Acta Agron Sin ›› 2013, Vol. 39 ›› Issue (09): 1576-1581.doi: 10.3724/SP.J.1006.2013.01576
• CROP GENETICS & BREEDING · GERMPLASM RESOURCES · MOLECULAR GENETICS • Previous Articles Next Articles
YANG Li-Hua1,2,WANG Jin-Feng2,DU Li-Pu2,XU Hui-Jun2,WEI Xue-Ning2,LI Zhao2,MA Ling-Jian1,*,ZHANG Zeng-Yan2,*
| [1]Zhang X-S(张雪松), Cao Y-S(曹永胜), Cao K-Q(曹克强). Management of w heat soil-borne diseases under the conservative farming system. J Northwest Sci-Tech Univ A&F (Nat Sci Edn) (西北农林科技大学学报?自然科学版), 2005, 33(suppl): 47–48 (in Chinese with English abstract)[2]Daval S, Lebreton L, Gazengel K, Boutin M, Guillerm-Erckelboudt A Y, Sarniguet. The biocontrol bacterium Pseudomonas fluorescens Pf29Arp strain affects the pathogenesis-related gene expression of the take-all fungus Gaeumannomyces graminis var. tritici on wheat roots. Mol Plant Pathol, 2011, 12: 839–854[3]Guilleroux M, Osbourn A. Gene expression during infection of wheat roots by the ‘take-all’ fungus Gaeumannomyces graminis. Mol Plant Pathol, 2004, 5: 203–216[4]Cook R J. Take-all of wheat. Physiol Mol Plant Pathol, 2003, 62: 73–86[5]Gutteridge R J, Bateman G L, Todd A D. Variation in the effects of take-all disease on grain yield and quality of winter cereals in ?eld experiments†. Pest Manag Sci, 2003, 59: 215–224[6]Yang M M, Mavrodi D V, Mavrodi O V, Bonsall R F, Parejko J A, Paulitz T C, Thomashow L S, Yang H T, Weller D M, Guo J H. Biological control of take-all by fluorescent Pseudomonas spp. from Chinese wheat fields. Biol Control, 2011, 101: 1481–1491[7]Jiang W(蒋雯), He D(何德), Tao S(陶松). Research progress of resistance to w heat root rot using exogenous gene. J Hebei Agric Sci(河北农业科学), 2010, 14(2): 50–51(in Chinese with English abstract)[8]Kumar J, Schäfer P, Hückelhoven R, Langen G, Baltruschat H, Stein E, Nagarajan S, Kogel K H. Bipolaris sorokiniana, a cereal pathogen of global concern: cytological and molecular approaches towards better control. Mol Plant Pathol, 2002, 3:185–195[9]Jia T-X(贾廷祥), Wu G-B(吴桂本), Liu C-D(刘传德). The present research situation and control countermeasure of root rots in wheat. Sci Agric Sin (中国农业科学), 1995, 28(3): 41–48 (in Chinese with English abstract)[10]Matteo A D, Federici L, Mattei B, Salvi G, Johnson K A, Savino C, Lorenzo G D, Tsernoglou D, Cervone F. The crystal structure of polygalacturonase- inhibiting protein (PGIP), a leucine-rich repeat protein involved in plant defense. Proc Natl Acad Sci USA, 2003, 100: 10124–10128[11]Jiang H(蒋豪), Tang H-R(汤浩茹). Advance in the research of molecular characterization, expression and regulation of a gene encoding the polygalacturonase-inhibiting protein (PGIP) of plant. Chin Agric Sci Bull (中国农学通报), 2008, 24(8): 63–68 (in Chinese with English abstract)[12]Janni M, Sella L, Favaron F, Blechl A E, Lorenzo G D, Ovidio R D. The expression of a bean PGIP in transgenic wheat confers increased resistance to the fungal pathogen Bipolaris sorokiniana. Mol Plant-Microbe Interactions, 2008, 21: 171–177[13]Albersheim P, Anderson A J. Proteins from plant cell walls inhibit polygalacturonases secreted by plant pathogens. Proc Natl Acad Sci USA, 1971, 68: 1815–1819[14]Sathiyaraj G, Srinivasan S, Subramanium S, Kim Y J, Kim Y J, Kwon W S, Yang D C. Polygalacturonase inhibiting protein: isolation, developmental regulation and pathogen related expression in Panax ginseng C.A. Meyer. Mol Biol Rep, 2010, 37: 3445–3454[15]Xu H-J(徐惠君), Pang J-L(庞俊兰), Ye X-G(叶兴国), Du L-P(杜丽璞), Li L-C(李连城), Xin Z-Y(辛志勇), Ma Y-Z(马有志), Chen J-P(陈剑平), Chen J(陈炯), Cheng S-H(程顺和), Wu H-Y(吴宏亚). Study on the gene transferring of Nib8 into wheat for its resistance to the Yellow mosaic virus by bombardment. Acta Agron Sin (作物学报), 2001, 27(6): 688–694 (in Chinese with English abstract)[16]Saghai-Maroof M A, Soliman K M, Jorgensen R A, Allard R W. Ribosomal DNA spacer-length polymorphisms in barley: Mendelian inheritance, chromosomal location, and population dynamics. Proc Natl Acad Sci USA, 1984, 81: 8014–8019[17]Livak K J, Schmittgen T D. Analysis of relative gene expression data using real-time quantitative PCR and the 2–ΔΔCT method. Methods, 2001, 25: 402–408[18]Dong J-L (董建力), Hui H-X(惠红霞), Huang L-L(黄丽丽), Wang J-D(王敬东), Zhu Y-X(朱永兴), Chen X(陈孝), Ye X-G(叶兴国). Optimization of identification technique and germplasm screening of resistance to take-all in wheat. J Northwest A&F Univ (Nat Sci Edn) (西北农林科技大学学报?自然科学版), 2009, 37(3): 159–162 (in Chinese with English abstract)[19]Bithell S L, Bulter R C, Harrow S, Mckay A, Cromey M G. Susceptibility to take-all of cereal and grass species, and their effects on pathogen inoculum. Ann Appl Biol, 2011, 159: 252–266[20]Dong N, Liu X, Lu Y, Du L P, Xu H J, Liu H X, Xin Z Y, Zhang Z Y. Overexpression of TaPIEP1, a pathogen-induced ERF gene of wheat, confers host-enhanced resistance to fungal pathogen Bipolaris sorokiniana. Funct Integr Genomic, 2010, 10: 215–226[21]Dang L(党良), Wang A-Y(王爱云), Xu H-J(徐惠君), Zhu X-L(祝秀亮), Du L-P(杜丽璞), Shao Y-J(邵艳军), Zhang Z-Y(张增艳). Development and characterization of GmPGIP3 transgenic Yangmai 18 with enhanced resistance to wheat common root rot. Acta Agron Sin (作物学报), 2012, 38(10): 1833–1838 (in Chinese with English abstract) |
| [1] | Mao Jia-Qi, Huang Peng-Yu, Zhao Jia-Jia, Zheng Xing-Wei, Wu Bang-Bang, Hao Yu-Qiong, Qu Fei, Liu Cheng, Ma Peng-Tao, Zheng Jun. Evaluation of powdery mildew resistance in wheat cultivars and molecular detection of resistance genes in Shanxi province, China [J]. Acta Agronomica Sinica, 2026, 52(6): 1669-1681. |
| [2] | Liu Chang-You, Wang Shen, Shi Hui-Ying, Shen Ying-Chao, Sun Lei, Wang Yan, Zhang Zhi-Xiao, Su Qiu-Zhu, Tian Jing, Fan Bao-Jie. QTL mapping for bruchid resistance in an adzuki bean distant hybridization population using rice bean genetic resources [J]. Acta Agronomica Sinica, 2026, 52(3): 936-944. |
| [3] | Niu Li, Wang Yong-Sheng, Wang Chang-Jie, Zhang Hong, Meng Ya-Xiong, Li Bao-Chun, Yang Ke, Ma Xiao-Le, Yao Li-Rong, Si Er-Jing, Wang Hua-Jun, Wang Jun-Cheng. Identification and analysis of the NAC gene family in barley (Hordeum vulgare L.) and functional validation of HvNAC38 in salt tolerance [J]. Acta Agronomica Sinica, 2026, 52(3): 688-707. |
| [4] | Lu Ya-Ni, Ding Chao-Jie, Zhang Yu, Du Xi-Jun, Qi Xue-Li, Hu Lin, Xu Wei-Gang. Identification and genome-wide association analysis of seedling-stage Fusarium crown rot resistance in 200 wheat cultivars from Henan province, China [J]. Acta Agronomica Sinica, 2026, 52(2): 363-375. |
| [5] | Wang Yue-Sheng, Ge Dong-Dong, Cheng Lan-Fei, Chen Chun-Huan, Wang Chang-You, Liu Xin-Lun, Li Ting-Dong, Deng Ping-Chuan, Ji Wan-Quan, Zhao Ji-Xin. Molecular cytogenetic and disease resistance characterization of the wheat- Psathyrostachys huashanica disomic substitution line 16DH25-7 [J]. Acta Agronomica Sinica, 2026, 52(2): 433-445. |
| [6] | Qi Qing-Song, Niu Xiang-Yu, Liu Bing-Ke, Kang Lu, Wang Chen, Feng De-Shun. Salt tolerance identification, screening and salt tolerance index evaluation of wheat-Thinopyrum intermedium radiation mutagenesis germplasm at germination and seedling stage [J]. Acta Agronomica Sinica, 2026, 52(2): 389-404. |
| [7] | Su Ai-Guo, Xiao Sen-Lin, Yi Hong-Mei, Duan Sai-Ru, Wang Shuai-Shuai, Zhang Ru-Yang, Xing Jin-Feng, Li Chun-Hui, Sun Xuan, Xu Rui-Bin, Xu Tian-Jun, Li Zhi-Yong, Zhang Yong, Wang Rong-Huan, Song Wei, Zhao Jiu-Ran. Research progress and breeding application of resistance genetics to ear rot in maize [J]. Acta Agronomica Sinica, 2026, 52(1): 1-13. |
| [8] | Dong Li-Hua, Dong Cheng-Yan, Li Zheng-Nan, Yu Jing, Ye Liang, Liu Fang, Tan Jing. Screening and identification of candidate resistance genes to gibberella ear rot caused by Fusarium graminearum in maize [J]. Acta Agronomica Sinica, 2026, 52(1): 131-147. |
| [9] | Zhu Jin-Juan, Wang Hui-Ping, Yang Guo-Dong, Wang Yu-Cheng, Yang Chen, Wang Bin, Agustiani Nurwulan, Tu Jun-Ming, Bi Jun-Guo, Cui Ke-Hui, Huang Jian-Liang, Peng Shao-Bing, Yuan Shen. Effects of water management and variety type on grain yield and quality in ratoon rice [J]. Acta Agronomica Sinica, 2026, 52(1): 295-315. |
| [10] | ZHU Jin-Cheng, YANG Qiu-Hua, CHENG Li-Xiang, LI Wen-Li, SHI Ming-Ming, LI Hui-Xia, ZHANG Feng. Screening of potato germplasm for resistance to Meloidogyne incognita and analysis of related physiological responses [J]. Acta Agronomica Sinica, 2025, 51(9): 2307-2317. |
| [11] | LI Yun-Xiang, GUO Qian-Qian, HOU Wan-Wei, ZHANG Xiao-Juan. Genome-wide association analysis of drought resistance traits in wheat seedlings introduced from ICARDA [J]. Acta Agronomica Sinica, 2025, 51(9): 2387-2398. |
| [12] | GAO Meng-Juan, ZHAO He-Ying, CHEN Jia-Hui, CHEN Xiao-Qian, NIU Meng-Kang, QIAN Qi-Run, CUI Lu-Fei, XING Jiang-Min, YIN Qing-Miao, GUO Wen, ZHANG Ning, SUN Cong-Wei, YANG Xia, PEI Dan, JIA Ao-Lin, CHEN Feng, YU Xiao-Dong, REN Yan. Mapping and identification of a novel sharp eyespot resistance locus Qse.hnau-5AS and its candidate genes in wheat [J]. Acta Agronomica Sinica, 2025, 51(8): 2240-2250. |
| [13] | YIN Yu-Meng, WANG Yan-Nan, KANG Zhi-He, QIAO Shou-Chen, BIAN Qian-Qian, LI Ya-Wei, CAO Guo-Zheng, ZHAO Guo-Rui, XU Dan-Dan, YANG Yu-Feng. Cloning and functional analysis of glutathione S-transferase gene IbGSTU7 in sweetpotato [J]. Acta Agronomica Sinica, 2025, 51(7): 1736-1746. |
| [14] | YANG Shuang, BAI Lei, GUO Hua-Chun, MIAO Ya-Sheng, LI Jun. Morphological characteristics, types, and developmental process of potato leaf trichomes [J]. Acta Agronomica Sinica, 2025, 51(6): 1582-1598. |
| [15] | MENG Xiang-Yu, DIAO Deng-Chao, LIU Ya-Rui, LI Yun-Li, SUN Yu-Chen, WU Wei, ZHAO Wen, WANG Yu, WU Jian-Hui, LI Chun-Lian, ZENG Qing-Dong, HAN De-Jun, ZHENG Wei-Jun. Genetic analysis of high yield and yield stability characteristics of new wheat variety Xinong 877 [J]. Acta Agronomica Sinica, 2025, 51(5): 1261-1276. |
|
||