Allelopathic effects of twelve hedgerow plant species on seed germination and seedling growth of wheat (Triticum astivum L)

文献类型: 外文期刊

第一作者: Cheng, Xu

作者: Cheng, Xu;Cai, Qingnian;Lin, Chaowen

作者机构:

关键词: Aqueous extracts;Allelopathy;Germination;Growth;Wheat;Hedgerow plants

期刊名称:PROGRESS IN ENVIRONMENTAL SCIENCE AND ENGINEERING (ICEESD2011), PTS 1-5

ISSN: 1022-6680

年卷期: 2012 年 356-360 卷

页码:

收录情况: SCI

摘要: In laboratory bioassay, conducted to study the allelopathic influence of aqueous extracts (0, 2.5, 5.0, 7.5, 10.0% concentration) of twelve hedgerow plant species (Amorpha fruticosa L., Citrus reticulate Banco., Coronilla varia L., Eriobotrya japonica Thunb., Eulaliopsis binata Retz., Gynura bicolor DC., Hemerocallis citrine Baroni., Medicago sativa L., Morus alba L., Toona sinensis Roem., Vetiveria zizanioides L., Zanthoxylum schinifolium Sieb.) which planted in the purple hilly area of Sichuan basin in China was on the germination and seedling growth of wheat (Triticum astivum L.). At 10.0% concentration, The aqueous extracts of twelve hedgerow plant species significantly inhibited the seed germination and seedling growth of wheat except that A. fruticosa, E. binata and V. zizanioides extracts had no effect or slight inhibition on germination of wheat, but the degree of inhibition was species dependent. The allelopathic effect of aqueous extracts from hedgerow plants on wheat was maximum with G. bicolor, H. citrine, C. varia and M. sativa in terms of germination, and G. bicolor, M. sativa, M. alba and H. citrine in terms of shoot length, root length and dry weight, respecitively. The degree of inhibition increased with increase in concentration. Duplication of this work under field conditions is needed, for which the results of this study will form a valuable base.

分类号:

  • 相关文献

[1]Allelopathic effects of Conyza canadesis the germination and growth of wheat, sorghum, cucumber, rape and radish. Gao, Xingxiang,Li, Mei,Gao, Zongyun,Zhang, Hongjun,Sun, Zuowen.

[2]Two compounds from allelopathic rice accession and their inhibitory activity on weeds and fungal pathogens. Xu, XH,Zhou, B,Hu, F,Zhang, CX,Zhang, MX.

[3]Allelopathic effects of Hulless barley (Hordeum vulgare L.) on rape (Brassica campestris L.). Li, W.,Shen, S.,Guo, Q. Y.,Li, W.,Shen, S.,Guo, Q. Y.,Li, W.,Shen, S.,Guo, Q. Y.,Li, W.,Shen, S.,Guo, Q. Y..

[4]Allelopathic effects of aerial parts of Descurainia sophia L. on wheat. Liu, X. G.,Lu, C. H.,Dong, F. S.,Xu, J.,Wu, Y. B.,Zheng, Y. Q.,Tian, F. J.,Wu, Y. B.. 2016

[5]Isolation and Identification of Potential Allelochemicals from Aerial Parts of Avena fatua L. and Their Allelopathic Effect on Wheat. Tian, Fajun,Tian, Yingying,Dong, Fengshou,Xu, Jun,Zheng, Yongquan,Tian, Fajun,Wu, Yanbing.

[6]Chemical inducement of 2,4-dihyroxy-7-methoxy-1, 4-benzoxazin-3-one (DIMBOA) in wheat seedlings. Liu, Xingang,Yao, Jianren,Dong, Fengshou,Zhao, Yuan. 2008

[7]Effects of phenanthrene on seed germination and some physiological activities of wheat seedling. Wei, Haiying,Song, Shanjuan,Liu, Ting,Tian, Hongling. 2014

[8]Damage repair effect of He-Ne laser on wheat exposed to enhanced ultraviolet-B radiation. Sun, Yi,Yang, Liyan,Han, Rong,Sun, Yi.

[9]Comparative metabolic responses and adaptive strategies of wheat (Triticum aestivum) to salt and alkali stress. Guo, Rui,Li, Feng,Yan, Changrong,Zhong, Xiuli,Liu, Qi,Xia, Xu,Li, Haoru,Yang, Zongze,Zhao, Long. 2015

[10]Efficient somatic embryogenesis in sugar beet (Beta vulgaris L.) breeding lines. Zhang, Chun-Lai,Chen, Dong-Fang,Kubalakova, Marie,Zhang, Jian,Scott, Nigel W.,Elliott, Malcolm C.,Slater, Adrian,Zhang, Chun-Lai,Chen, Dong-Fang,Kubalakova, Marie,Zhang, Jian.

[11]Negative Effects of Oxytetracycline on Wheat (Triticum aestivum L.) Growth, Root Activity, Photosynthesis, and Chlorophyll Contents. Li Zhao-jun,Xie Xiao-yu,Zhang Shu-qing,Liang Yong-chao. 2011

[12]Wheat acclimate to water deficit by modifying carbohydrates metabolism, water use efficiency, and growth. Hu, MengYun,Li, Hui,Shi, ZhiGang,Xu, Ping,Zhang, Zhengbin.

[13]The effects of N deposition on allelopathic potential of invasive plant Spartina alterniflora Loisel. Li, F. R.,Liang, S. C.,Li, M.,Duan, L. L..

[14]Allelopathic effects of Hemistepta lyrata on the germination and growth of wheat, sorghum, cucumber, rape, and radish seeds. Gao, Xingxiang,Li, Mei,Gao, Zongjun,Li, Changsong,Sun, Zuowen.

[15]Relationship Between Allelopathic Effects and Functional Traits of Different Allelopathic Potential Rice Accessions at Different Growth Stages. Xu Gaofeng,Shen Shicai,Zhang Fudou,Zhang Yun,Hisashi, Kato-Noguchi,David, Roy Clements. 2018

[16]Allelopathic effects of allelochemicals of Ginkgo biloba leaf on fusarium wilt (Fusarium oxysporum) of hot pepper. Hou, Y. X.,Song, X. Y.,Yin, Y. L.,Li, Y. S.,Yang, J. S.,Zheng, J. Y.,Yin, Y. L.. 2016

[17]Weed-suppression ability of Oryza longistaminata and Oryza sativa. Zhanq, Fudou,Li, Tianlin,Shan, Qinli,Guo, Yiqing,Xu, Peng,Hu, Fengyi,Tao, Dayun. 2008

[18]Polyphenols and fatty acids responsible for anti-cyanobacterial allelopathic effects of submerged macrophyte Myriophyllum spicatum. Nakai, S.,Zou, G.,Okuda, T.,Nishijima, W.,Hosomi, M.,Okada, M..

[19]Use of allelopathy for weed management in China - A Review. Zhang, CX.

[20]Effects of three long-chain fatty acids present in peanut (Arachis hypogaea L.) root exudates on its own growth and the soil enzymes activities. Liu, Z. H.,Wang, C. B.,Guo, F.,Wang, M.,Zhang, Y. F.,Dong, L.,Wan, S. B..

作者其他论文 更多>>