Root Ideotype Influences Nitrogen Transport and Assimilation in Maize

被引:29
作者
Dechorgnat, Julie [1 ]
Francis, Karen L. [2 ]
Dhugga, Kanwarpal S. [3 ,5 ]
Rafalski, J. A. [4 ]
Tyerman, Stephen D. [2 ]
Kaiser, Brent N. [1 ]
机构
[1] Univ Sydney, Sydney Inst Agr, Sch Life & Environm Sci, Camden, NSW, Australia
[2] Univ Adelaide, Sch Agr Food & Wine, Urrbrae, SA, Australia
[3] Pioneer HiBred Int Inc, Johnston, IA USA
[4] DuPont Expt Stn, DuPont Crop Genet Res, Genet Discovery Grp, Wilmington, DE USA
[5] Int Maize & Wheat Improvement Ctr CIMMYT, Texcoco, Mexico
来源
FRONTIERS IN PLANT SCIENCE | 2018年 / 9卷
基金
澳大利亚研究理事会;
关键词
Zea mays; nitrogen; gene expression; transport; root system architecture; ZEA-MAYS L; GLUTAMINE-SYNTHETASE GENES; AFFINITY AMMONIUM UPTAKE; USE EFFICIENCY; AMINO-ACID; NITRATE TRANSPORT; SYSTEM ARCHITECTURE; REDUCED NITROGEN; INBRED LINES; GRAIN-YIELD;
D O I
10.3389/fpls.2018.00531
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Maize (Zea mays, L.) yield is strongly influenced by external nitrogen inputs and their availability in the soil solution. Overuse of nitrogen-fertilizers can have detrimental ecological consequences through increased nitrogen pollution of water and the release of the potent greenhouse gas, nitrous oxide. To improve yield and overall nitrogen use efficiency (NUE), a deeper understanding of nitrogen uptake and utilization is required. This study examines the performance of two contrasting maize inbred lines, B73 and F44. F44 was selected in Florida on predominantly sandy acidic soils subject to nitrate leaching while B73 was selected in Iowa on rich mollisol soils. Transcriptional, enzymatic and nitrogen transport analytical tools were used to identify differences in their N absorption and utilization capabilities. Our results show that B73 and F44 differ significantly in their genetic, enzymatic, and biochemical root nitrogen transport and assimilatory pathways. The phenotypes show a strong genetic relationship linked to nitrogen form, where B73 showed a greater capacity for ammonium transport and assimilation whereas F44 preferred nitrate. The contrasting phenotypes are typified by differences in root system architecture (RSA) developed in the presence of both nitrate and ammonium. F44 crown roots were longer, had a higher surface area and volume with a greater lateral root number and density than B73. In contrast, B73 roots (primary, seminal, and crown) were more abundant but lacked the defining features of the F44 crown roots. An F1 hybrid between B73 and F44 mirrored the B73 nitrogen specificity and root architecture phenotypes, indicating complete dominance of the B73 inbred. This study highlights the important link between RSA and nitrogen management and why both variables need to be tested together when defining NUE improvements in any selection program.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Effect of Elevated [CO2] on Assimilation, Allocation of Nitrogen and Phosphorus by Maize (Zea Mays L.)
    Xie, Xiaojin
    Li, Renying
    Zhang, Yaohong
    Shen, Shuanghe
    Bao, Yunxuan
    COMMUNICATIONS IN SOIL SCIENCE AND PLANT ANALYSIS, 2018, 49 (09) : 1032 - 1044
  • [22] Root growth in response to nitrogen supply in Chinese maize hybrids released between 1973 and 2009
    Wu QiuPing
    Chen FanJun
    Chen YanLing
    Yuan LiXing
    Zhang FuSuo
    Mi GuoHua
    SCIENCE CHINA-LIFE SCIENCES, 2011, 54 (07) : 642 - 650
  • [23] Use of genotype-environment interactions to elucidate the pattern of maize root plasticity to nitrogen deficiency
    Li, Pengcheng
    Zhuang, Zhongjuan
    Cai, Hongguang
    Cheng, Shuai
    Soomro, Ayaz Ali
    Liu, Zhigang
    Gu, Riliang
    Mi, Guohua
    Yuan, Lixing
    Chen, Fanjun
    JOURNAL OF INTEGRATIVE PLANT BIOLOGY, 2016, 58 (03) : 242 - 253
  • [24] ZD958 is a low-nitrogen-efficient maize hybrid at the seedling stage among five maize and two teosinte lines
    Han, Jienan
    Wang, Lifeng
    Zheng, Hongyan
    Pan, Xiaoying
    Li, Huiyong
    Chen, Fanjun
    Li, Xuexian
    PLANTA, 2015, 242 (04) : 935 - 949
  • [25] Shovelomics root traits assessed on the EURoot maize panel are highly heritable across environments but show low genotype-by-nitrogen interaction
    Le Marie, Chantal A.
    York, Larry M.
    Strigens, Alexandre
    Malosetti, Marcos
    Camp, Karl-Heinz
    Giuliani, Silvia
    Lynch, Jonathan P.
    Hund, Andreas
    EUPHYTICA, 2019, 215 (10)
  • [26] Root plasticity improves maize nitrogen use when nitrogen is limiting: an analysis using 3D plant modelling
    Lu, Jie
    Lankhost, Jan A.
    Stomph, Tjeerd Jan
    Schneider, Hannah M.
    Chen, Yanling
    Mi, Guohua
    Yuan, Lixing
    Evers, Jochem B.
    JOURNAL OF EXPERIMENTAL BOTANY, 2024, 75 (18) : 5989 - 6005
  • [27] QTL-By-Environment Interaction in the Response of Maize Root and Shoot Traits to Different Water Regimes
    Li, Pengcheng
    Zhang, Yingying
    Yin, Shuangyi
    Zhu, Pengfei
    Pan, Ting
    Xu, Yang
    Wang, Jieyu
    Hao, Derong
    Fang, Huimin
    Xu, Chenwu
    Yang, Zefeng
    FRONTIERS IN PLANT SCIENCE, 2018, 9
  • [28] Special Issue: Nitrogen Transport and Assimilation in Plants
    Hirel, Bertrand
    Krapp, Anne
    AGRONOMY-BASEL, 2016, 6 (03):
  • [29] Root cortical burden influences drought tolerance in maize
    Jaramillo, Raul E.
    Nord, Eric A.
    Chimungu, Joseph G.
    Brown, Kathleen M.
    Lynch, Jonathan P.
    ANNALS OF BOTANY, 2013, 112 (02) : 429 - 437
  • [30] Nitrogen assimilation under osmotic stress in maize (Zea mays L.) seedlings
    Mostafa, Hassan H. A.
    Li, Baozhu
    Zhu, Xiaohong
    Song, Chun-Peng
    PLANT GROWTH REGULATION, 2021, 94 (01) : 87 - 99