Chinese Agricultural Science Bulletin ›› 2021, Vol. 37 ›› Issue (36): 41-46.doi: 10.11924/j.issn.1000-6850.casb2021-0825
Previous Articles Next Articles
LI Jiajia1,2(), WEI Duo1,2, XU Lingqing1,2, WANG Qiuhong1,2, MA Longbiao1,2, LIU Dali1,2(
)
Received:
2021-08-25
Revised:
2021-10-13
Online:
2021-12-25
Published:
2022-02-15
Contact:
LIU Dali
E-mail:qianxiao20886@163.com;daliliu_hlju@163.com
CLC Number:
LI Jiajia, WEI Duo, XU Lingqing, WANG Qiuhong, MA Longbiao, LIU Dali. The Morphological Response Mechanism of Sugar Beet to Low Nitrogen Stress[J]. Chinese Agricultural Science Bulletin, 2021, 37(36): 41-46.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.casb.org.cn/EN/10.11924/j.issn.1000-6850.casb2021-0825
处理 时间/d | 施氮量/ (mmol/L) | 地上生物量/(g/plant) | 地下生物量/(g/plant) | 总重/(g/plant) | 根冠比 | |||||
---|---|---|---|---|---|---|---|---|---|---|
鲜重(FW) | 干重(DW) | 鲜重(FW) | 干重(DW) | 鲜重(FW) | 干重(DW) | |||||
7 | 0 | 0.08±0.01b | 0.02±0.01b | 0.02±0.00a | 0.02±0.00b | 0.10±0.01 | 0.04±0.00 | 0.77±0.11a | ||
1.5 | 1.40±0.77b | 0.05±0.01b | 0.58±0.09a | 0.02±0.01b | 1.98±0.74 | 0.07±0.01 | 0.45±0.09a | |||
10 | 7.74±1.63a | 0.56±0.06a | 2.40±1.30a | 0.19±0.10a | 10.14±1.92 | 0.75±0.10 | 0.36±0.20a | |||
14 | 0 | 0.15±0.01b | 0.02±0.00b | 0.05±0.01b | 0.04±0.01b | 0.17±0.01 | 0.09±0.01 | 0.90±0.21a | ||
1.5 | 2.25±0.43b | 2.00±0.63b | 0.36±0.10ab | 0.14±0.01b | 4.25±0.81 | 0.49±0.11 | 0.44±0.11ab | |||
10 | 12.72±0.39a | 5.01±0.60a | 3.09±0.33a | 0.49±0.12a | 17.73±0.74 | 3.58±0.28 | 0.17±0.05b |
处理 时间/d | 施氮量/ (mmol/L) | 地上生物量/(g/plant) | 地下生物量/(g/plant) | 总重/(g/plant) | 根冠比 | |||||
---|---|---|---|---|---|---|---|---|---|---|
鲜重(FW) | 干重(DW) | 鲜重(FW) | 干重(DW) | 鲜重(FW) | 干重(DW) | |||||
7 | 0 | 0.08±0.01b | 0.02±0.01b | 0.02±0.00a | 0.02±0.00b | 0.10±0.01 | 0.04±0.00 | 0.77±0.11a | ||
1.5 | 1.40±0.77b | 0.05±0.01b | 0.58±0.09a | 0.02±0.01b | 1.98±0.74 | 0.07±0.01 | 0.45±0.09a | |||
10 | 7.74±1.63a | 0.56±0.06a | 2.40±1.30a | 0.19±0.10a | 10.14±1.92 | 0.75±0.10 | 0.36±0.20a | |||
14 | 0 | 0.15±0.01b | 0.02±0.00b | 0.05±0.01b | 0.04±0.01b | 0.17±0.01 | 0.09±0.01 | 0.90±0.21a | ||
1.5 | 2.25±0.43b | 2.00±0.63b | 0.36±0.10ab | 0.14±0.01b | 4.25±0.81 | 0.49±0.11 | 0.44±0.11ab | |||
10 | 12.72±0.39a | 5.01±0.60a | 3.09±0.33a | 0.49±0.12a | 17.73±0.74 | 3.58±0.28 | 0.17±0.05b |
处理 时间/d | 氮含量/(mmol/L) | 根面积 | 根体积 | 分叉数 |
---|---|---|---|---|
7 | 0 | 19.64±0.71b | 0.17±0.03c | 674.33±147.27b |
1.5 | 44.32±14.29b | 0.54±0.17b | 1291.00±525.60ab | |
10 | 84.50±4.50a | 1.05±0.05a | 2146.33±108.22a | |
14 | 0 | 28.01±1.85b | 0.23±0.02b | 909.67±28.67b |
1.5 | 313.50±22.60a | 3.50±0.67a | 6878.33±295.03a | |
10 | 436.78±69.55a | 4.39±1.01a | 7497.33±207.98a |
处理 时间/d | 氮含量/(mmol/L) | 根面积 | 根体积 | 分叉数 |
---|---|---|---|---|
7 | 0 | 19.64±0.71b | 0.17±0.03c | 674.33±147.27b |
1.5 | 44.32±14.29b | 0.54±0.17b | 1291.00±525.60ab | |
10 | 84.50±4.50a | 1.05±0.05a | 2146.33±108.22a | |
14 | 0 | 28.01±1.85b | 0.23±0.02b | 909.67±28.67b |
1.5 | 313.50±22.60a | 3.50±0.67a | 6878.33±295.03a | |
10 | 436.78±69.55a | 4.39±1.01a | 7497.33±207.98a |
[1] |
TAN Z X, LAL R, WIEBE K D. Global soil nutrient depletion and yield reduction[J]. Journal of sustainable agriculture, 2005, 26(1):123-146.
doi: 10.1300/J064v26n01_10 URL |
[2] |
LAL R. Soils and sustainable agriculture. A review[J]. Agron sustain dev, 2008, 28:57-64.
doi: 10.1051/agro:2007025 URL |
[3] |
VITOUSEK P M, PORDER S, HOULTON B Z, et al. Terrestrial phosphorus limitation: mechanisms, implications, and nitrogen-phosphorus interactions[J]. Ecological applications, 2010, 20(1):5-15.
doi: 10.1890/08-0127.1 URL |
[4] |
MELINO V J, FIENE G, ENJU A, et al. Genetic diversity for root plasticity and nitrogen uptake in wheat seedlings[J]. Functional plant biology, 2015, 42(10):942-956.
doi: 10.1071/FP15041 URL |
[5] |
LYNCH J P. Steep, cheap and deep: an ideotype to optimize water and N acquisition by maize root systems[J]. Annals of botany, 2013, 112(2):347-357.
doi: 10.1093/aob/mcs293 URL |
[6] |
MEHRABI F, SEPASKHAH A R. Interaction effects of planting method, irrigation regimes, and nitrogen application rates on yield, water and nitrogen use efficiencies of winter wheat (Triticum aestivum)[J]. International journal of plant production, 2018, 12(4):265-283.
doi: 10.1007/s42106-018-0025-z URL |
[7] |
LU J, BAI Z H, VELTHOF G L, et al. Accumulation and leaching of nitrate in soils in wheat-maize production in China[J]. Agricultural water management, 2019, 212(36):407-415.
doi: 10.1016/j.agwat.2018.08.039 URL |
[8] | SZMIGIEL A, KOODZIEJCZYK M, ANDZEJ O, et al. Efficiency of nitrogen fertilization in spring wheat[J]. International journal of plant production, 2016, 10(4):447-456. |
[9] |
DAVID R. The responses of plants to non-uniform supplies of nutrients[J]. The new phytologist, 1994, 127(4):635-674.
doi: 10.1111/nph.1994.127.issue-4 URL |
[10] |
TRUBAT R, CORTINA J, VILAGROSA A, et al. Root architecture and hydraulic conductance in nutrient deprived Pistacia lentiscus L. seedlings[J]. Oecologia, 2012, 170(4):899-908.
doi: 10.1007/s00442-012-2380-2 URL |
[11] | MALAMY J E. Intrinsic and environmental response pathways that regulate root system architecture[J]. Plant cell & environment, 2005, 28(1):67-77. |
[12] | 王艺霖, 周玫, 李苹, 等. 根系形态可塑性决定黄栌幼苗在瘠薄土壤中的适应对策[J]. 北京林业大学学报, 2017, 39(6):60-69. |
[13] |
EISSENSTAT D M, WELLS C E, WHITBECK R, et al. Building roots in a changing environment: implications for root longevity[J]. New phytologist, 2000, 147(1):33-42.
doi: 10.1046/j.1469-8137.2000.00686.x URL |
[14] | EISSENSTAT D M. Trade-offs in root form and function[J]. Ecology in agriculture, 1997:173-199. |
[15] |
PELEMAN J, VAN DER VOORT J R. Voort Breeding by design[J]. Trends in plant science, 2003, 8(7):330-334.
doi: 10.1016/S1360-1385(03)00134-1 URL |
[16] |
SIMÕES W L, YURI J E, GUIMARÃES M J M, et al. Beet cultivation with saline effluent from fish farming[J]. Revista brasileira de engenharia agrícola e ambiental, 2016, 20(1):62-66.
doi: 10.1590/1807-1929/agriambi.v20n1p62-66 URL |
[17] | 陈艺文, 李用财, 余凌羿, 等. 中国三大主产区甜菜糖业发展分析[J]. 中国糖料, 2017, 39(4):74-76,80. |
[18] | 康亮, 梁琼月, 姚一华, 等. 不同氮效率木薯品种根系形态、构型及氮吸收动力学特征[J]. 植物营养与肥料学报, 2019, 25(11):1920-1928. |
[19] |
JU C X, BURESH R J, WANG Z Q, et al. Root and shoot traits for rice varieties with higher grain yield and higher nitrogen use efficiency at lower nitrogen rates application[J]. Field crops research, 2015, 175:47-55.
doi: 10.1016/j.fcr.2015.02.007 URL |
[20] |
CHILUNDO M, JOEL A, WESSTRM I, et al. Response of maize root growth to irrigation and nitrogen management strategies in semi-arid loamy sandy soil[J]. Field crops research, 2017, 200:143-162.
doi: 10.1016/j.fcr.2016.10.005 URL |
[21] | PANDEY R, MEENA M, PAUL V, et al. Visual image based phenoyping of biomass and growth in plants under field conditions[J]. Method, 2018:33-38. |
[22] | 张楚, 张永清, 路之娟, 等. 低氮胁迫对不同苦荞品种苗期生长和根系生理特征的影响[J]. 西北植物学报, 2017, 37(7):1331-1339. |
[23] |
CAI J, CHEN L, QU H, et al. Alteration of nutrient allocation and transporter genes expression in rice under N, P, K, and Mg deficiencies[J]. Acta physiologiae plantarum, 2012, 34(3):939-946.
doi: 10.1007/s11738-011-0890-x URL |
[24] |
HERRERA, L F R, SHANE M W, LÓPEZ-BUCIO J, et al. Nutritional regulation of root development: nutritional regulation[J]. Wiley interdisciplinary reviews developmental biology, 2015, 4(4):431-443.
doi: 10.1002/wdev.2015.4.issue-4 URL |
[25] | 任永哲. 低氮胁迫对不同小麦品种苗期性状的影响[J]. 种子, 2012, 31(5):91-94. |
[26] |
LYNCH J. Root Architecture and Plant Productivity[J]. Plant physiology, 1995, 109(1):7-13.
doi: 10.1104/pp.109.1.7 URL |
[27] |
WANG Q W, DAUMAL M, NAGANO S, et al. Plasticity of functional traits and optimality of biomass allocation in elevational ecotypes of Arabidopsis halleri grown at different soil nutrient availabilities[J]. Journal of plant research, 2019, 132(2):237-249.
doi: 10.1007/s10265-019-01088-9 URL |
[1] | JIA Yechun, CHEN Runyi, HE Zelin, NI Hongtao. Abiotic Stress on Sugar Beet: Research Progress [J]. Chinese Agricultural Science Bulletin, 2022, 38(9): 33-40. |
[2] | CHEN Yinghua, BAI Ruxiao, WANG Juan, ZHANG Xinjiang, LIU Linghui, LIU Xiaolong, FENG Guorui, WEI Changzhou. Foliar Spraying Uniconazole and Boron: Effects on Yield and Sugar Content of Sugar Beet in Taer Basin [J]. Chinese Agricultural Science Bulletin, 2022, 38(9): 41-48. |
[3] | GONG Yongyong, DUANMU Huizi. TIFY Gene Family in Sugar Beet: Whole Genome Identification and Bioinformatics Analysis [J]. Chinese Agricultural Science Bulletin, 2022, 38(8): 17-24. |
[4] | WANG Linyu, JIANG Yichen, YU Qingyang, WU Zedong, PI Zhi. Histone Deacetylases (HDACs) Gene Family in Sugar Beet: Identification and Functional Prediction [J]. Chinese Agricultural Science Bulletin, 2022, 38(8): 9-16. |
[5] | DENG Yushuai, WANG Yuguang, YU Lihua, GENG Gui. Effects of Waterlogging Stress on Growth and Photosynthetic Characteristics of Sugar Beet Seedlings Under Different Soil Salinity and Alkalinity [J]. Chinese Agricultural Science Bulletin, 2022, 38(7): 18-23. |
[6] | LIU Na, HU Huabing, WANG Ronghua, LIU Xiaoyue, LIU Zhaoyang, LIU Xiaohan, WANG Maoqian. Methanol Aging Treatment: Effect on Germination of Sugar Beet Seeds [J]. Chinese Agricultural Science Bulletin, 2022, 38(33): 28-33. |
[7] | ZHAO Yaru, PI Zhi, LIU Rui, MA Yuyan, WU Zedong. Genetic Diversity Analysis of Monogerm Cytoplasmic Male Sterile Lines and Maintainer Lines of Sugar Beet [J]. Chinese Agricultural Science Bulletin, 2022, 38(30): 35-40. |
[8] | DONG Yinzhuang, WANG Gang, YU Lihua, GENG Gui. Effects of Ferrous Stress on Accumulation of Mineral Elements in Sugar Beet Seedlings [J]. Chinese Agricultural Science Bulletin, 2022, 38(3): 11-16. |
[9] | SHI Yang, YIN Xilong, LI Wangsheng, XING Wang. PEG Simulated Drought Stress: Effects on Morphological Indices of Drought-tolerant and Drought-sensitive Sugar Beet Germplasms [J]. Chinese Agricultural Science Bulletin, 2022, 38(29): 45-51. |
[10] | ZHOU Yanli, LIU Na, YU Lihua, LU Bingfu, ZHANG Wenbin, LIU Xiaoxue. Soil Mechanical Compaction and Its Effect on Crop Growth [J]. Chinese Agricultural Science Bulletin, 2022, 38(28): 83-88. |
[11] | YANG Ran, XING Wang, LIU Dali, WU Zedong, WANG Maoqian. Initiation Effects of Different Concentrations of Melatonin on Sugar Beet Seeds [J]. Chinese Agricultural Science Bulletin, 2022, 38(27): 19-25. |
[12] | LIU Danyang, CUI Rufei, GENG Gui, WANG Yuguang. Pathogenic Bacteria of Sugar Beet Blight: Isolation and Identification [J]. Chinese Agricultural Science Bulletin, 2022, 38(24): 113-117. |
[13] | ZHANG Ziruo, MA Jiajie, GAO Qiuyu, WU Zedong. Molecular Identity for Sugar Beet Varieties: Establishment Based on DAMD Molecular Marker [J]. Chinese Agricultural Science Bulletin, 2022, 38(23): 21-26. |
[14] | LI Wangsheng, WANG Xueqian, YIN Xilong, SHI Yang, XING Wang. Drought Resistance of Sugar Beet Seedling: Identification and Index Screening [J]. Chinese Agricultural Science Bulletin, 2022, 38(21): 17-23. |
[15] | CONG Junchao, HU Huabing, WANG Ronghua, LIU Dali, WU Zedong, WANG Maoqian. Different Concentrations of Citric Acid: Effects on Sugar Beet Seed Priming [J]. Chinese Agricultural Science Bulletin, 2022, 38(20): 13-19. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||