数字农科院2.0

Changes in Soil Biota Resulting from Growth of the Invasive Weed, Ambrosia artemisiifolia L. (Compositae), Enhance Its Success and Reduce Growth of Co-Occurring Plants

文献类型: 外文期刊

作者: Xiao Bo;Liu Wan-xue;Wan Fang-hao

作者机构:

关键词: biological invasion;invasive alien plant;Ambrosia artemisiifolia L.;soil biota;soil fertility

期刊名称: JOURNAL OF INTEGRATIVE AGRICULTURE

ISSN: 2095-3119

年卷期: 2014 年 13 卷 9 期

页码:

收录情况: SCI

摘要: Exotic plant invasion presents a serious threat to native ecosystem structure and function. Little is known about the role of soil microbial communities in facilitating or resisting the spread of invasive plants into native communities. The purpose of this research is to understand how the invasive annual plant Ambrosia artemisiifolia L. facilitates its competition capacity through changing the structure and function of soil microbial communities. The soil characteristics of different areas invaded by A. artemisiifolia were examined. Greenhouse experiments were designed to assess the effect of A. artemisiifolia invasion-induced changes of soil biota on co-occurring plant growth, and on the interactions between A. artemisiifolia and three co-occurring plant species. The results showed that the soil organic C content was the highest in heavily invaded sites, the lowest in native plant sites, and intermediate in newly invaded sites. Soil available N, P and K concentrations in heavily invaded site were 2.4, 1.9 and 1.7 times higher than those in native plant soil, respectively. Soil pH decreased as A. artemisiifolia invasion intensity increased, and was lower in invaded sites (heavily invaded and newly invaded) than in native plant sites. The soil microbial community structure was clearly separated in the three types of sites, and A. artemisiifolia invasion increased anaerobe, sulfate-reducing bacteria and actinomycete abundance. Soil biota of invaded sites inhibits growth of co-occurring plants (Galinsoga parviflora Cav., Medicago sativa L. and Setaria plicata (Lam.) T. Cooke.) compared to soil biota from un-invaded sites, but facilitates A. artemisiifolia growth and competition with co-occurring plants. A. artemisiifolia biomass was 50-130% greater when competing with three co-occurring plants, compared to single-species competition only (invasion by A. artemisiifolia alone), in heavily invaded soil. Results of the present study indicated that A. artemisiifolia invasion alters the soil microbial community in a way that favors itself while inhibiting native plant species, with measurable effects on performance of co-occurring plants.

分类号:

  • 相关文献

[1]Diversity-conditioned soil strengthens plant diversity-productivity relationship. Ren, Haiyan,Xie, Jiayao,Li, Kang,Shi, Sibo,Li, Xianping,Guo, Hui,Liu, Manqiang,Yu, Qiang. 2023

[2]Native Plant Diversity Provides Resistance to Invasion by an Alien Species in Natural and Experimental Settings. Zhen Liu,Biao Zhu,Lunlun Gao,Chunqiang Wei,Evan Siemann,Wanxue Liu,Xinmin Lu. 2025

[3]Progress in Significant Soil Science Fields of China over the Last Three Decades: A Review. Zhao Qi-Guo,Yan Xiao-Yuan,Zhang Gan-Lin,Cai Zu-Cong,He Ji-Zheng,Zhang Bin.

[4]Aerated Reclaimed Water Drip Irrigation Improves Soil Fertility and Beneficial Microbial Enrichment in Maize Rhizospheres. Chen, Jiayao,Li, Peng,Lu, Yunchao,Wang, Yuqiao,Junejo, Abdul Rahim,Li, Hao. 2025

[5]UAV and a deep convolutional neural network for monitoring invasive alien plants in the wild. Huang, Yiqi,Liu, Qi,Qian, Wanqiang,Liu, Qi,Wan, Fanghao,Qiao, Xi,Qiao, Xi,Dong, Hui,Fan, Wei,Dong, Hui,Sun, Zhongyu. 2020

[6]Projecting global shifts in the invasive potential of Bidens pilosa L. under climate change using species distribution models. Fan, Linran,Mi, Chunxiao,Li, Jialu,Zhang, Yanjun,Zhang, Haifang,Zhang, Guilong,Wang, Hui. 2025

[7]Control of the invasive weed Ambrosia artemisiifolia with Ophraella communa and Epiblema strenuana. Chen, Hong-Song,Zheng, Xing-Wen,Guo, Jian-Ying,Guo, Wei,Li, Min,Luo, Min,Wan, Fang-Hao,Chen, Hong-Song,Zheng, Xing-Wen,Li, Min. 2014

[8]Effects of host, temperature and relative humidity on competitive displacement of two invasive Bemisia tabaci biotypes [Q and B]. Tao, Yun-Li,Zhang, You-Jun,Wan, Fang-Hao,Brown, Judith K.. 2012

[9]Regeneration capacity of the small clonal fragments of the invasive Mikania micranthaHBK: effects of the stolon thickness, internode length and presence of leaves. Huang, Qiaoqiao,Shen, Yide,Li, Xiaoxia,Huang, Dongdong,Fan, Zhiwei,Zhang, Guoliang.

[10]cDNA Cloning of Heat Shock Protein Genes and Their Expression in an Indigenous Cryptic Species of the Whitefly Bemisia tabaci Complex from China. Wan Fang-hao,Guo Jian-ying,Yu Hao. 2012

[11]Population Structure of the Greenhouse Whitefly, Trialeurodes vaporariorum (Westwood), an Invasive Species from the Americas, 60 Years after Invading China. Gao, Rui-Rui,Zhang, Wen-Ping,Zhang, Rui-Ming,Zhou, Hong-Xu,Chu, Dong,Wu, Huai-Tong,Pan, Hui-Peng,Zhang, You-Jun,Brown, Judith K.. 2014

[12]The status and causes of alien species invasion in China. Xu, Haigen,Qiang, Sheng,Han, Zhengmin,Guo, Jianying,Huang, Zongguo,Sun, Hongying,He, Shunping,Ding, Hui,Wu, Hairong,Wan, Fanghao.

[13]The distribution and economic losses of alien species invasion to China. Xu, Haigen,Ding, Hui,Li, Mingyan,Qiang, Sheng,Guo, Jianying,Han, Zhengmin,Huang, Zongguo,Sun, Hongying,He, Shunping,Wu, Hairong,Wan, Fanghao.

[14]Investigation of the genetic diversity of an invasive whitefly (Bemisia tabaci) in China using both mitochondrial and nuclear DNA markers. Gao, C. S.,Chu, D.,Gao, C. S.,Gao, C. S.,De Barro, P.,Wan, F. H.,Zhang, Y. J..

[15]Species displacements are common to two invasive species of leafminer fly in China, Japan, and the United States. Lei, Zhongren,Abe, Yoshihisa,Reitz, Stuart R..

[16]Ageratina Adenophora Invasions Are Associated W.ith Microbially Mediated Differences I n Biogeochemical Cycles. Yang, Yunfeng,Zhao, Haixia,Lu, Xiaofei,Wan, Fanghao,Zhou, Jizhong,Wan, Fanghao,Zhou, Jizhong,Zhao, Mengxin,Zhao, Mengxin,Hale, Lauren,Li, Qiao,Hale, Lauren,Gao, Qun,Guo, Jianying,Liu, Wanxue. 2019

[17]Chromosome-level genome assembly and population genomic analyses provide insights into adaptive evolution of the red turpentine beetle, Dendroctonus valens. Zhudong Liu,Longsheng Xing,Wanlong Huang,Bo Liu,Fanghao Wan,Kenneth F. Raffa,Richard W. Hofstetter,Wanqiang Qian,Jianghua Sun. 2022

[18]Tuta absoluta management in China: progress and prospects. Wang, Ming-hui,Ismoilov, Khasan,Liu, Wan-xue,Bai, Ming,Bai, Xiao-shuan,Chen, Bin,Chen, Haoliang,Chen, Hong-song,Dong, Yong-cheng,Fang, Kui,Gui, Fu-rong,Huang, Guo-Hua,Jiang, Chun-mei,Jiang, Hong-bo,Li, Xiao-wei,Luo, Chen,Lu, Zhao-zhi,Lu, Yao-bin,Ma, De-ying,Pu, De-qiang,Qu, Yanyan,Sang, Wen,Song, Li-mei,Sun, Xiao,Sun, Yuan-xing,Wan, Bin,Wang, Xin-pu,Yang, Wen-jia,Yang, Xue-qing,Yao, Feng-Luan,Ye, Zheng-pei,Zhang, Li-yun,Zhang, Xiao-ming,Zhang, Ye,Zhao, Chen-chen,Zhou, Qiong,Zhou, Wen-wu,Zhu, Wen-ya,Rodriguez-Saona, Cesar,Biondi, Antonio,Jaworski, Coline C.,Zhang, Yibo,Desneux, Nicolas,Han, Peng. 2024

[19]Biology, impact, management and potential distribution of Aromia bungii, a major threat to fruit crops around the world. Horrocks, Kiran Jonathan,Zhang, Jinping,Haye, Tim,Seehausen, M. Lukas,Maggini, Ramona,Xian, Xiaoqing,Chen, Juhong,Nugnes, Francesco,Collatz, Jana,Gruber, Angela,Gariepy, Tara D.. 2024

[20]Global Potential Geographic Distribution of Anthonomus eugenii Under Climate Change: A Comprehensive Analysis Based on an Ensemble Modeling Approach. Peilin Wang,Ming Yang,Haoxiang Zhao,Dandan Wei,Guifen Zhang,Hongbo Jiang,Chi Zhang,Xiaoqing Xian,Hongkun Huang,Yibo Zhang. 2025

作者其他论文 更多>>