, 2017, 45(18): 1-6. |
[31] | 许艳丽, 鲁建聪, 宋洁, 等. 混合寄生真菌发酵液对大豆胞囊线虫的毒力和防效[J]. 土壤与作物, 2018, 7(2): 248-256. |
[32] | GOULD F, BROWN Z S, KUZMA J. Wicked evolution: can we address the sociobiological dilemma of pesticide resistance?[J]. Science, 2018, 360(6390): 728-732. |
[33] | 陈秀菊, 李惠霞, 徐志鹏, 等. 3株生防真菌的杀线虫活性及种类鉴定[J]. 大豆科学, 2019, 38(4): 576-583. |
[34] | SIKANDAR A, ZHANG M Y, WANG Y Y, et al. In vitro evaluation of Penicillium chrysogenum Snef1216 against Meloidogyne incognita (root-knot nematode)[J]. Scientific Reports, 2020, 10: 8342. |
[35] | 金贺, 夏诗宁, 王旭东, 等. 微紫青霉(Penicillium janthinellum)Snef1650诱导大豆胞囊线虫防治效果及GmCAD应答响应[J]. 中国油料作物学报, 2023, 45(3): 583-591. |
[36] | LIU K, NEWMAN M, MCINROY J A, et al. Selection and assessment of plant growth-promoting rhizobacteria for biological control of multiple plant diseases[J]. Phytopathology, 2017, 107(8): 928-936. |
[37] | 孙华, 段玉玺, 陈立杰, 等. 大豆根际促生菌Sneb207对不同种类线虫毒性的研究[J]. 大豆科学, 2009, 28(4): 683-686. |
[38] | 周园园, 郭永霞, 段玉玺, 等. 巨大芽孢杆菌Sneb207诱导大豆抗胞囊线虫病的防效及光合响应[J]. 大豆科学, 2020, 39(4): 605-611. |
[39] | GAO H J, QI G F, YIN R, et al. Bacillus cereus strain S2 shows high nematicidal activity against Meloidogyne incognita by producing sphingosine[J]. Scientific Reports, 2016, 6: 28756. |
[40] | 佚名. 先正达生物杀线剂Clariva PN获巴西登记[J]. 农药, 2017, 56(9): 654. |
[41] | 张超群, 戴建荣. 放线菌的研究现况与展望[J]. 中国病原生物学杂志, 2019, 14(1): 110-113, 122. |
[42] | 陈井生, 陈立杰, 刘大伟, 等. 放线菌Snea49的种类鉴定及对胞囊线虫的活性评价[J]. 大豆科学, 2010, 29(4): 663-665. |
[43] | 项鹏, 郝建国, 张武, 等. 大豆胞囊线虫生防放线菌的田间防效评估及其鉴定[J]. 中国油料作物学报, 2017, 39(2): 234-238. |
[44] | ROSSKOPF E N, CHELLEMI D O, KOKALIS-BURELLE N, et al. Alternatives to methyl bromide: a Florida perspective[J]. APSnet Feature Articles, 2005, 6(1): 19. |
[45] | 于海侠. 浅谈大豆胞囊线虫病害的防治[J]. 黑龙江科技信息, 2012(10): 226. |
[46] | WU H Y, LUO M, ZHANG L Y, et al. Nematicidal activity of fosthiazate against soybean cyst nematode Heterodera glycines[J]. Journal of Nematology, 2019, 51: 1-9. |
[47] | COOK D E, LEE T G, GUO X L, et al. Copy number variation of multiple genes at Rhg1 mediates nematode resistance in soybean[J]. Science, 2012, 338(6111): 1206-1209. |
[48] | LIU S M, KANDOTH P K, WARREN S D, et al. A soybean cyst nematode resistance gene points to a new mechanism of plant resistance to pathogens[J]. Nature, 2012, 492: 256-260. |
[49] | LEE T G, KUMAR I, DIERS B W, et al. Evolution and selection of Rhg1, a copy-number variant nematode-resistance locus[J]. Molecular Ecology, 2015, 24(8): 1774-1791. |
[50] | AFZAL A J, NATARAJAN A, SAINI N, et al. The nematode resistance allele at the rhg1 locus alters the proteome and primary metabolism of soybean roots[J]. Plant Physiology, 2009, 151(3): 1264-1280. |
[51] | BUTLER K J, CHEN S Y, SMITH J M, et al. Soybean resistance locus Rhg1 confers resistance to multiple cyst nematodes in diverse plant species[J]. Phytopathology, 2019, 109(12): 2107-2115. |
[52] | 汪瑞. α-SNAP互作蛋白在大豆与大豆孢囊线虫互作中的机制研究[D]. 武汉: 华中农业大学, 2019. |
[53] | 韩少杰, 郑经武. 寄主对大豆孢囊线虫抗性相关基因功能研究进展[J]. 生物技术通报, 2021, 37(7): 14-24. |
[54] | SHI Z, LIU S M, NOE J, et al. SNP identification and marker assay development for high-throughput selection of soybean cyst nematode resistance[J]. BMC Genomics, 2015, 16(1): 314. |
[55] | WU X Y, ZHOU G C, CHEN Y X, et al. Soybean cyst nematode resistance emerged via artificial selection of duplicated serine hydroxymethyltransferase genes[J]. Frontiers in Plant Science, 2016, 7: 998. |
[56] | HEIL S G, VAN DER PUT N M, WAAS E T, et al. Is mutated serine hydroxymethyltransferase (SHMT) involved in the etiology of neural tube defects?[J]. Molecular Genetics and Metabolism, 2001, 73(2): 164-172. |
[57] | KIM M, HYTEN D L, BENT A F, et al. Fine mapping of the SCN resistance locus rhg1-b from PI 88788[J]. The Plant Genome, 2010, 3(2): 81-89. |
[58] | 练云, 李海朝, 李金英, 等. 利用KASP标记筛选含rhg1和Rhg4位点的大豆抗病资源[J]. 植物遗传资源学报, 2021, 22(2): 399-406. |
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