[1] 潘圣刚,黄胜奇,翟晶,蔡明历,曹凑贵,展茗,唐湘如.氮肥用量与运筹对水稻氮素吸收转运及产量的影响[J]. 土壤,2012,44(1):23-29. doi:10.3969/j.issn.0253-9829.2012.01.004. Pan S G, Huang S Q, Zhai J, Cai M L, Cao C G, Zhan M, Tang X R. Effects of nitrogen rate and its basal to dressing ratio on uptake, translocation of nitrogen and yield in rice[J]. Soils, 2012,44(1):23-29. [2] 武良, 张卫峰, 陈新平, 崔振岭, 范明生, 陈清, 张福锁.中国农田氮肥投入和生产效率[J].中国土壤与肥料, 2016(4):76-83. doi:10.11838/sfsc.20160413. Wu L, Zhang W F, Chen X P, Cui Z L, Fan M S, Chen Q, Zhang F S. Nitrogen fertilizer input and nitrogen use efficiency in Chinese farmland[J]. Soil and Fertilizer Sciences in China, 2016(4):76-83. [3] Haefele S M, Jabbar S M A, Siopongco J D L C, Tirol-Padre A, Amarante S T,Cruz P C S, Cosico W C. Nitrogen use efficiency in selected rice (Oryza sativa L.) genotypes under different water regimes and nitrogen levels[J]. Field Crops Research, 2008, 107(2):137-146. doi:10.1016/j.fcr.2008.01.007. [4] 苏姗,傅志强,龙文飞,李海林.氮肥运筹对双季晚稻产量及光合特性的影响[J].华北农学报,2018,33(3):218-223. doi:10.7668/hbnxb.2018.03.032. Su S, Fu Z Q, Long W F, Li H L. Effects of nitrogen application on yield and photosynthetic characteristics of double cropping late rice[J]. Acta Agriculturae Boreali-Sinica,2018,33(3):218-223. [5] Chen J, Lü S Y, Zhang Z, Zhao X X, Li X M, Ning P, Liu M Z. Environmentally friendly fertilizers:A review of materials used and their effects on the environment[J]. Science of the Total Environment,2017,613-614:829-839. doi:10.1016/j.scitotenv.2017.09.186. [6] 李思平,丁效东,向丹,曾路生,张玉晓,解军蕊,黄信诚,高发瑞.氮肥水平与栽植密度互作对不同生育期水稻生长及产量的影响[J].华北农学报, 2019,34(4):174-182. doi:10.7668/hbnxb.201751248. Li S P, Ding X D, Xiang D, Zeng L S, Zhang Y X, Jie J R, Huang X C, Gao F R. Effects of interaction between nitrogen application level and planting density on growth and yield of rice at different growth stages[J]. Acta Agriculturae Boreali-Sinica, 2019,34(4):174-182. [7] 朱兆良. 中国土壤氮素研究[J]. 土壤学报, 2008,45(5):778-783. doi:10.3321/j.issn:0564-3929.2008.05.003. Zhu Z L.Research on soil nitrogen in China[J]. Acta Pedologica Sinica, 2008,45(5):778-783. [8] 孙涛, 同拉嘎, 赵书宇, 王海微, 韩云飞, 张忠臣, 金正勋. 氮肥对水稻胚乳淀粉品质、相关酶活性及基因表达量的影响[J]. 中国水稻科学, 2018, 32(5):475-484. doi:10.16819/j.1001-7216.2018.8013. Sun T, Tong L G, Zhao S Y, Wang H W, Han Y F, Zhang Z C, Jin Z X. Effects of nitrogen fertilizer application on starch quality, activities and gene expression levels of related enzymes in rice endosperm[J]. Chinese Journal of Rice Science, 2018, 32(5):475-484. [9] 陈晨, 龚海青, 张敬智, 徐寓军, 郜红建. 不同基因型水稻苗期氮营养特性差异及综合评价[J].中国生态农业学报, 2016, 24(10):1347-1355. doi:10.13930/j.cnki.cjea.160130. Chen C, Gong H Q, Zhang J Z, Xu Y J, Gao H J. Evaluation of nitrogen nutrition characteristics of different rice cultivars at seedling stage[J].Chinese Journal of Eco-Agriculture, 2016, 24(10):1347-1355. [10] 黄永兰, 黎毛毛, 芦明, 万建林, 龙起樟, 王会民, 唐秀英, 范志洁. 氮高效水稻种质资源筛选及相关特性分析[J]. 植物遗传资源学报, 2015,16(1):87-93. doi:10.13430/j.cnki.jpgr.2015.01.013. Huang Y L, Li M M, Lu M, Wan J L, Long Q Z, Wang H M, Tang X Y, Fan Z J. Selection of rice germplasm with high nitrogen utilization efficiency and its analysis of the related characters[J]. Journal of Plant Genetic Resources, 2015, 16(1):87-93. [11] 张宁, 郭荣发. 水稻氮高效种质资源筛选及其耐低氮胁迫机理研究进展[J]. 广东农业科学, 2014,41(5):66-70. doi:10.3969/j.issn.1004-874X.2014.05.016. Zhang N, Guo R F. Advancements in nitrogen efficient screening of germplasm resources and deficiency tolerance mechanism study in rice[J]. Guangdong Agricultural Sciences, 2014, 41(5):66-70. [12] 阮新民, 施伏芝, 罗志祥,佘德红. 水稻苗期氮高效品种评价与筛选的初步研究[J]. 中国稻米, 2010,16(2):22-25. doi:10.3969/j.issn.1006-8082.2010.02.006. Ruan X M, Shi F Z, Luo Z X, She D H. Primary research on evaluation and screening of rice varieties with high nitrogen use efficiency at seedling stage[J]. China Rice, 2010, 16(2):22-25. [13] 徐福荣, 汤翠凤, 余藤琼, 严红梅, 周海, 李俊, 蒋会兵, 叶昌荣, 戴陆园. 利用叶绿素仪SPAD值筛选耐低氮水稻种质[J]. 分子植物育种, 2005,3(5):695-700. doi:10.3969/j.issn.1672-416X.2005.05.018. Xu F R, Tang C F, Yu T Q, Yan H M, Zhou H, Li J, Jiang H B, Ye C R, Dai L Y. Screening of rice germplasms for tolerance to low-nitrogen using SPAD-value by chlorophyll meter[J].Molecular Plant Breeding, 2005,3(5):695-700. [14] 钟代斌,陆雅海,郭龙彪,罗利军,王一平,梅捍卫,余新桥,应存山.氮高效水稻种质资源筛选的初步研究[J].植物遗传资源学报,2001,2(4):16-20. doi:10.3969/j.issn.1672-1810.2001.04.004. Zhong D B, Lu Y H, Guo L B, Luo L J, Wang Y P, Mei H W, Yu X Q, Ying C S. Screening for rice genotypes tolerant to low nitrogen[J].Journal of Plant Genetic Resources, 2001,2(4):16-20. [15] 郑家奎, 文春阳, 张涛, 杨莉,杨乾华,郑建敏,杨松涛,唐江云,田翠. 耐低氮水稻材料筛选及筛选指标研究[J]. 安徽农业科学, 2009, 37(16):7361-7363,7377. doi:10.3969/j.issn.0517-6611.2009.16.025. Zheng J K, Wen C Y, Zhang T, Yang L, Yang Q H, Zheng J M, Yang S T, Tang J Y, Tian C. Studies on the screening index for low nitrogen tolerant rice and its selection[J]. Journal of Anhui Agricultural Sciences, 2009, 37(16):7361-7363,7377. [16] 张宁. 氮钾双高效水稻品种筛选及其生理机制研究[D]. 湛江:广东海洋大学, 2015. Zhang N. Study on screening for N and K efficiency rice genotype and its physiological mechanisms[D]. Zhanjiang:Guangdong Ocean Univisity, 2015. [17] 朴钟泽, 韩龙植, 高熙宗, 陆家安, 张建明. 水稻氮素利用效率的选择效果[J]. 作物学报, 2004, 30(7):651-656. doi:10.3321/j.issn:0496-3490.2004.07.004. Piao Z Z, Han L Z, Gao X Z, Lu J A, Zhang J M. Selection effect of nitrogen use efficiency in rice[J]. Acta Agronomica Sinica, 2004, 30(7):651-656. [18] 赵祥, 王学春, 吴凡, 杨国涛, 张杰, 陈永军, 彭友林, 邹挺, 李天春, 胡运高. 四川常用杂交稻品种对低氮胁迫的响应差异及其筛选方法[J]. 应用与环境生物学报, 2019, 25(4):909-917. doi:10.19675/j.cnki.1006-687x.2019.03014. Zhao X, Wang X C, Wu F, Yang G T, Zhang J, Chen Y J, Peng Y L, Zou T, Li T C, Hu Y G. Differences in response of hybrid rice to low nitrogen stress and screening methods in Sichuan Province[J]. Chinese Journal of Applied & Environmental Biology, 2019, 25(4):909-917. [19] 李发桥, 戴晓萧, 王伦伟, 夏小舟, 韦善清, 梁和, 江立庚. 广西主要水稻品种耐低肥能力评价与分类[J]. 广东农业科学, 2019,46(3):1-10. doi:10.16768/j.issn.1004-874X.2019.03.001. Li F Q, Dai X X, Wang L W, Xia X Z, Wei S Q, Liang H, Jiang L G. Evaluation and classification of low fertility tolerance of main rice varieties in Guangxi[J]. Guangdong Agricultural Sciences, 2019, 46(3):1-10. [20] 张阳军. 水稻耐低氮基因克隆与功能分析[D]. 北京:中国农业大学, 2015. Zhang Y J. Cloning and functionnal characterization of gene conferring tolerance to nitrogen deficiency in rice[D]. Beijing:China Agricultural University, 2015. [21] Porra R J, Schäfer W, Cmiel E, Katheder I, Scheer H. The derivation of the formyl-group oxygen of chlorophyll b in higher plants from molecular oxygen[J]. European Journal of Biochemistry, 1994, 219(1-2):671-679. doi:10.1111/j.1432-1033.1994.tb19983.x. [22] 何艳, 严田蓉, 唐源, 林郸, 李郁, 余华清, 杨志远, 孙永健, 马均. 栽插和秸秆还田方式对水稻氮素吸收利用和产量的影响[J]. 植物营养与肥料学报, 2020, 26(1):86-95. doi:10.11674/zwyf.19036. He Y, Yan T R, Tang Y, Lin D, Li Y, Yu H Q, Yang Z Y, Sun Y J, Ma J. Effects of transplanting and straw returning on nitrogen uptake, utilization and yield of rice[J]. Journal of Plant Nutrition and Fertilizers, 2020, 26(1):86-95. [23] 汤国平, 陈小荣, 朱昌兰,彭小松,贺晓鹏,傅军如,边建民,胡丽芳,欧阳林娟,贺浩华. 协青早B//协青早B/东乡野生稻BC1F13群体及若干杂交稻恢复系低氮耐性鉴定[J]. 江西农业大学学报, 2017, 39(2):214-222. doi:10.13836/j.jjau.2017028. Tang G P, Chen X R, Zhu C L, Peng X S, He X P, Fu J R, Bian J M, Hu L F, Ouyang L J, He H H. Identification low nitrogen tolerance of XieqingzaoB//XieqingzaoB/Dongxiang wild rice BC1F13 populations and some restorers of hybrid rice[J]. Acta Agriculturae Universitatis Jiangxiensis,2017, 39(2):214-222. [24] 程建峰, 蒋海燕, 刘宜柏, 戴廷波,曹卫星. 氮高效水稻基因型鉴定与筛选方法的研究[J]. 中国水稻科学, 2010,24(2):175-182. doi:10.3969/j.issn.1001-7216.2010.02.12. Cheng J F, Jiang H Y, Liu Y B, Dai T B, Cao W X. Methods for identification and screening of rice genotypes with high nitrogen efficiency[J]. Chinese Journal of Rice Science,2010, 24(2):175-182. [25] 孙虎威,王文亮,刘尚俊,侯蒙蒙,谢天宁,梁志浩,樊亚男,张亚丽. 低氮胁迫下水稻根系的发生及生长素的响应[J]. 土壤学报, 2014, 51(5):1096-1102. doi:10.11766/trxb201401290057. Sun H W, Wang W L, Liu S J, Hou M M, Xie T N, Liang Z H, Fan Y N, Zhang Y L. Formation of rice root regulated by nitrogen deficiency[J]. Acta Pedologica Sinica, 2014, 51(5):1096-1102. [26] Sun H Y, Qian Q, Wu K, Luo J J, Wang S S, Zhang C W, Ma Y F, Liu Q, Huang X Z, Yuan Q B, Han R X, Zhao M, Dong G J, Guo L B, Zhu X D, Gou Z H, Wang W, Wu Y J, Lin H X, Fu X D. Heterotrimeric G proteins regulate nitrogen-use efficiencyin rice[J]. Nature Genetics,2014,46(6):652-656. doi:10.1038/ng.2958. [27] Liu X Q, Huang D M, Tao J Y, Miller A J, Fan X R, Xu G H. Identification and functional assay of the interaction motifs in the partner protein OsNAR2.1 of the two-component system for high-affinity nitrate transport[J]. New Phytologist, 2015, 204(1):74-80. doi:10.1111/nph.12986. [28] Zhang Y J, Tan L B, Zhu Z F, Yuan L X, Xie D X, Sun C Q. TOND1 confers tolerance to nitrogen deficiency in rice[J]. The Plant Journal, 2015, 81(3):367-376. doi:10.1111/tpj.12736. [29] Yamaya T, Kusano M. Evidence supporting distinct functions of three cytosolic glutamine synthetases and two NADH-glutamate synthases in rice[J]. Journal of Experimental Botany, 2014, 65(19):5519-5525. doi:10.1093/jxb/eru103. [30] Cai H M, Ying Z, Xiao J H, Li X H, Zhang Q F, Lian X M. Overexpressed glutamine synthetase gene modifies nitrogen metabolism and abiotic stress responses in rice[J]. Plant Cell Reports, 2009, 28(3):527-537. doi:10.1007/s00299-008-0665-z. [31] Cai H M, Xiao J H, Zhang Q F, Lian X M. Co-suppressed glutamine synthetase2 gene modifies nitrogen metabolism and plant growth in rice[J]. Chinese Science Bulletin, 2010, 55(9):823-833. doi:10.1007/s11434-010-0075-9. [32] Tamura W, Hidaka Y, Tabuchi M, Kojima S, Hayakawa T, Sato T, Obara M, Kojima M, Sakakibara H, Yamaya T. Reverse genetics approach to characterize a function of NADH-glutamate synthase1 in rice plants[J]. Amino Acids, 2010, 39(4):1003-1012. doi:10.1007/s00726-010-0531-5. [33] Tamura W, Kojima S, Toyokawa A, Watanabe H, Tabuchi-Kobayashi M, Hayakawa T, Yamaya T. Disruption of a novel NADH-Glutamate synthase2 gene caused marked reduction in spikelet number of rice[J]. Frontiers in Plant Science, 2011, 2(12):57. doi:10.3389/fpls.2011.00057. |