Acta Agron Sin ›› 2014, Vol. 40 ›› Issue (07): 1157-1163.doi: 10.3724/SP.J.1006.2014.01157
• CROP GENETICS & BREEDING · GERMPLASM RESOURCES · MOLECULAR GENETICS • Previous Articles Next Articles
WU Li-Zhu,WANG Xing-Fen,ZHANG Yan,LI Xi-Huan,ZHANG Gui-Yin,WU Li-Qiang,LI Zhi-Kun,MA Zhi-Ying*
| [1]马存, 陈其煐. 我国棉花抗枯、黄萎病育种研究进展. 中国农业科学, 1992, 25(1): 50–57Ma C, Chen Q Y. Progress on studies of cotton resistant breeding fusarium and verticillium wilts in China. Sci Agric Sin, 1992, 25(1): 50–57 (in Chinese with English abstract)[2]简桂良, 邹亚飞, 马存. 棉花黄萎病连年流行的原因及对策. 中国棉花, 2003, 30(3): 13–14Jian G L, Zou Y F, Ma C. Current status and countermeasure of verticillium wilt of cotton in China. China Cotton, 2003, 30(3): 13–14 (in Chinese)[3]Kotchoni S O, Gachomo E W. The reactive oxygen species network pathways: an essential prerequisite for perception of pathogen attack and the acquired disease resistance in plants. J Biosci, 2006, 31: 389–404[4]陈捷胤, 戴小枫. 棉花对黄萎病的抗病机制研究进展. 分子植物育种, 2005, 3: 427–435Chen J Y, Dai X F. Research Advance on the Resistant Mechanism of Cotton against Verticillium wilt. Mol Plant Breed, 2005, 3: 427–435 (in Chinese with English abstract)[5]Smit F, Dubery I A. cell wall reinforcement in cotton hypocotyls inresponse to a verticillium dahliae elicitor. Phytochemistry, 1997, 44: 811–815[6]Dong H Z, Li W J, Zhang D M, Tang W. Differential expression of induced resistance by an aqueous extract of killed Penicillium chrysogenum against verticillium wilt of cotton. Crop Prot, 2003, 22: 129–134[7]王莉. 棉株受黄萎病菌侵染后组织结构变化与抗性的相互关系. 农业技术与装备, 2012, 22(11): 32–34Wang L. The relationgshap between resistentant and the tissue construction of cotton indefectted by Verticillium dahliae. Agric Technol Equip, 2012, 22(11): 32–34 (in Chinese)[8]侯丽娟, 李卫, 刘燕霞, 杨家荣. 棉花黄萎病菌毒素对棉花生化代谢的影响. 西北农业学报, 2010, 19(12): 63–67Hou L J, Li W, Liu Y X, Yang J R. Effect of V. dahliae toxin on biochemical metabolism of cotton seedlings. Acta Agric Boreali-occident Sin, 2010, 19(12): 63–67 (in Chinese with English abstract)[9]Hosokawa M, Suzuki S, Umezawa T, Sato Y. Progress of lignification mediated by intercellular transportation of monolignols during tracheary element differentiation of isolated Zinnia mesophyll cells. Plant Cell Physiol, 2001, 42: 959–968[10]Bland D E, Skicko J, Menshun M. The relationship of acid insoluble lignin and acid soluble lignin to the lignins of the middle lamella and cell wall in Eucalyptus regnans. Holzforschung, 1975, 29: 144–147[11]Xu L, Zhu L F, Tu L L, Liu L L, Yuan D J, Jin L, Long L, Zhang X L. Lignin metabolism has a central role in the resistance of cotton to the wilt fungus Verticillium dahliae as revealed by RNA-Seq-dependent transcriptional analysis and histochemistry. J Exp Bot, 2011, 62: 5607–5621[12]Zhang Y, Wang X F, Yang S, Chi J N, Zhang G Y, Ma Z Y. Cloning and characterization of a verticillium wilt resistance gene from Gossypium barbadense and functional analysis in Arabidopsis thaliana. Plant Cell Rep, 2011, 30: 2085–2096[13]Sluiter A, Hames B, Ruiz R, Scarlata C, Sluiter J, Templeton D, Crocker D. NERL: Determination of structural carbohydrates and lignin in biomass. http://www.nrel.gov/biomass/analytical_procedures.html, 2013-03-15/2012-08[14]王省芬, 田海燕, 马峙英, 张桂寅, 玄兆伶, 王文生, 孙艳香. 黄萎病菌诱导下陆地棉抗病品种SSH文库的构建. 棉花学报, 2008, 20(1): 3–8Wang X F, Tian H Y, Ma Z Y, Zhang G Y, Xuan Z L, Wang W S, Sun Y X. SSH library construction of upland cotton resistant cultivar under the stress of Verticillium dahliae. Cotton Sci, 2008, 20(1): 3–8 (in Chinese with English abstract)[15]张纯颖, 王省芬, 张桂寅, 吴立强, 迟吉娜, 李志坤, 马峙英. 黄萎病菌诱导下陆地棉抗病品种SSH文库的EST分析. 棉花学报, 2010, 22: 17–22Zhang C Y, Wang X F, Zhang G Y, Wu L Q, Chi J N, Li Z K, Ma Z Y. ESTs analysis of suppression subtractive hybridization library from upland cotton resistant cultivar infected by Verticillium dahliae. Cotton Sci, 2010, 22(1): 17–22 (in Chinese with English abstract)[16]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[17]张桂寅, 吴立强, 李志坤, 工省芬, 马峙英. 不同抗性品种对棉花黄萎病菌致病力的影响. 棉花学报, 2012, 24: 529–534Zhang G Y, Wu L Q, Li Z K, Wang X F, MA Z Y. Effect of host resistance on the pathogenicity of Verticillium dahliae isolates. Cotton Sci, 2012, 24: 529–534 (in Chinese with English abstract)[18]Zhang Y, Wang X F, Ding Z G, Ma Q, Zhang G R, Zhang S L, Li Z K, Wu L Q, Zhang G Y, Ma Z Y. Transcriptome profiling of Gossypium barbadense inoculated with Verticillium dahliae provides a resource for cotton improvement. BMC Genom, 2013, 14: 637–655[19]Huisman O C. Interrelations of root growth dynamics to epidemiology of root-invading fungi. Ann Rev Phytopathol, 1982, 20: 303–327[20]Debode J, Clewes E, Backer D D, Hoftea M. Lignin is involved in the reduction of Verticillium dahliae var. longisporum inoculum in soil by crop residue incorporation. Soil Biol Biochem, 2005, 37: 301–309[21]Keegstra K. Plant cell walls. Plant Physiol, 2010. 154(2): 483-6[22]张松贺, 马荣才. 伤害和软腐病菌侵染引起大白菜木质素合成途径基因表达水平提高及木质素含量增加. 中国农业生物技术学会第三届会员代表大会暨学术交流会论文摘要集, 2006. 64Zhang S H, Ma R C. The Content of Lignin Improved in Chinese Cabbage and the Trascription Level of Genes in the Lignin Synthesis Pathway Increased Induced by Damage and Erwinia carotovora. Proceedings of the Third China Agricultural Biotechnology Academic Communication and Representative Assembly, 2006. p 64 (in Chinese)[23]Vanholmer R, Demedts B, Morreel K, Ralph J, Boerjan W. Lignin biosynthesis and structure. Plant Physiol, 2010, 153: 895–905[24]Bao W, O'Malley D M, Whetten R, Sederoff R R. A laccase associated with lignification in loblolly pine xylem. Science, 1993, 260: 672–674.[25]Berthet S, Demont-Caulet N, Pollet B, Bidzinski P, Cezard L, Bris P L, Borrega N, Herve J, Blondet E, Balzergue S, Lapierre C, Jouanin L. Disruption of LACCASE4 and 17 results in tissue-specific alterations to lignification of Arabidopsis thaliana stems. Plant Cell, 2011, 23: 1124–1137[26]Dean J F D, LaFayette P R, Rugh C, Tristram A M, Hoopes J T, Eriksson K E L, Markle S A. Laccase associated with lignifying vascular tissues. In: Lewis N G, Sarkanen S, eds. Lignin and lignan biosynthesis. American Chemical Society, Washington, DC. 1998. pp 96–108[27]Li L, Steffens J C. Overexpression of polyphenol oxidase in transgenic tomato plants results in enhanced bacterial disease resistance. Planta, 2002, 215: 239–247[28]王骥, 朱木兰, 卫志明. 棉花漆酶基因在转基因新疆杨中的表达及其对木质素合成的影响. 分子细胞生物学报, 2008, 41: 11–18Wang J, Zhu M L, Wei Z M. Cotton laccase gene overexpression in transgenic Populus alba var. pyramidalis and its effects on the lignin biosynthesis in transgenic plants. J Mol Cell Biol, 2008, 41: 11–18 (in Chinese with English abstract)[29]Wang G D Li Q J, Luo B, Chen X Y. Ex planta phytoremediation of trichlorophenol and phenolic allelochemicals via an engineered secretory Laccasecase. Nat Biotechnol, 2004, 22: 893–897 |
| [1] | Peng Jia-Luo, Li Ying, Li Dan-Dan, Yang Jun-Ning, Guo Xue-Feng, Zhang Wen-Jiao, Yu Xiao-Xue, Zhou Ya-Rong, Wang Zhen-Yu, Wang Cai-Xiang, Ma Xiong-Feng, Su Jun-Ji. Identification of class I LBD family members in upland cotton and function and haplotype analyses of GhLBD6 in regulating flowering period [J]. Acta Agronomica Sinica, 2026, 52(6): 1682-1697. |
| [2] | Zhao Jia-Xue, Zhou Long-Hao, Guo Qi-Yuan, Shang Lun-Xiao, Wang Han, Liu Zhi-Tao, Chen Xi, Zhang Xiao-Pei, Song Xian-Liang, Ahmedov Miraziz Baltaevich, Mao Li-Li. Long-term stubble return and subsoiling enhance cotton yields in coastal saline-alkali soils by improving soil conditions and photosynthetic characteristics [J]. Acta Agronomica Sinica, 2026, 52(5): 1548-1560. |
| [3] | Zhang Xi, Wang Guang-En, Li Shao-Qi, Liu Yi, Li Jun-Lan, Qian Yu-Yuan. Transcriptome sequencing-based analysis on the formation mechanism of fiber micronaire differences between two sister lines derived from Gossypium hirsutum-G. barbadense hybrid [J]. Acta Agronomica Sinica, 2026, 52(5): 1442-1458. |
| [4] | Zhou Qi-Xiang, Zhu Yan, Wang Chu-Bo, Zhu Bo-Lin, Li Jun-Bo, Song Li-Bing. Modeling the effects of climate change on cotton phenology and potential yield in Xinjiang based on the DSSAT model [J]. Acta Agronomica Sinica, 2026, 52(2): 590-602. |
| [5] | LI Yi-Qian, XU Shou-Zhen, LIU Ping, MA Qi, XIE Bin, CHEN Hong. Genome-wide association study of yield components using a 40K SNP array and identification of a stable locus for boll weight in upland cotton (Gossypium hirsutum L.) [J]. Acta Agronomica Sinica, 2025, 51(8): 2128-2138. |
| [6] | GUO Dong-Cai, LYU Tao, CAI Yong-Sheng, MAI WU-LU-DA·AI He-Mai-Ti, CHEN Quan-Jia, QU Yan-Ying, ZHENG Kai. Meta-analysis of QTL and identification of candidate genes for fiber quality in cotton [J]. Acta Agronomica Sinica, 2025, 51(6): 1445-1466. |
| [7] | WANG Ya-Wen, QI Zheng-Yang, YOU Jia-Qi, NIE Xin-Hui, CAO Juan, YANG Xi-Yan, TU Li-Li, ZHANG Xian-Long, WANG Mao-Jun. Preparation of cotton 60K functional locus gene chip and its application to genetic research [J]. Acta Agronomica Sinica, 2025, 51(5): 1178-1188. |
| [8] | DING Jun-Feng, XU Ying-Fei, ZHANG Xiang, CHEN Yuan, CHEN De-Hua. Effects of the plant growth regulator IBA on the survival and growth of substrate- grown transplanted cotton seedlings [J]. Acta Agronomica Sinica, 2025, 51(12): 3331-3341. |
| [9] | HALIHASHI Yibati, ZHANG Yan, LI Qing-Jun, XU Xin-Peng, HE Ping. Study on smart fertilizer recommendation methods based on yield response and agronomic efficiency for cotton [J]. Acta Agronomica Sinica, 2025, 51(11): 3052-3064. |
| [10] | ZHAO Hai-Hong, LI Meng-Yuan, LIU Jin-Jing, WANG Yuan-Yuan, DU Lei, WANG Juan, DONG Cheng-Guang, LI Cheng-Qi. Detection of QTNs and QTN-by-environment interactions for plant height in upland cotton (G. hirsutum L.) using the 3VmrMLM method [J]. Acta Agronomica Sinica, 2025, 51(10): 2619-2631. |
| [11] | LI Ya-Wei, XU Ying-Ying, ZUO Chun-Yang, LIU Ruo-Nan, LIANG Ya-Jun, KONG Jie, ZHANG Xian-Long, MIN Ling. Construction of a meiotic progression identification system in cotton and analysis of its response to high-temperature stress [J]. Acta Agronomica Sinica, 2025, 51(10): 2570-2580. |
| [12] | CHEN Jia-Wei, LIN Yan, ZHANG Ming-Xing, ZHOU Shi-Jing, RAO Li-Qun, ZHOU Chi, LI Xin. Effects of Bacillus velezensis YCH92 on the rhizosphere microbial community and yield of cotton [J]. Acta Agronomica Sinica, 2025, 51(10): 2821-2835. |
| [13] | XU Lin-Shan, GAO Geng-Dong, WANG Yu, WANG Jia-Xing, YANG Ji-Zhao, WU Ya-Rui, ZHANG Xiao-Han, CHANG Ying, LI Zhen, XIE Xiong-Ze, GONG De-Ping, WANG Jing, GE Xian-Hong. Analysis of expression patterns of laccase gene family members in Brassica napus and their association with stem fracture resistance [J]. Acta Agronomica Sinica, 2025, 51(1): 134-148. |
| [14] | XIE Zhang-Shu, XIE Xue-Fang, TU Xiao-Ju, LIU Ai-Yu, DONG He-Zhong, ZHOU Zhong-Hua. Research progress in phytohormone regulation of square and boll shedding in cotton [J]. Acta Agronomica Sinica, 2025, 51(1): 1-29. |
| [15] | XIN Ming-Hua, MI Ya-Di, WANG Guo-Ping, LI Xiao-Fei, LI Ya-Bing, DONG He-Lin, HAN Ying-Chun, FENG Lu. Effect of row spacing configuration and density regulation on dry matter production and yield in cotton [J]. Acta Agronomica Sinica, 2025, 51(1): 221-232. |
|
||