[1]王丹英. 水稻品种演替过程中植株形态与氮肥利用效率的变化[D]. 北京:中国农业科学院,2008:39-40.
[2]Dong G C,Zhou Y,Zhang J X,et al. Introgression of qPE9-1/DEP1,a major QTL for rice panicle erectness,drastically improves nitrogen use efficiency under limited nitrogen supply[J]. European Journal of Agronomy,2022,133(7523):126444.
[3]殷春渊,张庆,魏海燕,等. 氮肥水平对不同育种时代粳稻产量、氮素吸收利用差异的影响[J]. 华北农学报,2009,24(5):123-129.
[4]程建峰,戴廷,曹卫星,等. 稻种资源苗期氮素营养效率的分类、鉴定与评价[J]. 作物学报,2005(12):1640-1647.
[5]FAO.Statistical databases food and agriculture organization(FAO)of the United Nations 2001[EB/OL]. http://www.fao.org.
[6]Peng S,Buresh R J,Huang J L,et al. Improving nitrogen fertilization in rice by site specific N management:a review[J]. Agronomy for Sustainable Development,2010,30(3):649-656.
[7]Sui B,Feng X M,Tian G L,et al. Optimizing nitrogen supply increases rice yield and nitrogen use efficiency by regulating yield formation factors[J]. Field Crops Research,2013,150(15):99-107.
[8]Konishi H,Ishiguro K,Komatsu S. A proteomics approach towards understanding blast fungus infection of rice grown under different levels of nitrogen fertilization[J]. Proteomics,2001,1(9):1162-1171.
[9]张军,张洪程,段祥茂. 地力与施氮量对超级稻产量品质及氮素利用率的影响[J]. 作物学报,2011,37(11):2020-2029.
[10]Gao Y H,Xu Z P,Zhang L J,et al. MYB61 is regulated by GRF4 and promotes nitrogen utilization and biomass production in rice[J]. Nature Communications,2020,11(11):5219.
[11]单玉华,王余龙,山本由德,等. 不同类型水稻在氮素吸收及利用上的差异[J]. 扬州大学学报(自然科学版),2001(3):42-45.
[12]张宏根,李波,朱正斌,等. 分子标记辅助选择改良武育粳3号条纹叶枯病抗性[J]. 中国水稻科学,2009,23(3):243-250.
[13]Hu B,Wang W,Ou S J,et al. Variation in NRT1.1B contributes to nitrate-use divergence between rice subspecies[J]. Nature Genetics,2015,47(7):834-838.
[14]Li S,Tian Y H,Wu K,et al. Modulating plant growth-metabolism coordination for sustainable agriculture[J]. Nature,2018,560:595-600.
[15]Gao Z Y,Wang Y F,Chen G G,et al. The indica nitrate reductase gene OsNR2 allele enhances rice yield potential and nitrogen use efficiency[J]. Nature Communications,2019,10(1):5207.
[16]文静,戴维,侯锡学. 三维立体强化栽培密度和氮肥管理对水稻产量及氮素吸收利用的影响[J]. 西南农业学报,2012,25(1):183-187.
[17]刘伟明. 籼粳亚种间杂交水稻产量性状与产量的相关、回归及通径分析[J]. 中国农学通报,2009,25(1):70-72.
[18]夏冰,刘清波,邓念丹. 不同基因型水稻氮素的吸收和利用效率研究综述[J]. 作物研究,2008,22(4):288-292.
[19]彭少兵,黄见良,钟旭华,等. 提高中国稻田氮肥利用率的研究策略[J]. 中国农业科学,2002,35(9):1095-1103.
[20]袁国印,宋航,郇威威,等. 稻麦轮作下长期秸秆还田和钾肥施用后效对水稻产量和土壤肥力的影响[J]. 江苏农业科学,2021,49(19):117-122.
[21]魏海燕,张洪程,戴其根,等. 不同水稻氮利用效率基因型的物质生产与积累特性[J]. 作物学报,2007,33(11):1802-1809.
[22]黎毛毛,万建林,黄永兰,等. 水稻微核心种质氮素利用率相关性状的鉴定评价及其相关分析[J]. 植物遗传资源学报,2011,12(3):352-361.
[23]袁隆平. 选育超高产杂交水稻的进一步设想[J]. 杂交水稻,2012,27(6):1-2.
[24]谢光辉,韩东倩,王晓玉,等. 中国禾谷类大田作物收获指数和秸秆系数[J]. 中国农业大学学报,2011,16(1):1-8.
[25]何秀英,廖耀平,陈钊明,等. 收获指数在水稻高产育种中的作用[J]. 种子,1999,6(6):39-41.
[26]陈钊明,廖耀平,陈顺佳,等. 高收获指数型优质籼稻新品种粤香占[J]. 中国水稻科学,1999,13(1):61.
[27]熊洁,陈功磊,王绍华,等. 江苏省不同年代典型粳稻品种的产量及株型差异[J]. 南京农业大学学报,2011,34(5):1-6.
[1]方兆伟,李健,樊继伟,等.中熟中粳稻新品种中稻1号特征特性及栽培技术[J].江苏农业科学,2013,41(04):71.
[2]余玲,李爱宏,潘存红,等.分子标记辅助选择培育抗病优质晚粳稻品种扬粳806[J].江苏农业科学,2014,42(08):75.
Yu Ling,et al.Breeding of late japonica rice cultivar “Yangjing 806” with high quality and disease resistance by molecular marker-assisted selection[J].Jiangsu Agricultural Sciences,2014,42(20):75.
[3]王才林,张亚东,朱镇,等.优良食味粳稻新品种南粳9108的选育与利用[J].江苏农业科学,2013,41(09):86.
Wang Cailin,et al.Breeding and utilization of new japonica rice “Nanjing 9108” with good taste[J].Jiangsu Agricultural Sciences,2013,41(20):86.
[4]宋学堂,汤述翥,徐小杰,等.籼粳杂交改良武育粳3号的丰产性[J].江苏农业科学,2017,45(09):46.
Song Xuetang,et al.Yielding ability improvement of rice cultivar “Wuyujing No.3” by indica-japonica hybridization[J].Jiangsu Agricultural Sciences,2017,45(20):46.
[5]谢裕林,于雅洁,董明辉,等.茎鞘非结构性碳水化合物积累运转与稻米品质对播期和行距配置的响应[J].江苏农业科学,2022,50(8):93.
Xie Yulin,et al.Response of non-structural carbohydrates accumulation operation and rice quality to sowing date and row spacing configuration[J].Jiangsu Agricultural Sciences,2022,50(20):93.