Scientia Agricultura Sinica ›› 2020, Vol. 53 ›› Issue (6): 1154-1165.doi: 10.3864/j.issn.0578-1752.2020.06.007

• PLANT PROTECTION • Previous Articles     Next Articles

Pathogenicity and Genetic Diversity of Bipolaria maydis in Sanya, Hainan and Huang-Huai-Hai Region

JiaYing CHANG,ShuSen LIU,Jie SHI(),Ning GUO,HaiJian ZHANG,HongXia MA,ChunFeng YANG   

  1. Plant Protection Institute of Hebei Academy of Agricultural and Forestry Sciences/Key Laboratory of IPM on Crops in Northern Region of North China, Ministry of Agriculture and Rural Affairs/IPM Centre of Hebei Province, Baoding 071000, Hebei
  • Received:2019-09-04 Accepted:2019-10-23 Online:2020-03-16 Published:2020-04-09
  • Contact: Jie SHI E-mail:shij99@163.com

Abstract:

【Objective】The objective of this study is to clarify the pathogenicity differences, genetic diversity and relationship among the Bipolaria maydis strains from southern maize breeding base of Sanya, Hainan and Huang-Huai-Hai region, and to provide a theoretical basis for screening resistance of maize varieties under natural disease conditions in the breeding process. It also provides a reference for the popularization and utilization of maize varieties in Huang-Huai-Hai region.【Method】The pathogens were isolated from diseased leaves collected from Sanya, Hainan and Huang-Huai-Hai region, and a total of 61 strains were obtained by identification of morphology and molecular biology. The pathogenicity of 61 strains was identified by an artificial spray inoculation method, and 16 primers with clear, repetitive and polymorphic bands were used for ISSR-PCR. Popgen32 software was used to calculate the genetic distance and genetic similarity among the populations, and NTsys2.10e software was used for cluster analysis and constructing a cluster map of the pathogens in Sanya, Hainan and Huang-Huai-Hai region.【Result】The results of pathogenicity test showed that there was no weak pathogenic strain and 57.1% strong pathogenic strains isolated from Sanya, Hainan, while that of Huang-Huai-Hai region accounted for 47.5% and 17.5%, respectively. The results of genetic diversity analysis showed that the Nei’s gene diversity index (H) was 0.2820 and Shannon’s information index (I) was 0.4197 on the average level of population, indicating that there was a certain genetic variation in the pathogen. The genetic similarity coefficient was 0.9028-0.9618 and the genetic distance was 0.0390-0.1023 among different geographical populations, which indicated that the overall genetic similarity coefficient was relatively high and the genetic distance was close, but there were still different degrees of genetic differentiation among different geographical populations. Among which, the genetic similarity coefficient of strains in Henan and Hebei was the highest (GS=0.9618), and the genetic relationship was the closest; the genetic similarity coefficient of strains in Henan and Sanya was the lowest (GS=0.9028), and the genetic relationship was relatively far. The cluster analysis showed that the strains in Sanya and Huang-Huai-Hai region were obviously divided into two groups when the similarity coefficient was 0.722.【Conclusion】There are some differences in B. maydis pathogenicity between the main maize producing area of Huang-Huai-Hai region and the southern maize breeding base of Sanya, Hainan. The isolation frequency of the strong pathogenic strains in Sanya was higher than that in Huang-Huai-Hai region. The strain populations in Huang-Huai-Hai region and Sanya region have rich genetic diversity, and genetic diversity has a certain relationship with geographical origin. The genetic relationship of the strains in the adjacent regions was relatively close. However, the genetic similarity coefficient of strains between Sanya region and Huang-Huai-Hai region is relatively high, the genetic relationship is close, and also there are some gene exchanges between the two populations. Therefore, selection of resistant maize varieties or resistant parent materials under natural conditions in southern maize breeding base of Sanya has a certain effect on the yearly increase of resistance to southern corn leaf blight in Huang-Huai-Hai region, which is helpful to reduce the occurrence of disease in Huang-Huai-Hai region.

Key words: Bipolaria maydis, southern corn leaf blight, southern maize breeding base, Sanya,Hainan, Huang-Huai-Hai region, pathogenicity, genetic diversity

Table 1

Pathogenicity of B. maydis in Huang-Huai-Hai region and Sanya, Hainan"

菌株编号
Strain number
采样地点
Collection site
平均发病面积Average disease area (%) 病斑大小
Lesion size (mm)
致病力
Pathogenicity
病斑描述 Lesion description
病斑颜色
Lesion color
形状
Shape
褐色边缘
Brown edge
HB1802-1 河北省保定市满城区
Mancheng, Baoding, Hebei
7.50 (2-8) × (1-2)
Weak
浅黄色
Light yellow
长方形Rectangle -
HB1802-2 河北省保定市满城区
Mancheng, Baoding, Hebei
16.75 (1-7) × (1-1.5)
Moderate
深褐色
Dark brown
椭圆形
Oval
+
HB1803-1 河北省邯郸市邯郸县
Handan, Handan, Hebei
7.50 (2-7) × (1-2)
Weak
黄褐色
Yellow brown
长方形Rectangle -
HB1803-2 河北省邯郸市肥乡县
Feixiang, Handan, Hebei
27.75 (2-8) × (1-2)
Moderate
浅黄色
Light yellow
长方形Rectangle +
HB1803-3 河北省邯郸市肥乡县
Feixiang, Handan, Hebei
5.00 (3-8) × (1-1.5)
Weak
黄褐色
Yellow brown
长方形Rectangle +
HB1804-1 河北省廊坊市香河县
Xianghe, Langfang, Hebei
1.75 (2-9) × (1-3)
Weak
浅黄色
Light yellow
长方形Rectangle -
HB1804-2 河北省廊坊市固安县
Guan, Langfang, Hebei
76.75 (4-7) × (1-2)
Strong
浅黄色
Light yellow
长方形Rectangle -
HB1804-3 河北省廊坊市固安县
Guan, Langfang, Hebei
4.25 (5-8) × (1-2)
Weak
黄褐色
Yellow brown
长方形Rectangle -
HB1804-4 河北省廊坊市香河县
Xianghe, Langfang, Hebei
8.75 (1-3) × (1-1)
Weak
黄褐色
Yellow brown
长方形Rectangle +
HB1804-5 河北省廊坊市固安县
Guan, Langfang, Hebei
7.75 (4-6) × (1-1.5)
Weak
浅黄色
Light yellow
椭圆形
Oval
-
HB1804-6 河北省廊坊市固安县
Guan, Langfang, Hebei
10.25 (5-7) × (1-2)
Moderate
黄褐色
Yellow brown
长方形Rectangle +
HB1807-1 河北省唐山市滦南县
Luannan, Tangshan, Hebei
1.25 (3-9) × (1.5-2)
Weak
浅黄色
Light yellow
椭圆形
Oval
-
HB1807-2 河北省唐山市乐亭县
Laoting, Tangshan, Hebei
8.25 (2-9) × (1-2)
Weak
黄褐色
Yellow brown
长方形Rectangle +
HB1807-3 河北省唐山市滦南县
Luannan, Tangshan, Hebei
20.00 (3-8) × (1-2)
Moderate
深褐色
Dark brown
椭圆形
Oval
+
HB1807-4 河北省唐山市开发区
Development Zone, Tangshan, Hebei
9.50 (3-8) × (1-2)
Weak
深褐色
Dark brown
长方形Rectangle +
HB1807-5 河北省唐山市开发区
Development Zone, Tangshan, Hebei
85.50 (3-5) × (1-2)
Strong
浅黄色
Light yellow
长方形Rectangle -
HB1807-6 河北省唐山市乐亭县
Laoting, Tangshan, Hebei
81.25 (1-5)×(1-2)
Strong
黄褐色
Yellow brown
椭圆形
Oval
+
HB1807-7 河北省唐山市乐亭县
Laoting, Tangshan, Hebei
72.00 (3-7) × (1-2)
Strong
黄褐色
Yellow brown
椭圆形
Oval
+
HB1807-8 河北省唐山市迁安
Qianan, Tangshan, Hebei
13.25 (2-6) × (1-2)
Moderate
浅黄色
Light yellow
椭圆形
Oval
-
HB1807-9 河北省唐山市迁安
Qianan, Tangshan, Hebei
24.50 (1-4) × (1-2)
Moderate
黄褐色
Yellow brown
椭圆形
Oval
+
HB1807-10 河北省唐山市玉田县
Yutian, Tangshan, Hebei
9.50 (2-8) × (1-1.5)
Weak
浅黄色
Light yellow
长方形Rectangle -
HB1807-11 河北省唐山市开发区
Development Zone, Tangshan, Hebei
58.00 (2-6) × (1-2)
Strong
浅黄色
Light yellow
椭圆形
Oval
+
HB1807-12 河北省唐山市滦南县
Luannan, Tangshan, Hebei
2.75 (4-8) × (1-2)
Weak
浅黄色
Light yellow
长方形Rectangle -
HB1808-1 河北省衡水市深州市
Shenzhou, Hengshui, Hebei
27.50 (3-9) × (1-1.5)
Moderate
深褐色
Dark brown
长方形Rectangle +
HB1808-2 河北省衡水市深州市
Shenzhou, Hengshui, Hebei
13.50 (2-9) × (1-2)
Moderate
深褐色
Dark brown
长方形Rectangle +
HB1808-3 河北省衡水市深州市
Shenzhou, Hengshui, Hebei
17.50 (3-8) × (1-2)
Moderate
浅黄色
Light yellow
长方形Rectangle -
HB1808-4 河北省衡水市深州市
Shenzhou, Hengshui, Hebei
9.50 (2-5) × (1-2)
Weak
浅黄色
Light yellow
椭圆形
Oval
-
HN1802-1 河南省鹤壁市浚县
Xunxian, Hebi, Henan
12.50 (4-9) × (1-2)
Moderate
深褐色
Dark brown
长方形Rectangle -
HN1802-2 河南省鹤壁市浚县
Xunxian, Hebi, Henan
3.25 (1-8) × (1-1.5)
Weak
浅黄色
Light yellow
长方形Rectangle -
HN1802-3 河南省鹤壁市浚县
Xunxian, Hebi, Henan
12.50 (4-6) × (1-1.5)
Moderate
深褐色
Dark brown
椭圆形
Oval
-
HN1802-4 河南省鹤壁市浚县
Xunxian, Hebi, Henan
9.50 (4-7) × (1-1.5)
Weak
深褐色
Dark brown
长方形Rectangle -
HN1803-1 河南省安阳市滑县
Huaxian, Anyang, Henan
13.25 (1-7) × (1-1.5)
Moderate
深褐色
Dark brown
长方形Rectangle +
HN1804-1 河南省新乡市辉县
Huixian, Xinxiang, Henan
15.00 (5-8) × (1-1.5)
Moderate
深褐色
Dark brown
长方形Rectangle +
HN1807-1 河南省漯河市召陵区
Zhaoling, Luohe, Henan
77.50 (1-8) × (1-2)
Strong
黄褐色
Yellow brown
长方形Rectangle +
HN1807-2 河南省漯河市源汇区
Yuanhui, Luohe, Henan
3.25 (3-7) × (1-2)
Weak
浅黄色
Light yellow
长方形Rectangle -
HN1807-3 河南省漯河市临颍县
Linying, Luohe, Henan
4.00 (3-8) × (1-2)
Weak
深褐色
Dark brown
长方形Rectangle +
HN1810-1 河南省周口市西华县
Xihua, Zhoukou, Henan
13.50 (4-6) × (1-1.5)
Moderate
深褐色
Dark brown
椭圆形
Oval
+
SD1811-1 山东青岛市平度市
Pingdu, Qingdao, Shandong
6.50 (3-8) × (1-1.5)
Weak
浅黄色
Light yellow
长方形Rectangle +
SD1811-2 山东省青岛市平度市
Pingdu, Qingdao, Shandong
3.50 (2-8) × (1-1.5)
Weak
黄褐色
Yellow brown
长方形Rectangle +
SD1812-1 山东省东营市利津县
Lijin, Dongying, Shandong
36.25 (2-9) × (1-2)
Strong
深褐色
Dark brown
椭圆形
Oval
-
SY-1 海南省乐东黎族自治县九所镇
Jiusuo, Ledong Li Autonomous County, Hainan
20.00 (3-7) × (1-1.5)
Moderate
深褐色
Dark brown
长方形Rectangle +
SY-2 海南省乐东黎族自治县九所镇
Jiusuo, Ledong Li Autonomous County, Hainan
18.75 (1-8) × (1-2)
Moderate
黄褐色
Yellow brown
长方形Rectangle +
SY-3 海南省乐东黎族自治县九所镇
Jiusuo, Ledong Li Autonomous County, Hainan
21.25 (1-9) × (1-2)
Moderate
黄褐色
Yellow brown
椭圆形
Oval
-
SY-4 海南省乐东黎族自治县九所镇
Jiusuo, Ledong Li Autonomous County, Hainan
18.25 (1-7) × (0.5-2)
Moderate
浅黄色
Light yellow
长方形Rectangle -
SY-5 海南省乐东黎族自治县九所镇
Jiusuo, Ledong Li Autonomous County, Hainan
70.25 (2-8) × (1-1.5)
Strong
黄褐色
Yellow brown
长方形Rectangle -
SY-6 海南省三亚市吉阳区
Jiyang, Sanya, Hainan
57.00 (2-8) × (1-1.5)
Strong
深褐色
Dark brown
长方形Rectangle -
SY-7 海南省三亚市吉阳区
Jiyang, Sanya, Hainan
52.00 (2-8) × (1-2)
Strong
深褐色
Dark brown
长方形Rectangle +
SY-8 海南省三亚市吉阳区
Jiyang, Sanya, Hainan
25.00 (4-7) × (1-2)
Moderate
黄褐色
Yellow brown
长方形Rectangle -
SY-9 海南省三亚市吉阳区
Jiyang, Sanya, Hainan
10.25 (1-8) × (1-2)
Moderate
黄褐色
Yellow brown
椭圆形
Oval
-
SY-10 海南省三亚市天涯区
Tianya, Sanya, Hainan
33.75 (1-7) × (0.5-2)
Strong
黄褐色
Yellow brown
长方形Rectangle -
SY-11 海南省三亚市天涯区
Tianya, Sanya, Hainan
52.50 (1-9)×(1-1.5)
Strong
浅黄色
Light yellow
长方形Rectangle -
SY-12 海南省乐东黎族自治县九所镇
Jiusuo, Ledong Li Autonomous County, Hainan
54.50 (2-8) × (1-1.5)
Strong
浅黄色
Light yellow
长方形Rectangle -
SY-13 海南省三亚市海棠区
Haitang, Sanya, Hainan
24.50 (2-9) × (1-1.5)
Moderate
浅黄色
Light yellow
椭圆形
Oval
-
SY-14 海南省三亚市海棠区
Haitang, Sanya, Hainan
67.50 (5-8) × (1-2)
Strong
深褐色
Dark brown
长方形Rectangle +
SY-15 海南省三亚市海棠区
Haitang, Sanya, Hainan
23.25 (5-8) × (1-1.5)
Moderate
黄褐色Yellow brown 椭圆形
Oval
+
SY-16 海南省三亚市海棠区
Haitang, Sanya, Hainan
86.25 (1-7) × (0.5-1.5)
Strong
浅黄色
Light yellow
椭圆形
Oval
-
SY-17 海南省三亚市海棠区
Haitang, Sanya, Hainan
92.50 (1-8) × (1-2)
Strong
浅黄色
Light yellow
长方形Rectangle -
SY-18 海南省乐东黎族自治县九所镇
Jiusuo, Ledong Li Autonomous County, Hainan
64.00 (4-8) × (1-2)
Strong
浅黄色
Light yellow
长方形Rectangle -
SY-19 海南省三亚市陵水县
Lingshui, Sanya, Hainan
12.25 (3-8) × (1-1.5)
Moderate
浅黄色
Light yellow
长方形Rectangle -
SY-20 海南省三亚市陵水县
Lingshui, Sanya, Hainan
38.75 (2-8) × (1-1.5)
Strong
黄褐色
Yellow brown
长方形Rectangle +
SY-21 海南省三亚市陵水县
Lingshui, Sanya, Hainan
38.25 (3-8) × (1-1.5)
Strong
深褐色
Dark brown
椭圆形Oval +

Table 2

The amplification result with used ISSR primers"

引物
Primer
序列
Sequence (5′-3′)
退火温度
Tm (℃)
扩增条带数
Number of amplified bands
多态性条带
Number of polymorphic bands
多态性比率
Polymorphism percent (%)
807 (AG)8T 46 10 8 80.00
808 (AG)8C 46 17 14 82.35
812 (GA)8A 45 7 7 100.00
825 (AC)8T 50 8 5 62.50
834 (AG)8YT 48 14 14 100.00
835 (AG)8YC 50 12 11 91.67
841 (GA)8YC 48 16 14 87.50
856 (AC)8YA 50 8 7 87.50
857 (AC)8YG 51 12 8 66.67
880 (GGAGA)3 47 12 11 91.67
884 HBHA(GA)6G 46 10 8 80.00
885 BHB(GA)7 46 11 8 72.73
887 DVD(TC)7 45 12 6 50.00
888 BDB(CA)7 49 9 4 44.44
889 DBD(AC)7 49 9 8 88.89
891 HVH(TG)7 50 10 7 70.00
总计 Total 177 140 79.10

Table 3

Genetic diversity parameters among different geographic populations of B. maydis"

多态性位点
Number of polymorphic loci
多态性比率
Polymorphism percent (%)
观察等位基因数
Observed number of alleles (Na)
有效等位基因
Effective number of alleles (Ne)
基因多样性指数Nei’s gene diversity index (H) Shannon’s信息指数
Shannon’s information index (I)
河北HB 127 71.75 1.7175 1.4930 0.2783 0.4072
河南HN 100 56.50 1.5650 1.3822 0.2137 0.3134
山东SD 75 42.37 1.4237 1.3060 0.1717 0.2505
三亚SY 121 68.36 1.6836 1.4186 0.2437 0.3637
群体水平
Population level
140 79.10 1.7910 1.4904 0.2820 0.4197

Table 4

Genetic similarity and genetic distance among different geographic populations of B. maydis"

种群 Group 河北HB 山东SD 河南HN 三亚SY
河北HB **** 0.9455 0.9618 0.9404
山东SD 0.0560 **** 0.9351 0.9116
河南HN 0.0390 0.0671 **** 0.9028
三亚SY 0.0614 0.0925 0.1023 ****

Fig. 1

Dendrogram obtained by UPGMA clustering for B. maydis"

[1] 李玥仁, 商鸿生, 胡必德 . 陕西省玉米小斑病菌致病性分化研究. 植物保护学报, 1993, 20(1):90-90.
LI Y R, SHAGN H S, HU B D . Pathogenic specialization of Bipolaris maydis in Shaanxi Province. Acta Phytophylacica Sinica, 1993, 20(1):90-90. (in Chinese)
[2] 陆宁海, 吴利民, 郎剑锋, 霍云凤, 石明旺 . 新乡地区玉米小斑病菌小种群体结构及致病性分析. 河南科技学院学报(自然科学版), 2016,44(1):23-27.
LU N H, WU L M, LANG J F, HUO Y F, SHI M W . Analysis on population structure and pathogenicity differentiation of Bipolaris maydis in Xinxiang. Journal of Henan Institute of Science and Technology (Natural Science Edition), 2016,44(1):23-27. (in Chinese)
[3] 代玉立, 甘林, 阮宏椿, 石妞妞, 杜宜新, 陈福如, 杨秀娟 . 福建省丙环唑不同敏感性玉米小斑病菌的遗传多样性和致病性. 植物病理学报, 2019,49(1):64-74.
DAI Y L, GAN L, RUAN H C, SHI N N, DU Y X, CHEN F R, YANG X J . Genetic diversity and pathogenicity of different propiconazole-sensitive isolates of Bipolaris maydis in Fujian Province. Acta Phytopathologica Sinica, 2019,49(1):64-74. (in Chinese)
[4] TOTH R, SMITH D R . Histopathological changes in susceptible corn inoculated with Helminthosporium maydis race O. Mycopathologia, 1982,77(2):75-82.
[5] 王晓梅, 吕平香, 李莉莉, 见德宝, 杨信东 . 玉米小斑病重要流行环节的初步定量研究.Ⅱ病斑产孢、孢子飞散、杀菌剂筛选. 吉林农业大学学报, 2007,29(2):128-132.
WANG X M, LÜ P X, LI L L, JIAN D B, YANG X D . Preliminary quantitative studies on important epidemic links of Bipolaris maydis. Ⅱ. Lesion sporulation, spore dispersion and fungicide screening. Journal of Jilin Agricultural University, 2007,29(2):128-132. (in Chinese)
[6] 董金皋 . 农业植物病理学.2版. 北京: 中国农业出版社 2013: 98-103.
DONG J G Agricultural Plant Pathology. 2nd ed. Beijing: China Agriculture Press, 2013: 98-103. (in Chinese)
[7] ULLSTRUP A J . The impacts of the Southern corn leaf blight epidemics of 1970-1971. Annual Review of Phytopathology, 1972,10:37-50.
[8] 张晓慧 . 皖北地区玉米小斑病的发生及综合防治. 现代农业科技, 2019(7):90.
ZHANG X H . Occurrence and integrated control of corn leaf blight in North Anhui. Modern Agricultural Science and Technology, 2019(7):90. (in Chinese)
[9] 赵真真, 郑训梅, 叶子园, 戴婧, 陈方新, 梅玉云 . 安徽省玉米小斑病菌生物学特性的研究. 生物学杂志, 2018,35(6):60-63.
ZHAO Z Z, ZHENG X M, YE Z Y, DAI J, CHEN F X, MEI Y Y . Biological characteristics of Bipolaris maydis in Anhui Province. Journal of Biology, 2018,35(6):60-63. (in Chinese)
[10] 代玉立, 甘林, 阮宏椿, 廖蕾, 石妞妞, 杜宜新, 陈福如, 杨秀娟 . 福建省玉米小斑病菌的生物学特性研究. 中国农学通报, 2016,32(31):131-137.
DAI Y L, GAN L, RUAN H C, LIAO L, SHI N N, DU Y X, CHEN F R, YANG X J . Biological characteristics of Bipolaris maydis in Fujian Province. Chinese Agricultural Science Bulletin, 2016,32(31):131-137. (in Chinese)
[11] 文静 . ISSR分子标记技术在植物病原菌研究中的应用. 安徽农业科学, 2010,38(36):20658-20660.
WEN J . Application of ISSR molecular marker technique in plant pathogens research. Journal of Anhui Agricultural Sciences, 2010,38(36):20658-20660. (in Chinese)
[12] 李海生 . ISSR分子标记技术及其在植物遗传多样性分析中的应用. 生物学通报, 2004,39(2):19-21.
LI H S . ISSR molecular marker technology and its application in plant genetic diversity analysis. Bulletin of Biology, 2004,39(2):19-21. (in Chinese)
[13] 张小飞, 李晓, 崔丽娜, 邹成佳, 李菁, 龙永昌 . 我国玉米灰斑病菌遗传多样性的ISSR分析. 植物保护学报, 2015,42(6):908-913.
ZHANG X F, LI X, CUI L N, ZOU C J, LI J, LONG Y C . Genetic diversity analysis of Cercospora spp. by ISSR in China. Journal of Plant Protection, 2015,42(6):908-913. (in Chinese)
[14] 谷守芹, 范永山, 李坡, 董金皋 . 玉米大斑病菌ISSR反应体系的优化和遗传多样性分析. 植物保护学报, 2008,35(5):427-432.
GU S Q, FAN Y S, LI P, DONG J G . Optimization of ISSR reaction and genetic diversity analysis of Exserohilum turcicum. Acta Phytophylacica Sinica, 2008,35(5):427-432. (in Chinese)
[15] 张小飞, 李晓, 崔丽娜, 邹成佳, 杨晓蓉, 向运佳 . 玉米圆斑病(Bipolaris zeicola)遗传多样性ISSR分析. 植物保护, 2015,41(3):30-34.
ZHANG X F, LI X, CUI L N, ZOU C J, YANG X R, XIANG Y J . Genetic diversity analysis of corn leaf spot caused by Bipolaris zeicola with ISSR markers. Plant Protection, 2015,41(3):30-34. (in Chinese)
[16] 郭云燕, 陈茂功, 孙素丽, 武小菲, 江凯, 朱振东, 李洪杰, 何月秋, 王晓鸣 . 中国玉米南方锈病病原菌遗传多样性. 中国农业科学, 2013,46(21):4523-4533.
GUO Y Y, CHEN M G, SUN S L, WU X F, JIANG K, ZHU Z D, LI H J, HE Y Q, WANG X M . Genetic diversity of Puccinia polysora Underw. in China. Scientia Agricultura Sinica, 2013,46(21):4523-4533. (in Chinese)
[17] 马红霞, 孙华, 郭宁, 张海剑, 石洁, 常佳迎 . 禾谷镰孢复合种毒素化学型及遗传多样性分析. 中国农业科学, 2018,51(1):82-95.
MA H X, SUN H, GUO N, ZHANG H J, SHI J, CHANG J Y . Analysis of toxigenic chemotype and genetic diversity of the Fusarium graminearum species complex. Scientia Agricultura Sinica, 2018,51(1):82-95. (in Chinese)
[18] 常佳迎, 刘树森, 马红霞, 石洁, 郭宁, 张海剑 . 黄淮海地区夏玉米弯孢叶斑病菌遗传多样性分析. 中国农业科学, 2019,52(5):822-836.
CHANG J Y, LIU S S, MA H X, SHI J, GUO N, ZHANG H J . Genetic diversity analysis of Curvularia lunata in summer maize in Huang-Huai-Hai region. Scientia Agricultura Sinica, 2019,52(5):822-836. (in Chinese)
[19] 梅玉云 . 安徽省玉米小斑病菌的生物学特性与群体遗传多样性研究[D]. 合肥: 安徽农业大学, 2016.
MEI Y Y . Biological characteristics and population genetic diversities of Bipolaris maydis in Anhui Province[D]. Hefei: Anhui Agricultural University, 2016. (in Chinese)
[20] 廖蕾 . 福建省玉米小斑病菌生物学特性和遗传多样性研究[D]. 福州: 福建农业大学, 2017.
LIAO L . Study on biological characteristics and genetic diversity of Cochliobolus heterostrophus in Fujian Province[D]. Fuzhou: Fujian Agriculture and Forestry University, 2017. (in Chinese)
[21] 常佳迎, 刘莉, 刘树森, 石洁, 郭宁, 张海剑, 刘粤阳 . 黄淮海地区夏玉米灰斑病病原菌鉴定及主栽品种抗性分析. 植物病理学报, 2019,49(6):808-817.
CHANG J Y, LIU L, LIU S S, SHI J, GUO N, ZHANG H J, LIU Y Y . Identification of causal agent of gray leaf spot and resistance of important hybrids in Huanghuaihai summer maize region. Acta Phytopathologica Sinica, 2019,49(6):808-817. (in Chinese)
[22] 张天宇 . 介绍一项用于单孢子分离和制片以备显微摄影的显微操作技术. 真菌学报, 1983,2(3):197-200.
ZHANG T Y . A technique using micromanipulator for isolating single spores and preparing slide for photomicrogragh. Acta Mycologica Sinica, 1983,2(3):197-200. (in Chinese)
[23] NEI M . Genetic distance between populations. The American Naturalist, 1972,106(949):283-292.
[24] NEI M . Analysis of gene diversity in subdivided populations. Proceedings of the National Academy of Sciences of the United States of America, 1973,70(12):3321-3323.
[25] 代玉立, 甘林, 滕振勇, 石妞妞, 阮宏椿, 杜宜新, 廖蕾, 陈福如, 杨秀娟 . 福建省玉米小斑病菌致病力的分化. 西北农林科技大学学报(自然科学版), 2018,46(4):92-97, 106.
DAI Y L, GAN L, TENG Z Y, SHI N N, RUAN H C, DU Y X, LIAO L, CHEN F R, YANG X J . Pathogenicity differentiation of Cochliobolus heterostrophus in Fujian. Journal of Northwest A&F University (Natural Science Edition), 2018,46(4):92-97, 106. (in Chinese)
[26] WANG M, WANG S Q, MA J, YU C J, GAO J X, CHEN J . Detection of Cochliobolus heterostrophus races in South China. Journal of Phytopathology, 2017,165(10):681-691.
[27] 王利智, 康志钰, 吴毅歆, 周惠萍, 毛自朝, 何月秋 . 云南省玉米小斑病菌生理小种的初步鉴定. 云南大学学报(自然科学版), 2010,32(3):352-357.
WANG L Z, KANG Z Y, WU Y X, ZHOU H P, MAO Z C, HE Y Q . Preliminary identification of physiological races of Bipolaris maydis in Yunnan. Journal of Yunnan University (Natural Science Edition), 2010,32(3):352-357. (in Chinese)
[28] 赵聚莹, 蒋晓丽, 贾海民, 李术臣, 石洁, 张海剑 . 黄淮海地区玉米小斑病菌生理小种鉴定与评价. 河北农业科学, 2012,16(9):47-49.
ZHAO J Y, JIANG X L, JIA H M, LI S C, SHI J, ZHANG H J . Identification and evaluation of physiological races of Bipolaris maydis in Huanghuaihai region. Journal of Hebei Agricultural Sciences, 2012,16(9):47-49. (in Chinese)
[29] 王群 . 山东省玉米品种(系)对病害的田间抗性鉴定[D]. 泰安: 山东农业大学, 2018.
WANG Q . Field identification of maize cultivars (lines) resistance to diseases in Shandong Province[D]. Taian: Shandong Agricultural University, 2018. (in Chinese)
[30] 施艳, 燕照玲, 王珂, 赵清爽, 席靖豪, 李冠楠, 刘焱昆, 袁虹霞, 李洪连 . 河南省夏玉米品种对6种主要病害的抗性评价. 河南农业科学, 2019,48(6):95-98, 105.
SHI Y, YAN Z L, WANG K, ZHAO Q S, XI J H, LI G N, LIU Y K, YUAN H X, LI H L . Evaluation of resistant summer maize varieties against six main diseases in Henan Province. Journal of Henan Agricultural Sciences, 2019,48(6):95-98, 105. (in Chinese)
[31] 陆银萍 . 安徽省玉米新品种(系)对玉米主要病害的抗病性研究[D]. 合肥: 安徽农业大学, 2015.
LU Y P . New maize varieties (lines) of resistance to main diseases of maize in Anhui Province[D]. Hefei: Anhui Agricultural University, 2015. (in Chinese)
[1] HUANG JiaQuan,LI Li,WU FengNian,ZHENG Zheng,DENG XiaoLing. Proliferation of Two Types Prophage of ‘Candidatus Liberibacter asiaticus’ in Diaphorina citri and their Pathogenicity [J]. Scientia Agricultura Sinica, 2022, 55(4): 719-728.
[2] YANG ShiMan, XU ChengZhi, XU BangFeng, WU YunPu, JIA YunHui, QIAO ChuanLing, CHEN HuaLan. Amino Acid of 225 in the HA Protein Affects the Pathogenicities of H1N1 Subtype Swine Influenza Viruses [J]. Scientia Agricultura Sinica, 2022, 55(4): 816-824.
[3] ZHANG JinLong,ZHAO ZhiBo,LIU Wei,HUANG LiLi. The Function of Key T3SS Effectors in Pseudomonas syringae pv. actinidiae [J]. Scientia Agricultura Sinica, 2022, 55(3): 503-513.
[4] JIANG Peng, ZHANG Peng, YAO JinBao, WU Lei, HE Yi, LI Chang, MA HongXiang, ZHANG Xu. Phenotypic Characteristics and Related Gene Analysis of Ningmai Series Wheat Varieties [J]. Scientia Agricultura Sinica, 2022, 55(2): 233-247.
[5] XiaoChuan LI,ChaoHai WANG,Ping ZHOU,Wei MA,Rui WU,ZhiHao SONG,Yan MEI. Deciphering of the Genetic Diversity After Field Late Blight Resistance Evaluation of Potato Breeds [J]. Scientia Agricultura Sinica, 2022, 55(18): 3484-3500.
[6] YingLing WAN,MengTing ZHU,AiQing LIU,YiJia JIN,Yan LIU. Phenotypic Diversity Analysis of Chinese Ornamental Herbaceous Peonies and Its Germplasm Resource Evaluation [J]. Scientia Agricultura Sinica, 2022, 55(18): 3629-3639.
[7] HU GuangMing,ZHANG Qiong,HAN Fei,LI DaWei,LI ZuoZhou,WANG Zhi,ZHAO TingTing,TIAN Hua,LIU XiaoLi,ZHONG CaiHong. Screening and Application of Universal SSR Molecular Marker Primers in Actinidia [J]. Scientia Agricultura Sinica, 2022, 55(17): 3411-3425.
[8] LI ZhengGang,TANG YaFei,SHE XiaoMan,YU Lin,LAN GuoBing,HE ZiFu. Molecular Characteristics and Pathogenicity Analysis of Youcai Mosaic Virus Guangdong Isolate Infecting Radish [J]. Scientia Agricultura Sinica, 2022, 55(14): 2752-2761.
[9] CHEN Xu,HAO YaQiong,NIE XingHua,YANG HaiYing,LIU Song,WANG XueFeng,CAO QingQin,QIN Ling,XING Yu. Association Analysis of Main Characteristics of Bur and Nut with SSR Markers in Chinese Chestnut [J]. Scientia Agricultura Sinica, 2022, 55(13): 2613-2628.
[10] XU Xiao,REN GenZeng,ZHAO XinRui,CHANG JinHua,CUI JiangHui. Accurate Identification and Comprehensive Evaluation of Panicle Phenotypic Traits of Landraces and Cultivars of Sorghum bicolor (L.) Moench in China [J]. Scientia Agricultura Sinica, 2022, 55(11): 2092-2108.
[11] ZHANG ChengQi,LIAO LuLu,QI YongXia,DING KeJian,CHEN Li. Functional Analysis of the Nucleoporin Gene FgNup42 in Fusarium graminearium [J]. Scientia Agricultura Sinica, 2021, 54(9): 1894-1903.
[12] XU TianJun,LÜ TianFang,ZHAO JiuRan,WANG RongHuan,XING JinFeng,ZHANG Yong,CAI WanTao,LIU YueE,LIU XiuZhi,CHEN ChuanYong,WANG YuanDong,LIU ChunGe. The Grain Dehydration Characteristics of the Main Summer Maize Varieties in Huang-Huai-Hai Region [J]. Scientia Agricultura Sinica, 2021, 54(4): 708-719.
[13] TANG XiuJun,FAN YanFeng,JIA XiaoXu,GE QingLian,LU JunXian,TANG MengJun,HAN Wei,GAO YuShi. Genetic Diversity and Origin Characteristics of Chicken Species Based on Mitochondrial DNA D-loop Region [J]. Scientia Agricultura Sinica, 2021, 54(24): 5302-5315.
[14] CAO YuHan,LI ZiTeng,ZHANG JingYi,ZHANG JingNa,HU TongLe,WANG ShuTong,WANG YaNan,CAO KeQiang. Analysis of dsRNA Carried by Alternaria alternata f. sp. mali in China and Identification of a dsRNA Virus [J]. Scientia Agricultura Sinica, 2021, 54(22): 4787-4799.
[15] ZHANG Li,TANG YaFei,LI ZhengGang,YU Lin,LAN GuoBing,SHE XiaoMan,HE ZiFu. Molecular Characteristic of Squash Leaf Curl China Virus (SLCCNV) Infecting Cucurbitaceae Crops in Guangdong Province [J]. Scientia Agricultura Sinica, 2021, 54(19): 4097-4109.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!