Acta Prataculturae Sinica ›› 2024, Vol. 33 ›› Issue (1): 126-137.DOI: 10.11686/cyxb2023092
Jian-ling ZHOU(), Qiao-lan LIANG(), Lie-xin WEI, Qi-yu ZHOU, Long TIAN, Ying-e CHEN, Cun-ying WANG, Guo-yin ZHANG
Received:
2023-04-02
Revised:
2023-05-10
Online:
2024-01-20
Published:
2023-11-23
Contact:
Qiao-lan LIANG
Jian-ling ZHOU, Qiao-lan LIANG, Lie-xin WEI, Qi-yu ZHOU, Long TIAN, Ying-e CHEN, Cun-ying WANG, Guo-yin ZHANG. Detection of AMV pathogen of alfalfa virus diseases with different symptom types and its host ranges[J]. Acta Prataculturae Sinica, 2024, 33(1): 126-137.
不同症状类型苜蓿病样 Different symptom types of alfalfa disease-like | 病叶占比 Proportion of diseased leaves (%) | 叶绿素含量Chlorophyll content (mg·g-1 FW) | |||
---|---|---|---|---|---|
叶绿素a Chlorophyll a | 叶绿素b Chlorophyll b | 总叶绿素 Total chlorophyll | 类胡萝卜素 Carotenoid | ||
对照CK | 0 | 1.50±0.05aA | 1.36±0.03aA | 2.86±0.16aA | 1.38±0.02eE |
轻花叶型Light mosaic | 11.81 | 1.19±0.07bB | 0.54±0.27bB | 1.74±0.10bB | 1.88±0.05dD |
重花叶型Severe mosaic | 24.41 | 0.81±0.11dC | 0.39±0.06dD | 1.21±0.01cD | 2.43±0.06bB |
叶片边缘褪绿黄化型Chlorotic type of leaf margin | 21.26 | 1.07±0.06cB | 0.48±0.05cC | 1.55±0.12bBC | 2.10±0.12cC |
叶片畸形皱缩花叶矮化型Deformed and shrunken leaves, mosaic dwarf type | 42.52 | 0.63±0.26eD | 0.32±0.06eE | 0.96±0.03cCD | 3.23±0.03aA |
Table 1 The rate of diseased leaves and chlorophyll content in alfalfa disease-like with different symptom types
不同症状类型苜蓿病样 Different symptom types of alfalfa disease-like | 病叶占比 Proportion of diseased leaves (%) | 叶绿素含量Chlorophyll content (mg·g-1 FW) | |||
---|---|---|---|---|---|
叶绿素a Chlorophyll a | 叶绿素b Chlorophyll b | 总叶绿素 Total chlorophyll | 类胡萝卜素 Carotenoid | ||
对照CK | 0 | 1.50±0.05aA | 1.36±0.03aA | 2.86±0.16aA | 1.38±0.02eE |
轻花叶型Light mosaic | 11.81 | 1.19±0.07bB | 0.54±0.27bB | 1.74±0.10bB | 1.88±0.05dD |
重花叶型Severe mosaic | 24.41 | 0.81±0.11dC | 0.39±0.06dD | 1.21±0.01cD | 2.43±0.06bB |
叶片边缘褪绿黄化型Chlorotic type of leaf margin | 21.26 | 1.07±0.06cB | 0.48±0.05cC | 1.55±0.12bBC | 2.10±0.12cC |
叶片畸形皱缩花叶矮化型Deformed and shrunken leaves, mosaic dwarf type | 42.52 | 0.63±0.26eD | 0.32±0.06eE | 0.96±0.03cCD | 3.23±0.03aA |
不同症状类型苜蓿病样 Different symptom types of alfalfa disease-like | 提纯前Before purification | 检出率 Proportion (%) | 提纯后After purification | ||
---|---|---|---|---|---|
OD值 OD value | AMV浓度AMV concentration (pg·mL-1) | OD值 OD value | AMV浓度AMV concentration (pg·mL-1) | ||
对照CK | 0.05 (-) | 0 | 0 | 0 | 0 |
轻花叶型Light mosaic | 0.45 (+) | 102.27 | 100 | 1.79 | 206.18 |
重花叶型Severe mosaic | 0.51 (+) | 106.10 | 100 | 1.98 | 238.11 |
叶片边缘褪绿黄化型Chlorotic type of leaf margin | 0.62 (+) | 131.26 | 100 | 1.93 | 297.68 |
叶片畸形皱缩花叶矮化型Deformed and shrunken leaves, mosaic dwarf type | 1.16 (+) | 252.96 | 100 | 2.53 | 343.43 |
Table 2 DAS-ELISA detection of AMV of alfalfa disease-like with different symptom types before and after purification
不同症状类型苜蓿病样 Different symptom types of alfalfa disease-like | 提纯前Before purification | 检出率 Proportion (%) | 提纯后After purification | ||
---|---|---|---|---|---|
OD值 OD value | AMV浓度AMV concentration (pg·mL-1) | OD值 OD value | AMV浓度AMV concentration (pg·mL-1) | ||
对照CK | 0.05 (-) | 0 | 0 | 0 | 0 |
轻花叶型Light mosaic | 0.45 (+) | 102.27 | 100 | 1.79 | 206.18 |
重花叶型Severe mosaic | 0.51 (+) | 106.10 | 100 | 1.98 | 238.11 |
叶片边缘褪绿黄化型Chlorotic type of leaf margin | 0.62 (+) | 131.26 | 100 | 1.93 | 297.68 |
叶片畸形皱缩花叶矮化型Deformed and shrunken leaves, mosaic dwarf type | 1.16 (+) | 252.96 | 100 | 2.53 | 343.43 |
项目 Item | 寄主 Host | 平均病情指数 Average disease index | 平均AMV浓度 Average AMV concentration (pg·mL-1) |
---|---|---|---|
禾本科Poaceae | 大麦H. vulgare | 24.17±0.45a | 191.54±0.89b |
小麦T. aestivum | 21.23±0.64ab | 141.68±0.78c | |
玉米Z. mays | 19.06±0.35bc | 200.60±0.74a | |
燕麦A. sativa | 17.78±1.81c | 121.28±0.96d | |
平均Mean | 20.56±0.84D | 163.78±0.99E | |
茄科Solanaceae | 本氏烟N. benthamiana | 31.56±2.35c | 227.80±0.70a |
心叶烟N. glutinosa | 34.84±1.24b | 158.92±0.73g | |
普通烟N. tabacum | 34.44±0.59b | 193.81±1.43e | |
番茄L. esculentum | 35.04±0.67b | 216.47±0.89c | |
辣椒C. annuum | 27.78±0.79d | 205.14±1.38d | |
茄子Solanum melongena | 38.67±1.15a | 155.27±0.93f | |
龙葵S. nigrum | NI | NI | |
马铃薯S. tuberosum | 39.44±1.55a | 221.00±1.39b | |
平均Mean | 34.54±1.35B | 187.97±1.61D | |
豆科Fabaceae | 菜豆P. vulgaris | 32.67±1.01d | 234.60±1.48b |
豇豆V. unguiculata | 36.89±0.80b | 257.26±1.05a | |
豌豆P. sativum | 35.11±1.45d | 185.02±0.79d | |
蚕豆V. faba | 39.21±0.92a | 176.34±1.02e | |
地三叶T. subterraneum | 24.57±0.62e | 187.29±1.29d | |
苜蓿M. sativa | 35.33±1.33c | 194.09±1.59c | |
平均Mean | 33.96±0.58B | 205.77±0.59B | |
葫芦科Cucurbitaceae | 西葫芦C. pepo | 42.11±0.80a | 316.19±1.14a |
黄瓜Cucumis sativus | 38.00±0.38b | 109.95±1.40b | |
平均Mean | 40.06±0.72A | 213.07±1.27A | |
菊科Asteraceae | 莴苣L. sativa | 36.44±1.89a | 148.48±0.85a |
向日葵H. annuus | 34.22±0.58a | 137.56±0.73c | |
翅果菊P. indica | 37.71±1.15a | 142.73±0.90b | |
菊芋H. tuberosus | NI | NI | |
平均Mean | 36.12±1.20B | 142.92±1.54F | |
十字花科Brassicaceae | 大白菜B. pekinensis | NI | NI |
上海青B. chinensis | NI | NI | |
平均Mean | NI | NI | |
苋科Amaranthaceae | 千日红G. globosa | 39.71±0.69a | 121.07±0.70a |
鸡冠花C. cristata | 34.71±0.49b | 98.74±1.05b | |
平均Mean | 37.21±1.08B | 109.91±1.02G | |
藜科Chenopodiaceae | 昆诺藜C. quinoa | 31.46±0.68a | 174.24±0.74b |
灰绿藜Chenopodium glaucum | 24.16±0.57c | 241.78±0.94a | |
苋色藜C. amaranticolor | 27.64±0.63b | 161.86±0.91b | |
平均Mean | 27.75±0.91C | 192.63±1.17C | |
萝藦科Asclepiadaceae | 鹅绒藤C. chinense | NI | NI |
Table 3 Incidence of different hosts after AMV infection
项目 Item | 寄主 Host | 平均病情指数 Average disease index | 平均AMV浓度 Average AMV concentration (pg·mL-1) |
---|---|---|---|
禾本科Poaceae | 大麦H. vulgare | 24.17±0.45a | 191.54±0.89b |
小麦T. aestivum | 21.23±0.64ab | 141.68±0.78c | |
玉米Z. mays | 19.06±0.35bc | 200.60±0.74a | |
燕麦A. sativa | 17.78±1.81c | 121.28±0.96d | |
平均Mean | 20.56±0.84D | 163.78±0.99E | |
茄科Solanaceae | 本氏烟N. benthamiana | 31.56±2.35c | 227.80±0.70a |
心叶烟N. glutinosa | 34.84±1.24b | 158.92±0.73g | |
普通烟N. tabacum | 34.44±0.59b | 193.81±1.43e | |
番茄L. esculentum | 35.04±0.67b | 216.47±0.89c | |
辣椒C. annuum | 27.78±0.79d | 205.14±1.38d | |
茄子Solanum melongena | 38.67±1.15a | 155.27±0.93f | |
龙葵S. nigrum | NI | NI | |
马铃薯S. tuberosum | 39.44±1.55a | 221.00±1.39b | |
平均Mean | 34.54±1.35B | 187.97±1.61D | |
豆科Fabaceae | 菜豆P. vulgaris | 32.67±1.01d | 234.60±1.48b |
豇豆V. unguiculata | 36.89±0.80b | 257.26±1.05a | |
豌豆P. sativum | 35.11±1.45d | 185.02±0.79d | |
蚕豆V. faba | 39.21±0.92a | 176.34±1.02e | |
地三叶T. subterraneum | 24.57±0.62e | 187.29±1.29d | |
苜蓿M. sativa | 35.33±1.33c | 194.09±1.59c | |
平均Mean | 33.96±0.58B | 205.77±0.59B | |
葫芦科Cucurbitaceae | 西葫芦C. pepo | 42.11±0.80a | 316.19±1.14a |
黄瓜Cucumis sativus | 38.00±0.38b | 109.95±1.40b | |
平均Mean | 40.06±0.72A | 213.07±1.27A | |
菊科Asteraceae | 莴苣L. sativa | 36.44±1.89a | 148.48±0.85a |
向日葵H. annuus | 34.22±0.58a | 137.56±0.73c | |
翅果菊P. indica | 37.71±1.15a | 142.73±0.90b | |
菊芋H. tuberosus | NI | NI | |
平均Mean | 36.12±1.20B | 142.92±1.54F | |
十字花科Brassicaceae | 大白菜B. pekinensis | NI | NI |
上海青B. chinensis | NI | NI | |
平均Mean | NI | NI | |
苋科Amaranthaceae | 千日红G. globosa | 39.71±0.69a | 121.07±0.70a |
鸡冠花C. cristata | 34.71±0.49b | 98.74±1.05b | |
平均Mean | 37.21±1.08B | 109.91±1.02G | |
藜科Chenopodiaceae | 昆诺藜C. quinoa | 31.46±0.68a | 174.24±0.74b |
灰绿藜Chenopodium glaucum | 24.16±0.57c | 241.78±0.94a | |
苋色藜C. amaranticolor | 27.64±0.63b | 161.86±0.91b | |
平均Mean | 27.75±0.91C | 192.63±1.17C | |
萝藦科Asclepiadaceae | 鹅绒藤C. chinense | NI | NI |
1 | Fang Q E, Li Y B. Classification and distribution of domestic species of genus Medicago in China. Grassland and Prataculture, 2019, 31(3): 1-7. |
方强恩, 李宇泊. 国产苜蓿属植物的分类与资源分布特征. 草原与草业, 2019, 31(3): 1-7. | |
2 | Wang W X. Countermeasures for the development of alfalfa planting industry in China. Journal of Beijing University of Agriculture, 2022, 37(1): 117-120. |
王文信. 中国苜蓿种植业发展的对策. 北京农学院学报, 2022, 37(1): 117-120. | |
3 | Liang Q L, Wei L X, Xu B L, et al. Study of viruses co-infecting white clover (Trifolium repens) in China. Journal of Integrative Agriculture, 2017, 16(9): 1990-1998. |
4 | Liu X X, Li B Y, Aziguli M, et al.Harm and control of alfalfa virus disease. Rural Science & Technology, 2018(10): 25-28. |
刘学学, 李宝义, 阿孜古丽·木汉买提, 等. 紫花苜蓿病毒病的危害及其防治. 农村科技, 2018(10): 25-28. | |
5 | Li J, Shang Q X, Liu Y Q, et al.Occurrence, distribution, and transmission of alfalfa viruses in China. Viruses, 2022, 14(7): 1519. |
6 | Guo Z P, Feng C S, Zhang J X, et al. Field resistance to alfalfa mosaic virus among 30 alfalfa varieties. Acta Prataculturae Sinica, 2019, 28(4): 157-167. |
郭志鹏, 冯长松, 张靖雪, 等. 30个紫花苜蓿品种对苜蓿花叶病毒病的田间抗性初步研究. 草业学报, 2019, 28(4): 157-167. | |
7 | Zhou Q Y, Liang Q L, Han L. Symptoms and pathogen detection of alfalfa virus disease. Pratacultural Science, 2016, 33(7): 1297-1305. |
周其宇, 梁巧兰, 韩亮. 紫花苜蓿病毒病症状类型及病原检测. 草业科学, 2016, 33(7): 1297-1305. | |
8 | Nan Z B. Alfalfa diseases and their integrated control system in China. Animal Science & Veterinary Medicine, 2001(4): 81-84. |
南志标. 我国的苜蓿病害及其综合防治体系. 动物科学与动物医学, 2001(4): 81-84. | |
9 | Carrasco J L, Sánchez-Navarro J A, Elena S F. Exploring the role of cellular homologous of the 30K-superfamily of plant virus movement proteins. Virus Research, 2019, 262: 54-61. |
10 | Park C Y, Min H G, Shin G E, et al.First report of alfalfa mosaic virus in Ligularia fischeri in Korea. Journal of Plant Pathology, 2018, 100(1): 133. |
11 | Shi M D, Li T T, Zhang N, et al. New advances in the interaction between plant virus encoding proteins and host related factors// “Innovation driven and modern plant protection” -proceedings of the 11th national member congress and 2013 annual academic conference of the Chinese plant protection society. Beijing: China Agricultural Science and Technology Press, 2013: 20-24. |
史梦蝶, 李婷婷, 张宁, 等. 植物病毒编码蛋白与寄主相关因子相互作用研究新进展//“创新驱动与现代植保”——中国植物保护学会第十一次全国会员代表大会暨2013年学术年会论文集. 北京: 中国农业科学技术出版社, 2013: 20-24. | |
12 | Zhang C, Gong Q Y, Zhang Y Q, et al. Viral elements and host factors involved in symptom development of plant virus. Journal of Agricultural Science and Technology, 2014, 16(2): 44-49. |
张超, 龚前园, 张永强, 等. 介导植物病毒病症状发生的病毒元件与寄主因子. 中国农业科技导报, 2014, 16(2): 44-49. | |
13 | Cheng S F, Liang Q L, Wei L X, et al. Detection of alfalfa mosaic virus and white clover mosaic virus in alfalfa and their effects on physiological and biochemical characteristics of alfalfa plants. Acta Prataculturae Sinica, 2020, 29(12): 140-149. |
程守丰, 梁巧兰, 魏列新, 等. 苜蓿不同品种AMV和WCMV带毒检测及生理生化特性研究. 草业学报, 2020, 29(12): 140-149. | |
14 | Guo X Q, Wen F J, Zhu H C. Effect of PVY infection on photosynthesis of tobacco. Journal of Zhejiang University (Agriculture and Life Sciences), 2000(1): 77-80. |
郭兴启, 温孚江, 朱汉城. 烟草感染马铃薯Y病毒(PVY)后光合作用的变化规律. 浙江大学学报(农业与生命科学版), 2000(1): 77-80. | |
15 | Guo X Q, Li X D, Zhu H C. et al. Effects of PVY-infection on photosynthesis of tobacco. Acta Phytopathologica Sinica, 2000(1): 94-95. |
郭兴启, 李向东, 朱汉城, 等. 马铃薯Y病毒(PVY)的侵染对烟草叶片光合作用的影响. 植物病理学报, 2000(1): 94-95. | |
16 | Xu B L, Liang Q L, Wei L X, et al. Ultrastructural alteration studies of ornamental lily infected with cucumber mosaic virus. Acta Phytopathologica Sinica, 2005(4): 370-373. |
徐秉良, 梁巧兰, 魏列新, 等. 观赏百合感染黄瓜花叶病毒后的超微病变研究. 植物病理学报, 2005(4): 370-373. | |
17 | Wu S. Indoor and field evaluation of cross protection against tobacco virus disease based on mild vaccines from cucumber mosaic virus. Tai’an: Shandong Agricultural University, 2022. |
吴松. 黄瓜花叶病毒为骨架的弱毒疫苗对烟草病毒病的室内及田间防治效果评价. 泰安: 山东农业大学, 2022. | |
18 | Zhang W, Wei X Y, Gao Y L, et al. Infection identification and pathogenicity analysis of different potato virus A isolates. Chinese Potato Journal, 2021, 35(6): 568-574. |
张威, 魏旭言, 高艳玲, 等. 马铃薯A病毒不同分离物的侵染鉴定及致病力分析. 中国马铃薯, 2021, 35(6): 568-574. | |
19 | Yue Y, Liang Q L, Wei L X, et al. Effects of alfalfa mosaic virus and white clover mosaic virus co-infection on the contents of five endogenous hormones in Nicotiana benthamiana. Pratacultural Science, 2021, 38(11): 2255-2265. |
岳阳, 梁巧兰, 魏列新, 等. 苜蓿花叶病毒和白三叶草花叶病毒复合侵染对本氏烟中5种激素含量的影响. 草业科学, 2021, 38(11): 2255-2265. | |
20 | Ding F G, Hou Z H, Lu Y F, et al. Comparative study on determination of chlorophyll in different tissues and organs of wheat. Journal of Northeast Agricultural Sciences, 2022, 47(5): 111-115. |
丁富功, 侯泽豪, 卢奕霏, 等. 小麦不同组织器官叶绿素测定方法的比较研究. 东北农业科学, 2022, 47(5): 111-115. | |
21 | Chen Y X. Purification and electron microscopic observation of alfalfa mosaic virus and its early invasion in tobacco. Journal of Nanjing Agricultural University, 1984(3): 54-57. |
陈永萱. 苜蓿花叶病毒的提纯、电镜观察和侵入初期在烟草体内的转移. 南京农业大学学报, 1984(3): 54-57. | |
22 | Jin L L. Complete genomic sequence and biological characteristics of a new alfalfa mosaic virus isolate. Hangzhou: Zhejiang Sci-Tech University, 2011. |
金磊磊. 一株苜蓿花叶病毒的全基因组序列及其寄主生物学研究. 杭州: 浙江理工大学, 2011. | |
23 | Chen Y E, Liang Q L, Wei L X, et al. Study on the factors underlying the epidemic of Nicotiana benthamiana co-infected by alfalfa mosaic virus and white clover mosaic virus. Pratacultural Science, 2023, 40(1): 90-100. |
陈应娥, 梁巧兰, 魏列新, 等. 苜蓿花叶病毒和白三叶草花叶病毒复合侵染本氏烟的发病流行因素. 草业科学, 2023, 40(1): 90-100. | |
24 | He W Q. Creation and application of monoclonal antibodies against pepino mosaic virus and alfalfa mosaic virus. Hangzhou: Zhejiang University, 2021. |
何宛芹. 凤果花叶病毒和苜蓿花叶病毒单克隆抗体的创制及其应用. 杭州: 浙江大学, 2021. | |
25 | Rahoutei J, García-Luque I, Barón M. Inhibition of photosynthesis by viral infection: effect on PSⅡ structure and function. Physiologia Plantarum, 2000, 110(2): 286-292. |
26 | Roberts P L, Wood K R. Effects of a severe (P6) and a mild (W) strain of cucumber mosaic virus on tobacco leaf chlorophyll, starch and cell ultrastructure. Physiological Plant Pathology, 1982, 21(1): 31-37. |
27 | Han Y Z, Hu H Q, Yu Y X, et al. Effects of alfalfa mosaic disease on photosynthetic performance, growth, and forage quality of Medicago sativa. Pratacultural Science, 2019, 36(8): 2061-2068. |
韩玉竹, 胡鸿晴, 玉永雄, 等. 苜蓿花叶病对紫花苜蓿光合作用、生长及饲草品质的影响. 草业科学, 2019, 36(8): 2061-2068. | |
28 | Qiao Y, Li H F, Wong S M, et al. Plastocyanin transit peptide interacts with potato virus X coat protein, while silencing of plastocyanin reduces coat protein accumulation in chloroplasts and symptom severity in host plants. Molecular Plant-Microbe Interactions, 2009, 22(12): 1523-1534. |
29 | Shalla T A, Petersen L J, Giunchedi L. Partial characterization of virus-like particles in chloroplasts of plants infected with the U5 strain of TMV. Virology, 1975, 66(1): 94-105. |
30 | Zhang Z K, Zheng K Y, Wang T T, et al. Plant virions in situ aggregated characterization in the host cells. Journal of Chinese Electron Microscopy Society, 2019, 38(5): 531-541. |
张仲凯, 郑宽瑜, 王田田, 等. 植物病毒粒体在寄主细胞中的原位聚集特征. 电子显微学报, 2019, 38(5): 531-541. | |
31 | Zhang Z, Zheng K, Dong J, et al. Clustering and cellular distribution characteristics of virus particles of tomato spotted wilt virus and tomato zonate spot virus in different plant hosts. Virology Journal, 2016, 13(1): 1-9. |
32 | Wang T T, Wei Z L, Xiong Z Q, et al.Asparagus lettuce infected with TSWV——the characteristic of virions distribution and subcellular pathological changes. Journal of Chinese Electron Microscopy Society, 2023, 42(1): 53-61. |
王田田, 魏治镭, 熊智琦, 等. 莴笋感染番茄斑萎病毒(TSWV)——病毒粒子分布与亚细胞病变特征. 电子显微学报, 2023, 42(1): 53-61. | |
33 | Li J, Gu H, Liu Y, et al. RNA-seq reveals plant virus composition and diversity in alfalfa, thrips, and aphids in Beijing, China. Archives of Virology, 2021, 166(6): 1711-1722. |
34 | Guo Z P, Zhang T T, Chen Z, et al.Occurrence, distribution, and genetic diversity of alfalfa (Medicago sativa L.) viruses in four major alfalfa-producing provinces of China. Frontiers in Microbiology, 2022, 13(1): 4035-4051. |
35 | Xu H, Nie J. Identification, characterization, and molecular detection of alfalfa mosaic virus in potato. Phytopathology, 2006, 96(11): 1237-1242. |
36 | Cécile D, Eric V, Benoît M, et al. Prevalence and molecular diversity of the main viruses infecting cucurbit and solanaceous crops in Azerbaijan. European Journal of Plant Pathology, 2019, 153(2): 359-369. |
37 | Nemchinov L G, Irish B M, Grinstead S, et al. Diversity of the virome associated with alfalfa (Medicago sativa L.) in the US Pacific Northwest. Scientific Reports, 2022, 12(1): 8726. |
38 | Wu X Y, Jiang X, Wang X Y, et al. Identification of the resistance of soybean varieties to alfalfa mosaic virus. Journal of Northeast Agricultural University, 2023, 54(2): 1-7. |
武晓云, 姜雪, 王馨玥, 等. 大豆品种对苜蓿花叶病毒的抗性鉴定. 东北农业大学学报, 2023, 54(2): 1-7. | |
39 | Joop V L, Zorica D, Jule G, et al. Alfalfa mosaic virus infects the tropical legume Desmanthus virgatus in Australia and the potential role of the cowpea aphid (Aphis craccivora) as the virus vector. Australasian Plant Disease Notes, 2019, 14(1): 1-4. |
40 | Halabi M H, Oladokun J O, Nath P D. Evidence of occurring alfalfa mosaic virus in potato plants in Assam, India. Virus Disease, 2019, 30: 571-573. |
41 | Abdalla O A, Al-Shahwan I M, Al-Saleh M A, et al.Molecular characterization of alfalfa mosaic virus (AMV) isolates in alfalfa and other plant species in different regions in Saudi Arabia. European Journal of Plant Pathology, 2020, 156: 603-613. |
42 | Li Z N, Lu X K, Sun P P, et al.Complete genome sequence of alfalfa mosaic virus, infecting Mentha haplocalyx in China. Phytopathologia Mediterranea, 2019, 58(3): 663-669. |
43 | Song S, Liu H, Zhang J H, et al. Identification and characterization of complete genome sequence of alfalfa mosaic virus infecting Gynostemma pentaphyllum. European Journal of Plant Pathology, 2019, 154(2): 491-497. |
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