Litterbag decomposition of residues from Bacillus thuringiensis (Bt) rice hybrids and the parental lines under multiple field conditions

文献类型: 外文期刊

第一作者: Xiao, Manqiu

作者: Xiao, Manqiu;Fang, Changming;Dong, Shanshan;Luo, Fuhua;Song, Zhiping;Tang, Xu;Chen, Yi;Yang, Shengmao;Wang, Feng;Su, Jun

作者机构:

关键词: Bt rice;Crop-wild hybrid;Cry1Ac protein;Degradation;Litter decomposition;Ecological risk

期刊名称:JOURNAL OF SOILS AND SEDIMENTS ( 影响因子:3.308; 五年影响因子:3.586 )

ISSN: 1439-0108

年卷期: 2014 年 14 卷 10 期

页码:

收录情况: SCI

摘要: The cultivation of genetically modified (GM) crops has raised environmental concerns, since large amounts of plant materials remain in the field after harvesting. Specific proteins of GM crops might negatively impact soil ecosystem by changing residue decomposition dynamics. Particularly, the residue decomposition of crop-wild hybrids, which were formed through transgene escape to wild population, remains unexplored. We used litter bags to assess residue (leaves, stems and roots) decomposition dynamics of two stacked genes from Bacillus thuringiensis (Bt) Cry1Ac and the sck (a modified CpTI gene encoding a cowpea trypsin-inhibitor) (Bt/CpTI) rice lines (Kefeng-6 and Kefeng-8), a non-transgenic rice near isoline (Minghui86), wild rice (Oryza rufipogon) and Bt wild rice at three sites. The enzyme-linked immunosorbent assay (ELISA) was used to monitor the changes of the Cry1Ac protein in Bt rice residues. Mass remaining, total N and total C concentrations of rice residues declined over time and varied among plant tissues, with significant differences among cultivar, crop-wild hybrids and wild rice, but no differences between Bt and non-Bt rice cultivars. The initial concentration of Cry1Ac was higher in leaves and stems than in roots and was different between rice types. The degradation dynamics of Cry1Ac fitted best to a first-order kinetics model and correlated with the level of total nitrogen in residues but did not correlate with the mass decomposition rate. The predicted DT50 (50 % degradation time) of the protein ranged from 10.7 to 63.6 days, depending on plant types, parts and burial sites. By the end of the study (similar to 170 days), the protein was present in low concentration in the remaining residues. Our results suggest that the impacts of the stacked Bt/CpTI gene inserts on the decomposition dynamics of rice residues are insignificant.

分类号:

  • 相关文献

[1]Effects of water management practices on residue decomposition and degradation of Cry1Ac protein from crop-wild Bt rice hybrids and parental lines during winter fallow season. Xiao, Manqiu,Dong, Shanshan,Li, Zhaolei,Ouyang, Dongxin,Fang, Changming,Song, Zhiping,Tang, Xu,Chen, Yi,Yang, Shengmao,Wu, Chunyan.

[2]Degradation of Cry1Ac protein within Transgenic Bacillus thuringiensis rice tissues under field and laboratory conditions. Wu, Kongming,Zhang, Yongjun,Yuan, Guohui. 2007

[3]Persistence of transgenes in wild rice populations depends on the interaction between genetic background of recipients and environmental conditions. Dong, S. S.,Xiao, M. Q.,Ouyang, D. X.,Lu, B. -R.,Chen, J. K.,Song, Z. -P.,Dong, S. S.,Rong, J.,Rong, J.,Su, J.,Wang, F..

[4]Predicting soil fauna effect on plant litter decomposition by using boosted regression trees. Zhang, Weidong,Yuan, Shufen,Wang, Silong,Zhang, Weidong,Wang, Silong,Yuan, Shufen,Hu, Ning,Lou, Yilai.

[5]Litter decomposition and nutrient release as affected by soil nitrogen availability and litter quality in a semiarid grassland ecosystem. Liu, Ping,Huang, Jianhui,Han, Xingguo,Sun, Osbert Jianxin,Liu, Ping.

[6]Resistance monitoring of Helicoverpa armigera (Lepidoptera : Noctuidae) to Bacillus thuringiensis insecticidal protein in China. Guo, YY,Lv, N,Greenplate, JT,Deaton, R. 2002

[7]Dissipation of Insecticidal Cry1Ac Protein and Its Toxicity to Nontarget Aquatic Organisms. Du, Juan,You, Jing,Li, Yan-Liang,Du, Juan,Li, Yan-Liang,Fang, Zhi-Xiang. 2013

[8]Total nitrogen and pH-controlled chemical speciation, bioavailability and ecological risk from Cd, Cr, Cu, Pb and Zn in the water level-fluctuating zone sediments of the Three Gorges Reservoir. He, Li-ping,He, Li-ping,Lin, Jun-jie,Fu, Chuan,Liu, Zheng-xue,Liu, Dan,Lin, Jun-jie,Yu, Zhi-guo,Zhao, Qiao-hua,Yang, Xiao-xia. 2017

[9]Different influences of field aging on nickel toxicity to Folsomia candida in two types of soil. Liu, Yu-Rong,Li, Jing,He, Ji-Zheng,Zheng, Yuan-Ming,Ma, Yi-Bing.

[10]Speciation and risk of heavy metals in sediments and human health implications of heavy metals in edible nekton in Beibu Gulf, China: A case study of Qinzhou Bay. Gu, Yang-Guang.

[11]Assessment of organochlorine pesticide contamination in relation to soil properties in the Pearl River Delta, China. Yu, Huan-Yun,Li, Fang-Bai,Yu, Wei-Min,Yang, Guo-Yi,Zhou, Shun-Gui,Zhang, Tian-Bin,Gao, Yuan-Xue,Wan, Hong-Fu,Li, Yong-Tao.

[12]Effect of land use type on metals accumulation and risk assessment in soil in the peri-urban area of Beijing, China. Xu, Li,Lu, Anxiang,Wang, Jihua,Ma, Zhihong,Pan, Ligang,Feng, Xiaoyuan,Xu, Li,Lu, Anxiang,Wang, Jihua.

[13]Metal pollution status in Zhelin Bay surface sediments inferred from a sequential extraction technique, South China Sea. Gu, Yang-Guang,Lin, Qin,Jiang, Shi-Jun,Wang, Zhao-Hui,Gu, Yang-Guang,Lin, Qin,Gu, Yang-Guang,Lin, Qin.

[14]Production of marker-free transgenic rice expressing tissue-specific Bt gene. Qiu, Chengxiang,Sangha, Jatinder Singh,Zhou, Zhiyun,Yin, Ao,Gu, Keyu,Tian, Dongsheng,Yin, Zhongchao,Song, Fengshun,Yang, Jianbo. 2010

[15]Impacts of Six Bt Rice Lines on Nontarget Rice Feeding Thrips Under Laboratory and Field Conditions. Tian, J. C.,Chen, Y.,Fang, Q.,Hu, C.,Ye, G. Y.,Chen, M.,Peng, Y. F.. 2010

[16]Toxicological assessment of pollen from different bt rice lines on Bombyx mori (Lepidoptera : Bombyxidae). Jiang, Cai-Ying,Ye, Gong-Yin,Hu, Cui,Jiang, Cai-Ying,Peng, Yu-Fa. 2008

[17]Effects of two bt rice lines T2A-1 and T1C-19 on the ecological fitness and detoxification enzymes of nilaparvata lugens (hemiptera: Delphacidae) from different populations. Yang, Yajun,He, Jingjing,Dong, Biqin,Xu, Hongxing,Zheng, Xusong,Lu, Zhongxian,He, Jingjing,Fu, Qiang,Lin, Yongjun,Lin, Yongjun.

[18]Bt rice expressing Cry1Ab does not stimulate an outbreak of its non-target herbivore, Nilaparvata lugens. Tian, Jun-Ce,Wang, Wei,Fang, Qi,Akhtar, Zunnu Raen,Cui, Hu,Ye, Gong-Yin,Chen, Yang,Tian, Jun-Ce,Wang, Wei,Fang, Qi,Akhtar, Zunnu Raen,Cui, Hu,Ye, Gong-Yin,Peng, Yu-Fa,Guo, Yu-Yuan,Song, Qi-Sheng.

[19]INGESTION OF Bt RICE POLLEN DOES NOTREDUCE THE SURVIVALORHYPOPHARYNGEAL GLAND DEVELOPMENT OF APIS MELLIFERA ADULTS. Chen, Xiuping,Romeis, Jorg,Peng, Yufa,Li, Yunhe,Wang, Yuanyuan,Chen, Xiuping,Romeis, Jorg,Peng, Yufa,Li, Yunhe,Wang, Yuanyuan,Shi, Jianrong,Dai, Pingli.

[20]Does Bt rice pose risks to non-target arthropods? Results of a meta-analysis in China. Lu, Zengbin,Wang, Long,Chang, Xuefei,Wang, Fang,Yao, Hongwei,Ye, Gongyin,Dang, Cong,Lu, Zengbin,Wang, Long,Chang, Xuefei,Wang, Fang,Yao, Hongwei,Ye, Gongyin,Lu, Zengbin,Peng, Yufa,Stanley, David.

作者其他论文 更多>>