Acta Agrestia Sinica ›› 2026, Vol. 34 ›› Issue (2): 392-402.DOI: 10.11733/j.issn.1007-0435.2026.02.002
FENG Zi-xuan, XU Zi-ying, MA Hong-yan, JING Jing-ying
Received:2025-04-11
Revised:2025-06-06
Published:2026-01-22
冯恣萱, 许紫莹, 马红艳, 荆晶莹
通讯作者:
荆晶莹,E-mail:jingying.jing@cau.edu.cn
作者简介:冯恣萱(2002-),女,汉族,四川成都人,硕士研究生,主要从事草地生产与利用研究,E-mail:15228827090@163.com;
基金资助:FENG Zi-xuan, XU Zi-ying, MA Hong-yan, JING Jing-ying. Effects of Phosphorus Addition on Biomass and Root Plasticity of Different Alfalfa Varieties[J]. Acta Agrestia Sinica, 2026, 34(2): 392-402.
冯恣萱, 许紫莹, 马红艳, 荆晶莹. 磷添加对不同品种苜蓿生物量及根系可塑性的影响[J]. 草地学报, 2026, 34(2): 392-402.
| [1] NAN Z B. Effect of rust on nutritional components of alfalfa[J]. Pratacultural Science,1985,2(3):33-36 南志标. 锈病对紫花苜蓿营养成分的影响[J]. 中国草原与牧草,1985,2(3):33-36 [2] LUO Z,CUI N R. Germplasm resources of leguminous forage plants in Xinjiang[J]. Journal of Xinjiang Agricultural University,1984,7(1):38-49 罗中,崔乃然. 新疆豆科牧草植物种质资源[J]. 八一农学院学报,1984,7(1):38-49 [3] ZHANG H M,LIU T J,LIAN Y X,et al. Analysis on the development prospects of alfalfa wrapping package silage[J]. Cereal & Feed Industry,2023(2):51-53 张红梅,刘铁军,连翊仙,等. 紫花苜蓿裹包青贮饲料发展前景分析[J]. 粮食与饲料工业,2023(2):51-53 [4] SCHACHTMAN D P,REID R J,AYLING S M. Phosphorus uptake by plants: from soil to cell[J]. Plant Physiology,1998,116(2):447-453 [5] LEI H C. Phosphorus Nutrition of Plants[J]. Plant Physiology Journal,1958(1):1-14 雷宏俶. 植物的磷素营养[J]. 植物生理学通讯,1958(1):1-14 [6] HARRISON A, HE N Z. Soil organic phosphorus—literature review[J]. Progress in Soil Science,1990,18(4):11-19,5 HARRISON A, 何念祖. 土壤有机磷——文献述评[J]. 土壤学进展,1990,18(4):11-19,5 [7] LIU Z G,GAO K,HUANG J Y,et al. Effects of phosphorus application level on yield and quality of alfalfa[J]. Journal of Inner Mongolia Minzu University (Natural Sciences),2023,38(2):157-163 刘忠国,高凯,黄佳媛,等. 施磷水平对紫花苜蓿产量和品质的影响[J]. 内蒙古民族大学学报(自然科学版),2023,38(2):157-163 [8] LI X Y,YANG L B,YAN W J. Model analysis of dissolved inorganic phosphorus exports from the Yangtze River to the estuary[J]. Nutrient Cycling in Agroecosystems,2011,90(1):157-170 [9] ZHANG J,YIN F H,LI G Y. Research progress and development trend of availability of phosphate fertilizer in farmland[J]. Xinjiang Farm Research of Science and Technology,2015,38(7):57-60 张静,尹飞虎,李光永. 农田磷肥的有效性研究进展与发展趋势[J]. 新疆农垦科技,2015,38(7):57-60 [10] ZHU G Y, MENG Z H, LI H Q, et al. Current status of phosphoric acid preparation technology for efficient utilization of phosphorus resources[J]. Phosphate & Compound Fertilizer, 2023, 38(07):24-30,35 朱干宇,孟子衡,李会泉,等. 磷资源高效利用制备磷酸技术现状探讨[J]. 磷肥与复肥,2023,38(07):24-30,35 [11] BATES T R,LYNCH J P. The efficiency of Arabidopsis thaliana (Brassicaceae) root hairs in phosphorus acquisition[J]. American Journal of Botany,2000,87(7):964-970 [12] JANSA J,MOZAFAR A,FROSSARD E. Phosphorus acquisition strategies within arbuscular mycorrhizal fungal community of a single field site[J]. Plant and Soil,2005,276(1):163-176 [13] SHANE M W,CRAMER M D,FUNAYAMA-NOGUCHI S,et al. Developmental physiology of cluster-root carboxylate synthesis and exudation in harsh Hakea. Expression of phosphoenolpyruvate carboxylase and the alternative oxidase[J]. Plant Physiology,2004,135(1):549-560 [14] REICHERT T,RAMMIG A,FUCHSLUEGER L,et al. Plant phosphorus-use and-acquisition strategies in Amazonia[J]. New Phytologist,2022,234(4):1126-1143 [15] YU Q S,NI X F,CHENG X L,et al. Foliar phosphorus allocation and photosynthesis reveal plants' adaptative strategies to phosphorus limitation in tropical forests at different successional stages[J]. Science of The Total Environment,2022,846:157456 [16] BERG W K,CUNNINGHAM S M,BROUDER S M,et al. Influence of phosphorus and potassium on alfalfa yield and yield components[J]. Crop Science,2005,45(1):297-304 [17] RICHARDSON A E,SIMPSON R J. Soil microorganisms mediating phosphorus availability update on microbial phosphorus[J]. Plant Physiology,2011,156(3):989-996 [18] SUN B R,GAO Y Z,WU X,et al. The relative contributions of pH,organic anions,and phosphatase to rhizosphere soil phosphorus mobilization and crop phosphorus uptake in maize/alfalfa polyculture[J]. Plant and Soil,2020,447(1):117-133 [19] PAN X Y,LI J B,CHEN Y,et al. Response of root morphology and anatomical structure of six alfalfa cultivars to phosphorus deficiency[J]. Acta Agrestia Sinica,2021,29(11):2494-2504 潘新雅,李军保,陈阳,等. 6个紫花苜蓿品种根系形态结构对低磷胁迫的响应[J]. 草地学报,2021, 29(11):2494-2504 [20] MA H. Effect of different phosphorus supply levels on root characteristics and growth of alfalfa varieties with different phosphorus efficiency[D]. Urumqi:Xinjiang Agricultural University,2021:16-17 马红. 供磷水平对不同磷效率品种苜蓿生长和根系特征的影响[D]. 乌鲁木齐:新疆农业大学,2021:16-17 [21] WEN Z H,PANG J Y,TUEUX G,et al. Contrasting patterns in biomass allocation,root morphology and mycorrhizal symbiosis for phosphorus acquisition among 20 chickpea genotypes with different amounts of rhizosheath carboxylates[J]. Functional Ecology,2020,34(7):1311-1324 [22] WEN Z H,LI H B,SHEN Q,et al. Tradeoffs among root morphology,exudation and mycorrhizal symbioses for phosphorus-acquisition strategies of 16 crop species[J]. New Phytologist,2019,223(2):882-895 [23] YANG C T,ZHANG Y Q,MA X X,et al. Screening genotypes and identifying indicators of different Fagopyrum tataricum varieties with low phosphorus tolerance[J]. Chinese Journal of Applied Ecology,2018,29(9):2997-3007 杨春婷,张永清,马星星,等.苦荞耐低磷基因型筛选及评价指标的鉴定[J]. 应用生态学报,2018,29(9):2997-3007 [24] ZHANG J Y,HAN F,XIA L,et al. The response strategies of growth and root traits to phosphorus addition in four herbaceous plants[J]. Chinese Journal of Grassland,2023,45(1):43-52 张家铱,韩飞,夏蕾,等. 四种草本植物生长性状和根性状对磷添加的响应策略[J]. 中国草地学报,2023, 45(1):43-52 [25] YAO R. Differences in acquisition strategies between different phosphorus efficient alfalfa genotypes[D]. Lanzhou:Lanzhou University,2023,15-17 姚瑞. 不同磷效率紫花苜蓿基因型的磷获取策略差异研究[D]. 兰州:兰州大学,2023,15-17 [26] SHEN J B,YUAN L X,ZHANG J L,et al. Phosphorus dynamics: from soil to plant[J]. Plant Physiology,2011, 156(3):997-1005 [27] CHEN Z C,LIAO H. Organic acid anions: an effective defensive weapon for plants against aluminum toxicity and phosphorus deficiency in acidic soils[J]. Journal of Genetics and Genomics,2016,43(11):631-638 [28] PANG J Y,YANG J Y,LAMBERS H,et al. Physiological and morphological adaptations of herbaceous perennial legumes allow differential access to sources of varyingly soluble phosphate[J]. Physiologia Plantarum,2015,154(4):511-525 [29] LI H,WANG C,ZHANG B B,et al. Trade-offs between root-secreted acid phosphatase and root morphology traits,and their contribution to phosphorus acquisition in Brassica napus[J]. Physiologia Plantarum,2024,176(2):e14247 [30] ABEBE A T,ADEWALE S,CHIGEZA G,et al. Diallel analysis of soybean (Glycine max L.) for biomass yield and root characteristics under low phosphorus soil conditions in Western Ethiopia[J]. PLoS One,2023,18(2):e0281075 [31] FRESCHET G T,SWART E M,CORNELISSEN J H C. Integrated plant phenotypic responses to contrasting above- and below-ground resources: key roles of specific leaf area and root mass fraction[J]. New Phytologist,2015, 206(4):1247-1260 [32] KRAMER-WALTER K R,BELLINGHAM P J,MILLAR T R,et al. Root traits are multidimensional: specific root length is independent from root tissue density and the plant economic spectrum[J]. Journal of Ecology, 2016,104(5):1299-1310 [33] WANG X X,LI H B,CHU Q,et al. Mycorrhizal impacts on root trait plasticity of six maize varieties along a phosphorus supply gradient[J]. Plant and Soil,2020,448(1):71-86 [34] LAMBERS H,SHANE M W,CRAMER M D,et al. Root structure and functioning for efficient acquisition of phosphorus: matching morphological and physiological traits[J]. Annals of Botany,2006,98(4):693-713 [35] WANG X X,ZHANG J Q,WANG H,et al. Plasticity and co-variation of root traits govern differential phosphorus acquisition among 20 wheat genotypes[J]. Oikos, 2023,2023(1):oki.08606 [36] MESSIER J,LECHOWICZ M J,MCGILL B J,et al. Interspecific integration of trait dimensions at local scales: the plant phenotype as an integrated network[J]. Journal of Ecology,2017,105(6):1775-1790 [37] WEN Z H,WHITE P J,SHEN J B,et al. Linking root exudation to belowground economic traits for resource acquisition[J]. New Phytologist,2022,233(4):1620-1635 [38] GUO Z J,MIAO W H,LYU Y M,et al. Soil fungi lead to stronger ‘diminishing returns’ in fine-root length versus mass allometry towards earlier successional tropical forests[J]. Functional Ecology,2024,38(11):2406-2420 [39] XIA J,NAN L L,WANG K,et al. Effects of low phosphorus stress on root growth and rhizosphere bacteria of different root types alfalfa[J]. Chinese Journal of Grassland,2024,46(6):86-94 夏静,南丽丽,汪堃,等. 低磷胁迫对不同根型苜蓿根系生长及根际细菌的影响[J]. 中国草地学报,2024, 46(6):86-94 [40] GAO Y,TIAN Q Y,SHI F L,et al. Comparative studies on adaptive strategies of Medicago falcata and M. Truncatula to phosphorus deficiency in soil[J]. Chinese Journal of Plant Ecology,2011,35(6):632-640 高艳,田秋英,石凤翎,等. 黄花苜蓿与蒺藜苜蓿对土壤低磷胁迫适应策略的比较研究[J]. 植物生态学报, 2011,35(6):632-640 [41] LI Z Y,ZHANG Q X,TONG Z Y,et al. Analysis of morphological and physiological responses to low pi stress in different alfalfas[J]. Scientia Agricultura Sinica,2017,50(20):3898-3907 栗振义,张绮芯,仝宗永,等. 不同紫花苜蓿品种对低磷环境的形态与生理响应分析[J]. 中国农业科学, 2017,50(20):3898-3907 [42] REN L F,ZHANG W H,LI Y S. Effect of phosphorus deficiency on physiological properties of Medicago falcata[J]. Acta Prataculturae Sinica,2012,21(3):242-249 任立飞,张文浩,李衍素. 低磷胁迫对黄花苜蓿生理特性的影响[J]. 草业学报,2012,21(3):242-249 [43] KONG D L,MA C G,ZHANG Q,et al. Leading dimensions in absorptive root trait variation across 96 subtropical forest species[J]. New Phytologist,2014,203(3):863-872 |
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