Root growth and root system architecture of field-grown maize in response to high planting density

被引:77
|
作者
Shao, Hui [1 ]
Xia, Tingting [1 ]
Wu, Dali [1 ]
Chen, Fanjun [1 ]
Mi, Guohua [1 ]
机构
[1] China Agr Univ, Coll Resources & Environm Sci, Ctr Resources Environm & Food Secur, Beijing 100193, Peoples R China
关键词
Inter-row; Intra-row; Root system architecture; Competition; Plant density; Maize; KIN RECOGNITION; NITROGEN ACQUISITION; ANATOMICAL PHENES; LIGHT-INTENSITY; NUTRIENT-UPTAKE; NODAL ROOTS; PHOSPHORUS; ZEA; WATER; YIELD;
D O I
10.1007/s11104-018-3720-8
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
This paper aims to investigate the adaptation of maize root system architecture (RSA) in response to increasing planting densities. A three-year field study was conducted with three planting densities (40,000, 70,000, and 90,000 plants per ha, which are abbreviated as D40000, D70000 and D90000, respectively). The dynamic change of root morphological traits and the 3-dimensional RSA were quantified. The grain yield per ha increased with increasing plant density from D40000 to D70000, and then decreased at D90000. Compared to D70000, high planting density of D90000 did not changed the total root biomass per ha but increased shoot biomass per ha by 4 to 8% in two of the three experimental years. Grain yield per plant and plant NPK concentration decreased with increasing planting density. Total accumulation of P and K per ha also decreased at D90000 compared to D70000. Root to shoot ratio was reduced at high planting density beginning 50 days after emergence. Compared to the control (D70000), total root length (TRL) per plant was reduced by 18 to 30% at D90000 and increased by 43 to 56% at D40000, root biomass per plant was reduced by 23 to 34% at D90000 and increased by 66 to 75% at D40000. High plant density reduced the number of nodal roots, lateral root density (LRD) and the average lateral root (LR) length, but with less effect on the length of axial roots. The RSA is characteristic of "intra-row contraction and inter-row extension". Vertically, root growth in top soil layer (0- to 36- cm) was enhanced under supra-optimal plant density, but had a negligible effect in deep soil layers (36- to 60- cm). To adapt to the limited photosynthesis capacity in the roots under high planting density, maize plants tend to reduce nodal root number and inhibit lateral root growth. They maintain nodal root length to explore a larger soil space, and adjust root growth in the intra-row and inter-row direction to avoid root-to-root competition.
引用
收藏
页码:395 / 411
页数:17
相关论文
共 50 条
  • [21] REASSESSMENT OF ROOT COMPETITION FOR P OF FIELD-GROWN MAIZE IN PURE AND MIXED CROPPING
    FUSSEDER, A
    KRAUS, M
    BECK, E
    PLANT AND SOIL, 1988, 106 (02) : 299 - 301
  • [22] Root growth, root senescence and root system architecture in maize under conservative strip tillage system
    Ye Sha
    Zheng Liu
    Zhanhong Hao
    Yiwen Huang
    Hui Shao
    Guozhong Feng
    Fanjun Chen
    Guohua Mi
    Plant and Soil, 2024, 495 : 253 - 269
  • [23] Root growth, root senescence and root system architecture in maize under conservative strip tillage system
    Sha, Ye
    Liu, Zheng
    Hao, Zhanhong
    Huang, Yiwen
    Shao, Hui
    Feng, Guozhong
    Chen, Fanjun
    Mi, Guohua
    PLANT AND SOIL, 2024, 495 (1-2) : 253 - 269
  • [24] TOP AND ROOT RELATIONS OF FIELD-GROWN SOYBEANS
    SIVAKUMAR, MVK
    TAYLOR, HM
    SHAW, RH
    AGRONOMY JOURNAL, 1977, 69 (03) : 470 - 473
  • [25] ROOT DISTRIBUTION OF 2 FIELD-GROWN ILEX
    FARE, DC
    GILLIAM, CH
    PONDER, HG
    HORTSCIENCE, 1985, 20 (06) : 1129 - 1130
  • [26] Root and shoot response of field-grown lettuce and broccoli to a compact subsoil
    Montagu, KD
    Conroy, JP
    Francis, GS
    AUSTRALIAN JOURNAL OF AGRICULTURAL RESEARCH, 1998, 49 (01): : 89 - 97
  • [27] LOCALIZATION OF TRANSLOCATED C-14 IN ROOTS AND ROOT EXUDATES OF FIELD-GROWN MAIZE
    MCCULLY, ME
    CANNY, MJ
    PHYSIOLOGIA PLANTARUM, 1985, 65 (04) : 380 - 392
  • [28] Optimizing soil-coring strategies to quantify root-length-density distribution in field-grown maize: virtual coring trials using 3-D root architecture models
    Wu, Qian
    Wu, Jie
    Zheng, Bangyou
    Guo, Yan
    ANNALS OF BOTANY, 2018, 121 (05) : 809 - 819
  • [29] Growth and root sucker ability of field-grown transgenic poplars overexpressing xyloglucanase
    Taniguchi, Toru
    Konagaya, Ken-ichi
    Kurita, Manabu
    Takata, Naoki
    Ishii, Katsuaki
    Kondo, Teiji
    Funahashi, Fumiaki
    Ohta, Seiichi
    Kaku, Tomomi
    Baba, Kei'ichi
    Kaida, Rumi
    Hayashi, Takahisa
    JOURNAL OF WOOD SCIENCE, 2012, 58 (06) : 550 - 556
  • [30] Growth and root sucker ability of field-grown transgenic poplars overexpressing xyloglucanase
    Toru Taniguchi
    Ken-ichi Konagaya
    Manabu Kurita
    Naoki Takata
    Katsuaki Ishii
    Teiji Kondo
    Fumiaki Funahashi
    Seiichi Ohta
    Tomomi Kaku
    Kei’ichi Baba
    Rumi Kaida
    Takahisa Hayashi
    Journal of Wood Science, 2012, 58 : 550 - 556