Zinc uptake kinetics in the low and high-affinity systems of two contrasting rice genotypes

文献类型: 外文期刊

第一作者: Meng, Fanhua

作者: Meng, Fanhua;Liu, Di;Yang, Xiaoe;Shohag, M. J. I.;Li, Tingqiang;Lu, Lingli;Feng, Ying;Meng, Fanhua;Yang, Juncheng

作者机构:

关键词: influx rate;low-affinity system;Michaelis-Menten kinetics;Oryza sativa;zinc efficiency

期刊名称:JOURNAL OF PLANT NUTRITION AND SOIL SCIENCE ( 影响因子:2.426; 五年影响因子:3.029 )

ISSN:

年卷期:

页码:

收录情况: SCI

摘要: Rice (Oryza sativa L.) cultivars differ widely in their susceptibility to zinc (Zn) deficiency. The physiological basis of Zn efficiency (ZE) is not clearly understood. In this study, the effects of Znsufficient and Zn-deficient pretreatments on the time and concentration-dependent uptake kinetics of Zn were examined at low (0-160 nM) and high Zn supply levels (0-80 lM) in two contrasting rice genotypes (Zn-efficient IR36 and Zn-inefficient IR26). The results show that ~(65)Zn~(2+) influx rate was over 10 times greater for the Zn-deficient pretreatment plants than for the Zn-sufficient pretreatment plants. At low Zn supply, significant higher ~(65)Zn~(2+) influx rates were found for the Zn-efficient genotype than for the inefficient genotype, with a greater difference (over threefold) at Zn supply > 80 nM in the Zn-deficient pretreatments. At high Zn supply levels, however, a difference (2.5-fold) in ~(65)Zn~(2+) influx rate between the two genotypes was only noted in the Zndeficient pretreatments. Similarly, the ~(65)Zn~(2+) accumulation in the roots and shoots of Zn-efficient IR36 pretreated with Zn-deficiency were sharply increased with time and higher than that in the Zn-inefficient IR26 with an over four-fold difference at 2 h absorption time. However, with Zndeficient pretreatments, the Zn-efficient genotype showed a higher shoot: root 65Zn ratio at higher Zn supply. Remarkable differences in root and shoot ~(65)Zn~(2+) accumulation were noted between the two genotypes in the Zn-deficiency pretreatment, especially at low Zn level (0.05 lM), with 2-3 times higher values for IR36 than for IR26 at an uptake time of 120 min. There appear to be two separate Zn transport systems mediating the low and high-affinity Zn influx in the efficient genotype. The low-affinity system showed apparent Michaelis-Menten rate constant (K_m) values ranging from 10 to 20 nM, while the high-affinity uptake system showed apparent K_m values ranging from 6 to 20 lM. The V_(max) value was significantly elevated in IR36 and was 3-4-fold greater for IR36 than for IR26 at low Zn levels, indicating that the number of root plasma membrane transporters in low-affinity uptake systems play an important role for the Zn efficiency of rice.

分类号: S1

  • 相关文献

[1]Indices to screen for grain yield and zinc mass concentrations in aerobic rice at different soil-Zn levels. Jiang, W.,Struik, P. C.,Stomph, T. J.,Jiang, W.,Zhao, M.,Van Keulen, H.,Fan, T. Q.. 2008

[2]Two-year simultaneous records of N2O and NO fluxes from a farmed cropland in the northern China plain with a reduced nitrogen addition rate by one-third. Yan, Guangxuan,Zheng, Xunhua,Cui, Feng,Yao, Zhisheng,Zhou, Zaixing,Deng, Jia,Xu, Yu. 2013

[3]Effects of elevated air temperature on physiological characteristics of flag leaves and grain yield in rice. Liu, Qi-Hua,Wu, Xiu,Ma, Jia-Qing,Zhou, Xue-Biao,Li, Tian. 2013

[4]Detection of epistatic interactions of three QTLs for heading date in rice using single segment substitution lines. Ding, Han-Feng,Liu, Xu,Li, Run-Fang,Wang, Wen-Ying,Zhang, Y.,Zhang, Xiao-Dong,Yao, Fang-Yin,Li, Guang-Xian,Jiang, Ming-Song,Ding, Han-Feng.

[5]Virus resistance obtained in transgenic tobacco and rice by RNA interference using promoters with distinct activity. Zhang, C.,Song, Y.,Jiang, F.,Jiang, Y.,Zhu, C.,Wen, F.,Li, G..

[6]Application of silicon fertilizer affects nutritional quality of rice. Liu, Qihua,Zhou, Xuebiao,Sun, Zhaowen. 2017

[7]Fine mapping of a minor-effect QTL, DTH12, controlling heading date in rice by up-regulation of florigen genes under long-day conditions. Zhong, Zhengzheng,Zhang, Xin,Cheng, Zhijun,Wang, Jiulin,Wan, Jianmin,Zhong, Zhengzheng,Wu, Weixun,Wang, Hongjun,Chen, Liping,Liu, Linglong,Wang, Chunming,Zhao, Zhigang,Lu, Guangwen,Gao, He,Wei, Xiangjin,Yu, Chuanyuan,Chen, Mingjiang,Shen, Yingyue,Jiang, Ling,Wan, Jianmin. 2014

[8]Dissecting yield-associated loci in super hybrid rice by resequencing recombinant inbred lines and improving parental genome sequences. Gao, Zhen-Yu,Guo, Long-Biao,Peng, You-Lin,Rao, Yu-Chun,Dong, Guo-Jun,Hu, Jiang,Liu, Hui-Juan,Xu, Jie,Zeng, Da-Li,Gong, Li-Hui,Zhang, Guang-Heng,Tian, Fu-Kuan,Xue, Da-Wei,Zhu, Li,Cheng, Shi-Hua,Qian, Qian,Zhao, Shan-Cen,He, Wei-Ming,Wang, Jin-Jin,Guo, Xiao-Sen,Zhang, Xue-Mei,Zhang, Chi,Zheng, Feng-Ya,Lu, Chang-Xin,Zhou, Qing,Wu, Hai-Yang,Ni, Pei-Xiang,Liu, Deng-Hui,Ye, Chen,Wang, Jian,Zhang, Geng-Yun,Wang, Jun,Zhang, Geng-Yun,Zhao, Shan-Cen,Zheng, Feng-Ya,Zhao, Shan-Cen,Zheng, Feng-Ya,Rao, Yu-Chun,Tian, Peng,Liao, Yi,Chen, Ming-Sheng,Li, Jia-Yang.

[9]The germin-like protein OsGLP2-1 enhances resistance to fungal blast and bacterial blight in rice. Liu, Qing,Zhang, Shaohong,Zhao, Junliang,Yang, Tifeng,Wang, Xiaofei,Mao, Xingxue,Dong, Jingfang,Liu, Bin,Liu, Qing,Zhang, Shaohong,Zhao, Junliang,Yang, Tifeng,Wang, Xiaofei,Mao, Xingxue,Dong, Jingfang,Liu, Bin,Yang, Jianyuan,Wang, Wenjuan,Zhu, Xiaoyuan,Yan, Shijuan.

[10]Characterization of Grain Quality and Starch Fine Structure of Two Japonica Rice (Oryza Sativa) Cultivars with Good Sensory Properties at Different Temperatures during the Filling Stage. Zhang, Changquan,Zhou, Lihui,Lu, Huwen,Zhou, Xingzhong,Qan, Yiting,Li, Qianfeng,Lu, Yan,Gu, Minghong,Liu, Qiaoquan,Zhou, Lihui,Zhu, Zhengbin.

[11]Comprehensive molecular evolution and gene expression analyses of the ABC1 atypical kinase family in rice and Arabidopsis. Gao, Qingsong,Luo, Yuming,Yang, Liming,Zang, Hui,Gao, Yun,Yang, Zefeng,Zhou, Yong,Yuan, Yuan,Wang, Yifan,Xu, Xing,Xu, Chenwu,Liang, Guohua,Wang, Jun.

[12]Combinations of the Ghd7, Ghd8 and Hd1 genes largely define the ecogeographical adaptation and yield potential of cultivated rice. Zhou, Xiangchun,Yan, Wenhao,Zhang, Zhanyi,Lu, Li,Han, Zhongmin,Zhao, Hu,Liu, Haiyang,Song, Pan,Hu, Yong,Shen, Guojing,He, Qin,Wang, Gongwei,Xing, Yongzhong,Zhang, Jia,Zhou, Xiangchun,Yan, Wenhao,Zhang, Zhanyi,Lu, Li,Han, Zhongmin,Zhao, Hu,Liu, Haiyang,Song, Pan,Hu, Yong,Shen, Guojing,He, Qin,Wang, Gongwei,Xing, Yongzhong,Guo, Sibin,Gao, Guoqing.

[13]Antagonistic HLH/bHLH Transcription Factors Mediate Brassinosteroid Regulation of Cell Elongation and Plant Development in Rice and Arabidopsis. Zhang, Li-Ying,Bai, Ming-Yi,Zhu, Jia-Ying,Wang, Hao,Wang, Wenfei,Zhao, Jun,Yang, Hongjuan,Xu, Yunyuan,Lin, Wen-Hui,Chong, Kang,Wang, Zhi-Yong,Zhang, Li-Ying,Zhu, Jia-Ying,Wang, Hao,Wang, Wenfei,Zhao, Jun,Bai, Ming-Yi,Sun, Yu,Wang, Zhi-Yong,Wu, Jinxia,Zhang, Zhiguo,Sun, Xuehui,Lu, Tiegang,Kim, Soo-Hwan,Fujioka, Shozo.

[14]QTL analysis for resistance to preharvest sprouting in rice (Oryza sativa). Zhang, Y. Z.,Gao, F. Y.,Ren, G. J.,Lu, X. J.,Sun, S. X.,Li, H. J.,Gao, Y. M.,Luo, H.,Yan, W. G..

[15]Identification of interspecific heterotic loci associated with agronomic traits in rice introgression lines carrying genomic fragments of Oryza glaberrima. Nassirou, Tondi Yacouba,He, Wenchuang,Chen, Caijin,Nsabiyumva, Athanase,Dong, Xilong,Yin, Yilong,Rao, Quanqin,Zhou, Wei,Shi, Han,Zhao, Wubin,Jin, Deming,Nevame, Adedze Y. M..

[16]TSV, a putative plastidic oxidoreductase, protects rice chloroplasts from cold stress during development by interacting with plastidic thioredoxin Z. Sun, Juan,Zheng, Tianhui,Yu, Jun,Wu, Tingting,Wang, Xinhua,Chen, Gaoming,Tian, Yunlu,Zhang, Huan,Wang, Yihua,Wang, Chunming,Wan, Jianmin,Terzaghi, William,Wang, Chunming,Wan, Jianmin.

[17]Fine mapping of a day-length-sensitive dwarf gene in rice. Wang, Min,Qin, Ruizhen,Luo, Sheng,Cheng, Zhijun,Chen, Liping,Wang, Fan,Zhang, Haitao,Shi, Yingrao,Chen, Qinquan.

[18]Relative effects of ammonia and nitrite on the germination and early growth of aerobic rice. Haden, Van R.,Hobbs, Peter,Duxbury, John M.,Xiang, Jing,Peng, Shaobing,Bouman, Bas A. M.,Visperas, Romeo,Ketterings, Quirine M..

[19]Overexpression of ethylene response factor TERF2 confers cold tolerance in rice seedlings. Tian, Yun,Zhang, Haiwen,Pan, Xiaowu,Chen, Xiaoliang,Zhang, Zhijin,Huang, Rongfeng,Tian, Yun,Lu, Xiangyang,Zhang, Haiwen,Zhang, Zhijin,Huang, Rongfeng,Tian, Yun,Lu, Xiangyang.

[20]SHALLOT-LIKE1 Is a KANADI Transcription Factor That Modulates Rice Leaf Rolling by Regulating Leaf Abaxial Cell Development. Xu, Qian,Xue, Hong-Wei,Zhang, Guang-Heng,Zhu, Xu-Dong,Qian, Qian.

作者其他论文 更多>>