
Research Progress on Canopy Light Energy Utilization for High-yield and High-efficiency Rice
Received date: 2022-01-23
Online published: 2022-07-21
By exploring the biological potential of crops, rather than relying too much on large amounts of input of water and fertilizer, it is an important way to realize the synergistic improvement of crop yield and resource utilization efficiency (high yield and high efficiency). Rice yield mainly depends on photosynthesis after heading. Therefore, improving the canopy radiation utilization efficiency is of great significance to achieve high yield and high efficiency of rice. This article reviews the characteristics of leaf area, canopy light energy utilization, biomass accumulation and transport of high-yield and high-efficiency rice, and analyzes current problems and prospects for future research.
Key words: rice; radiation use efficiency; high yield and high efficiency; canopy
XIAO Zhilin, GU Hanzhu, ZHANG Hao . Research Progress on Canopy Light Energy Utilization for High-yield and High-efficiency Rice[J]. China Rice, 2022 , 28(4) : 30 -34 . DOI: 10.3969/j.issn.1006-8082.2022.04.007
| [1] | 卢景波. 中国水稻产业—供需、流通与未来政策导向[J]. 中国稻米, 2002, 8(6):11-13. |
| [2] | 徐春春, 纪龙, 陈中督, 等. 2020年我国水稻产业形势分析及2021年展望[J]. 中国稻米, 2021, 27(2):1-4. |
| [3] | ZHANG H, KONG X S, HOU D P, et al. Progressive integrative crop managements increase grain yield, nitrogen use efficiency and irrigation water productivity in rice[J]. Field Crops Research, 2018, 215: 1-11. |
| [4] | 赵明, 周宝元, 马玮, 等. 粮食作物生产系统定量调控理论与技术模式[J]. 作物学报, 2019, 45(4):485-498. |
| [5] | CUI Z L, ZHANG H Y, CHEN X P, et al. Pursuing sustainable productivity with millions of smallholder farmers[J]. Nature, 2018, 555: 363-367. |
| [6] | 赵育民, 牛树奎, 王军邦. 植被光能利用率研究进展[J]. 生态学杂志, 2007(9):1 471-1 477. |
| [7] | ZHANG F S, CHEN X P, VITOUSEK P. An experiment for the world[J]. Nature, 2013, 497: 33-35. |
| [8] | PENG S, KHUSH G S, VIRK P, et al. Progress in ideotype breeding to increase rice yield potential[J]. Field Crops Research, 2008, 1 089(1): 32-38. |
| [9] | LIU K, HE A B, YE C, et al. Root morphological traits and spatial distribution under different nitrogen treatments and their relationship with grain yield in super hybrid rice[J]. Scientific Reports, 2018, 8(1): 131. |
| [10] | CASSMAN K G, DOBERMANN A, WALTERS D T. Meeting cereal demand while protecting natural resources and improving environmental quality[J]. Annual Review of Environment and Resources, 2003, 28: 315-358. |
| [11] | 凌启鸿. 水稻精确定量栽培原理与技术[J]. 杂交水稻, 2010, 25(1):27-34. |
| [12] | HE C F, LIU X J, FANGMEIER A. Quantifying the total airborne nitrogen input into agroecosystems in the North China Plain[J]. Agriculture, Ecosystems and Environment, 2007, 121: 395-400. |
| [13] | 杨建昌, 王志琴, 朱庆森. 不同土壤水分状况下氮素营养对水稻产量的影响及其生理机制的研究[J]. 中国农业科学, 1996, 29(4): 58-66. |
| [14] | 凌启鸿. 作物群体质量[M]. 上海: 上海科技出版社, 2000:42-120. |
| [15] | VENKATESWARLU B, VISPERAS R M. Source-sink relationships in crop plants[J]. International Rice Research Paper Series, 1987, 125: 1-19. |
| [16] | 朱庆森, 张祖建, 杨建昌, 等. 亚种间杂交稻产量源库特征[J]. 中国农业科学, 1997, 30(3):52-59. |
| [17] | 邹江石, 姚克敏, 吕川根. 两优培九株型特征研究[J]. 作物学报, 2003, 29(5): 652-657. |
| [18] | 汤亮, 朱相成, 曹梦莹, 等. 水稻冠层光截获、光能利用与产量的关系[J]. 应用生态学报, 2012, 23(5):1 269-1 276. |
| [19] | GEBBING T, SCHNYDER H. Pre-anthesis reserve utilization for protein and carbohydrate synthesis in grains of wheat[J]. Plant Physiology, 1999, 121(3): 871-878. |
| [20] | SAITOH K, YONETANI K, MUROTA T, et al. Effects of flag leaves and panicles on light interception and canopy photosynthesis in high-yielding rice cultivars[J]. Plant Production Science, 2002, 5(4): 275-280. |
| [21] | 马超. 粳稻不同产量层次间品种株型特征研究[D]. 哈尔滨: 东北农业大学, 2020. |
| [22] | 姜元华, 许轲, 赵可, 等. 甬优系列籼粳杂交稻的冠层结构与光合特性[J]. 作物学报, 2015, 41(2):286-296. |
| [23] | XIONG H, XU F X, ZHU Y C, et al. Relationship between leaf area index and yield of hybrid rice[J]. Agricultural Science & Technology, 2013, 14(12): 1 554-1 558. |
| [24] | 杨志远, 舒川海, 张荣萍, 等. 不同株型杂交籼稻对氮肥的耐受性差异比较[J]. 作物学报, 2021, 47(8):1 593-1 602. |
| [25] | 乔胜锋, 邓亚萍, 瞿寒冰, 等. 不同籼稻品种对低磷响应的差异及其农艺生理性状[J]. 中国水稻科学, 2021, 35(4):396-406. |
| [26] | 李虎, 陈传华, 刘广林, 等. 种植密度和施氮量对桂育9号农艺性状及产量的影响[J]. 作物杂志, 2019(6):99-103. |
| [27] | 李敏, 罗德强, 江学海, 等. 控水增密模式对杂交籼稻减氮后产量形成的调控效应[J]. 作物学报, 2020, 46(9):1 430-1 447. |
| [28] | 潘广良. 不同灌溉技术对水稻生长发育等的影响[J]. 黑龙江水利科技, 2021, 49(2): 20-24. |
| [29] | CHEN L S, YANG N, WANG K. Non-destructive estimation of rice leaf area by leaf length and width measurements[J]. International Journal of Applied Mathematics and Statistics, 2013, 42(12): 230-240. |
| [30] | 袁隆平. 杂交水稻超高产育种[J]. 杂交水稻, 1997, 12(6):1-6. |
| [31] | SUN S Y, CHEN D H, LI X M, et al. Brassinosteroid signaling regulates leaf erectness in Oryza sativa via the control of a specific U-type cyclin and cell proliferation[J]. Developmental Cell, 2015, 34(2): 220-228. |
| [32] | VERHAGEN A M W, WILSON J H, BRITTEN E J. Plant production in relation to foliage illumination[J]. Annals of Notany, 1963, 27(4): 627-640. |
| [33] | 吕川根, 邹江石, 胡凝, 等. 水稻叶片形态对冠层特性和光合有效辐射传输的影响[J]. 江苏农业学报, 2007, 23(6): 501-508. |
| [34] | 刘建丰, 袁隆平, 邓启云, 等. 超高产杂交稻的光合特性研究[J]. 中国生物学文摘, 2006(2):32-37. |
| [35] | 李小朋, 王术, 黄元财, 等. 株行距配置对齐穗期粳稻冠层结构及产量的影响[J]. 应用生态学报, 2015, 26(11):3 329-3 336. |
| [36] | 李艳大, 黄俊宝, 叶春, 等. 不同氮素水平下双季稻株型与冠层内光截获特征研究[J]. 作物学报, 2019, 45(9):1 375-1 385. |
| [37] | SAITOH K, SHIMODA H, ISHIHARA K. Characteristics of dry matter production process in high yielding rice varieties: I: Canopy structure and light intercepting characteristics[J]. Crop Science Society of Japan, 1990, 59(1): 130-139. |
| [38] | 董振国. 高产栽培理论与技术[M]. 北京: 气象出版社, 1997:61. |
| [39] | 冯世座. 不同水稻品种冠层内各叶位叶片光合特征和生理生化特性[D]. 金华: 浙江师范大学, 2013. |
| [40] | LONG S P, ZHU X G, NAIDU S L, et al. Can improvement in photosynthesis increase crop yields?[J]. Plant, Cell & Environment, 2006, 29(3): 315-330. |
| [41] | 徐云姬, 许阳东, 李银银, 等. 干湿交替灌溉对水稻花后同化物转运和籽粒灌浆的影响[J]. 作物学报, 2018, 44(4):554-568. |
| [42] | FOYER C H, BLOOM A J, QUEVAL G, et al. Photorespiratory metabolism: Genes, mutants, energetics, and redox signaling[J]. Annual Review of Plant Biology, 2009, 60(1): 455-484. |
| [43] | EVANS R J. Nitrogen and photosynthesis in the flag leaf of wheat (Triticum aestivum L.)[J]. Plant Physiology, 1983, 72(2): 297-302. |
| [44] | ZHANG Z C, GU T, LI Y F, et al. Effects of different baynyardgrass varieties on grain yield formation of rice at different nitrogen application levels[J]. The Journal of Applied Ecology, 2016, 27(11): 3 559-3 568. |
| [45] | 赵平, 孙谷畴, 彭少麟. 植物氮素营养的生理生态学研究[J]. 生态科学, 1998, 17(2):37-42. |
| [46] | 薛青武, 陈培元. 土壤干旱条件下氮素营养对小麦水分状况和光合作用的影响[J]. 植物生理学报, 1990, 16(1):49-56. |
| [47] | 曾希柏, 侯光炯, 青长乐. 土壤-植物系统中光照与氮素的相互关系研究[J]. 生态学报, 2000, 20(1):103-108. |
| [48] | 韦还和, 张徐彬, 葛佳琳, 等. 甬优籼粳杂交稻栽后地上部干物质积累动态与特征分析[J]. 作物学报, 2021, 47(3):546-555. |
| [49] | 曹培培, 杨凯, 吕春华, 等. 不同CO2浓度和N肥水平对粳稻茎鞘非结构性碳水化合物含量与积累的影响[J]. 生态学杂志, 2020, 39(5):1 474-1 483. |
| [50] | 张国, 崔克辉. 水稻茎鞘非结构性碳水化合物积累与转运研究进展[J]. 植物生理学报, 2020, 56(6):1 127-1 136. |
| [51] | 潘俊峰, 崔克辉, 向镜, 等. 不同库容量类型基因型水稻茎鞘非结构性碳水化合物积累转运特征[J]. 华中农业大学学报, 2015, 34(1):9-15. |
| [52] | 李国辉, 崔克辉. 氮对水稻叶蔗糖磷酸合成酶的影响及其与同化物积累和产量的关系[J]. 植物生理学报, 2018, 54(7):1 195-1 204. |
| [53] | 石颜鸽. 适度干旱调控水稻茎鞘非结构性碳水化合物转运及其对弱势粒灌浆的影响[D]. 武汉: 华中农业大学, 2018. |
| [54] | 屠乃美. 官春云水稻幼穗分化期间减源对源库关系的影响[J]. 湖南农业大学学报, 1999, 25(6):430-436. |
| [55] | 花劲, 周年兵, 张军, 等. 双季晚稻甬优系列籼粳杂交稻超高产结构与群体形成特征[J]. 中国农业科学, 2015, 48(5):1 023-1 034. |
| [56] | 郭保卫, 花劲, 周年兵, 等. 双季晚稻不同类型品种产量及其群体动态特征差异研究[J]. 作物学报, 2015, 41(8):1 220-1 236. |
| [57] | 韦还和. 长江下游晚熟类型甬优籼粳杂交稻高产形成形态生理特征及其配套栽培措施[D]. 扬州: 扬州大学, 2017. |
| [58] | CHEN S, LIU S, YIN M, et al. Seasonal changes in crop growth and grain yield of different japonica rice cultivars in southeast China[J]. Agronomy Journal, 2020, 112: 215-227. |
| [59] | 孟天瑶, 李晓芸, 李超, 等. 甬优系列籼粳杂交稻中熟高产品系的株型特征[J]. 中国水稻科学, 2016, 30(2):170-180. |
| [60] | 胡雅杰, 朱大伟, 钱海军, 等. 籼粳杂交稻甬优2640钵苗机插超高产群体若干特征探讨[J]. 作物学报, 2014, 40(11):2 016-2 027. |
| [61] | GU J F, CHEN Y, ZHANG H, et al. Canopy light and nitrogen distributions are related to grain yield and nitrogen use efficiency in rice[J]. Field Crops Research, 2017, 206: 74-85. |
| [62] | 周磊, 刘秋员, 田晋钰, 等. 甬优系列籼粳杂交稻产量及氮素吸收利用的差异[J]. 作物学报, 2020, 46(5):772-786. |
| [63] | 龚金龙, 邢志鹏, 胡雅杰, 等. 籼、粳超级稻光合物质生产与转运特征的差异[J]. 作物学报, 2014, 40(3):497-510. |
| [64] | 龚金龙, 胡雅杰, 葛梦婕, 等. 南方粳型超级稻氮肥群体最高生产力及其形成特征的研究[J]. 核农学报, 2012, 26(3):558-572. |
| [65] | 孟天瑶, 许俊伟, 邵子彬, 等. 甬优系列籼粳杂交稻氮肥群体最高生产力的优势及形成特征[J]. 作物学报, 2015, 41(11):1 711-1 725. |
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