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作物学报 ›› 2026, Vol. 52 ›› Issue (10): 3037-3053.doi: 10.3724/SP.J.1006.2026.63016

• 耕作栽培·生理生化 • 上一篇    下一篇

不同耐密性玉米品种根-冠协调及灌浆特性对增密的响应

李思源1(), 栗思佳1, 张森焱1, 乔泼1, 崔欣飞1, 杨梦涛1, 王义波4, 曾波2, 刘桂珍3, 李鸿萍1,*(), 刘天学1, 汤继华1,*()   

  1. 1 河南农业大学农学院 / 作物生长发育调控教育部重点实验室, 河南郑州 450046
    2 全国农业技术推广服务中心, 北京 100125
    3 河南省种业发展中心, 河南郑州 450046
    4 北京联创种业有限公司, 北京 100081
  • 收稿日期:2026-01-30 接受日期:2026-07-15 出版日期:2026-10-12 网络出版日期:2026-07-23
  • 通讯作者: 李鸿萍, E-mail: hongpingli2019@163.com; 汤继华, E-mail: tangjihua@henau.edu.cn
  • 作者简介:李思源, E-mail: lisiyuan2023@yeah.net
  • 基金资助:
    河南省重点研发专项(241111114300);2025 河南省科技攻关项目(252102111076)

Responses of root-shoot coordination and grain-filling characteristics to increased planting density in maize cultivars with varying density tolerance

Li Si-Yuan1(), Li Si-Jia1, Zhang Sen-Yan1, Qiao Po1, Cui Xin-Fei1, Yang Meng-Tao1, Wang Yi-Bo4, Zeng Bo2, Liu Gui-Zhen3, Li Hong-Ping1,*(), Liu Tian-Xue1, Tang Ji-Hua1,*()   

  1. 1 College of Agronomy, Henan Agricultural University / Key Laboratory of Crop Growth and Development Regulation, Ministry of Education, Zhengzhou 450046, Henan, China
    2 National Agro-Tech Extension and Service Center, Beijing 100125, China
    3 Henan Provincial Seed Industry Development Center, Zhengzhou 450046, Henan, China
    4 Beijing Lantron Seed Co., Ltd., Beijing 100081, China
  • Received:2026-01-30 Accepted:2026-07-15 Published:2026-10-12 Published online:2026-07-23
  • Contact: Li Hong-Ping, E-mail: hongpingli2019@163.com; Tang Ji-Hua, E-mail: tangjihua@henau.edu.cn
  • Supported by:
    Henan Province Key Research and Development Special Project(241111114300);2025 Henan Province Science and Technology Research Project(252102111076)

摘要:

为研究不同耐密性玉米品种根-叶构型、冠层光资源利用和灌浆特性对增密的响应, 于2023年和2024年2个玉米生育季开展双因素试验, 以不同耐密性品种先玉335 (XY335)、郑单958 (ZD958)和MY73为试验材料, 设置5个种植密度, 6.00 (D1)、7.50 (D2)、9.00 (D3)、10.50 (D4)和12.00万株 hm-2 (D5), 测定了根-叶构型、冠层光分布、叶片光合参数、叶面积、光合有效辐射利用率和籽粒灌浆等相关性状。结果表明, XY335、ZD958和MY73分别在D1~D2、D2~D3、D3~D4密度范围内产量较高, 适宜推广密度分别在D1、D2、D3水平左右浮动。2年试验各密度下, 耐密品种MY73的根开角、根系投影面积、根条数、根冠比、叶向值、冠层各叶层透光率、高密度下净光合速率均显著高于ZD958和XY335; 而叶面积和干物质辐射利用率则显著低于ZD958和XY335。低密度下, XY335的产量及籽粒辐射利用率显著高于ZD958和MY73; 而高密度下, MY73显著高于XY335和ZD958。随密度增加, 各品种的根干重、根冠比、根构型、叶夹角、冠层各叶层透光率、不同叶序的叶面积均显著降低, 叶向值、干物质辐射利用率显著升高; 潜在粒重和最大灌浆速率呈下降趋势, 达最大灌浆速率的时间及活跃灌浆期呈增加趋势。随密度增加, 不同耐密性品种的指标变幅不同, 耐密品种MY73的根系投影面积和根干重在3个品种中降幅最小, 2年降幅均值较ZD958分别降低3.9%和4.4%, 较XY335分别降低16.1%和0.6%; MY73的穗位层叶夹角降幅较低(均值较ZD958低3.0%~47.9%)、叶向值增幅较大(均值较ZD958高14.0%~357.5%); MY73的冠层各叶层透光率降幅最小, 在冠层顶部与穗位之间的中点处2年平均降幅分别比ZD958和XY335低37.0%和46.9%, 穗位处分别低32.4%和49.6%; 各品种上部冠层叶面积受增密影响最大, MY73上部冠层2年降幅均值较ZD958和XY335分别低22.1%和32.3%。综上, 随密度增加, 耐密品种MY73根系性状劣化程度低、叶向值调控能力强、冠层各层透光特性好、高密度下叶片净光合速率大、单株叶面积降幅小、达最大灌浆速率用时短且活跃灌浆期长、高密度时籽粒辐射利用率高, 这些特征可能是其实现耐密高产的群体质量调控机制。

关键词: 玉米品种, 耐密性, 种植密度, 根-叶构型, 冠层光利用, 灌浆特性

Abstract:

This study investigated the responses of root and leaf architecture, canopy light utilization, and grain-filling characteristics to increased planting density in maize cultivars with varying density tolerance. A two-factor field experiment was conducted during the 2023 and 2024 maize growing seasons using three maize cultivars differing in density tolerance: Xianyu 335 (XY335), Zhengdan 958 (ZD958), and MY73. Five planting density treatments were established: 60,000 (D1), 75,000 (D2), 90,000 (D3), 105,000 (D4), and 120,000 plants hm-2 (D5). Traits related to root-leaf architecture, canopy light distribution, leaf photosynthetic parameters, leaf area, photosynthetically active radiation use efficiency, and grain filling were measured. The results showed that XY335, ZD958, and MY73 achieved high yields at D1-D2, D2-D3, and D3-D4, respectively, with their optimum density ranges centered around D1, D2, and D3. Across all density treatments in the two-year experiment, the density-tolerant cultivar MY73 had significantly greater root angle, root projected area, root number, root-shoot ratio, leaf orientation value, light transmittance in each canopy layer, and net photosynthetic rate under high density than ZD958 and XY335, whereas its leaf area and dry matter radiation use efficiency were significantly lower. At low densities, XY335 had significantly higher yield and grain radiation use efficiency than ZD958 and MY73, whereas under high-density conditions, MY73 significantly outperformed XY335 and ZD958. With increasing density, root biomass, root-shoot ratio, root architecture, leaf angle, light transmittance in each canopy layer, and leaf area at different leaf positions decreased significantly across cultivars, while leaf orientation value and dry matter radiation use efficiency increased significantly. Potential grain weight and the maximum grain-filling rate showed decreasing trends, whereas the time to reach the maximum grain-filling rate and the active grain-filling period increased. Cultivars with different density tolerance exhibited different magnitudes of trait variation in response to increased density. Among the three cultivars, the density-tolerant MY73 showed the smallest reductions in root projected area and root weight, with two-year mean reductions that were 3.9% and 16.1% lower than those of ZD958 and 4.4% and 0.6% lower than those of XY335, respectively. MY73 also showed a smaller reduction in leaf angle in the ear-leaf layer and a greater increase in leaf orientation value; the mean reduction in leaf angle was 3.0%-47.9% lower than that of ZD958, while the mean increase in leaf orientation value was 14.0%-357.5% greater. MY73 exhibited the smallest reduction in light transmittance in each canopy layer; its two-year mean reduction was 37.0% and 46.9% lower than that of ZD958 and XY335, respectively, at the midpoint between the canopy top and ear position, and 32.4% and 49.6% lower at the ear position. The leaf area in the upper canopy was the most sensitive to increased density across cultivars, and the two-year mean reduction in MY73 was 22.1% and 32.3% lower than that in ZD958 and XY335, respectively. In conclusion, the density-tolerant cultivar MY73 showed less deterioration in root traits, stronger regulation of leaf orientation, more favorable canopy light transmittance, higher leaf net photosynthetic rate under high density, and a smaller reduction in individual plant leaf area as density increased. It also maintained a shorter time to reach the maximum grain-filling rate, a longer active grain-filling period, and higher grain radiation use efficiency under high-density conditions. These characteristics may represent the population quality regulation mechanism underlying the high yield of MY73 under dense planting.

Key words: maize cultivar, density tolerance, planting density, root and leaf architecture, canopy light utilization, grain filling characteristics

表1

不同耐密性玉米品种在不同种植密度处理下根系结构、生物量及根冠比的变化"

年地组合
Year-site combination
品种
Cultivar
种植
密度
Density
根开角
Root opening angle (°)
根系投影面积
Root projected area (cm2)
最大根系宽度
Maximal width (cm)
总结构投影长度Total projected structure length (cm) 根条数
Number of root
根干重
Root dry weight (g)
根冠比Root-shoot ratio (%)
2023-
Xuchang
XY335 D1 114.5±1.0 aA 111.0±3.1 aA 15.1±0.2 aA 2022.8±71.4 aA 62.0±1.7 aB 20.3±0.1 aA 5.4±0.1 aB
D2 96.5±1.9 bA 81.3±7.6 bB 14.0±0.6 bA 1682.8±62.3 bA 53.0±1.0 bB 15.0±0.8 bA 4.1±0.2 bB
D3 84.2±1.9 cB 74.7±6.0 bB 11.8±0.6 cA 1417.4±71.0 cA 49.3±0.6 cB 10.4±0.4 cA 3.1±0.1 cB
D4 66.1±1.3 dB 63.8±4.1 cB 10.6±0.5 dA 1181.4±9.6 dA 48.0±2.0 cA 8.8±0.4 dA 3.1±0.1 cB
D5 56.5±1.9 eB 48.6±2.9 dB 9.5±0.5 eA 950.7±55.8 eA 44.3±0.6 dA 5.4±0.3 eB 2.1±0.0 dB
ZD958 D1 70.0±2.5 aB 84.1±4.1 aC 11.3±0.3 aB 1699.9±69.2 aB 55.7±0.6 aC 15.9±0.3 aC 5.6±0.1 aB
D2 68.9±0.9 aB 69.7±0.9 bC 10.9±0.4 aB 1375.1±32.2 bB 42.7±0.6 bC 10.5±0.4 bB 4.0±0.1 bB
D3 64.4±1.0 bC 63.6±4.1 cC 9.4±0.7 bB 1138.2±27.7 cB 40.7±0.6 cC 7.4±0.2 cC 2.9±0.1 cC
D4 60.4±2.3 cC 48.5±1.2 dC 8.7±0.2 bB 1009.1±49.0 dB 39.3±0.6 dB 6.4±0.5 dC 2.6±0.1 dC
D5 54.8±2.5 dB 45.9±2.1 dB 7.8±0.5 cB 845.9±50.5 eB 36.7±0.6 eB 4.9±0.4 eB 2.1±0.2 eB
MY73 D1 115.0±2.3 aA 104.9±0.9 aB 15.3±0.3 aA 2019.5±20.2 aA 66.0±1.7 aA 19.0±0.9 aB 7.2±0.3 aA
D2 96.5±1.9 bA 94.7±1.4 bA 13.6±0.1 bA 1815.1±93.9 bA 56.7±2.5 bA 15.0±0.6 bA 6.2±0.1 bA
D3 88.3±2.3 cA 87.7±2.4 cA 12.4±0.5 cA 1457.2±33.4 cA 53.0±0.0 cA 9.5±0.6 cB 4.1±0.1 cA
D4 83.6±0.3 dA 72.3±1.7 dA 11.2±0.3 dA 1257.4±45.7 dA 49.7±0.6 dA 7.3±0.5 dB 3.7±0.0 dA
D5 77.2±1.2 eA 63.6±1.6 eA 10.3±0.9 dA 1026.6±37.7 eA 45.3±3.1 eA 6.6±0.3 eA 3.3±0.1 eA
2024-
Hebi
XY335 D1 104.8±3.3 aB 129.9±1.6 aB 15.8±0.6 aA 2218.8±95.6 aB 61.0±0.9 aB 22.3±1.4 aA 5.8±0.3 aB
D2 100.4±2.7 bA 103.5±3.4 bB 14.2±0.8 bA 1829.6±35.3 bA 49.3±0.4 cB 15.0±0.9 bA 4.5±0.1 bB
D3 90.4±1.4 cA 92.7±3.0 cA 13.5±0.6 bA 1598.5±77.0 cA 48.3±0.2 dB 11.4±0.2 cA 3.5±0.0 cB
D4 78.9±1.7 dB 74.0±5.5 dB 12.0±0.7 cA 1233.2±104.3 dA 53.3±0.4 bA 9.9±1.5 dA 3.2±0.1 dB
D5 67.0±1.9 eB 60.2±1.5 eB 10.8±0.8 dA 952.7±91.2 eA 53.3±0.6 bA 5.9±0.8 eB 4.3±0.1 bA
ZD958 D1 70.0±1.8 aC 94.5±4.0 aC 10.3±0.7 aB 1793.1±88.8 aC 57.3±0.1 aC 16.3±0.2 aB 4.8±0.1 aC
D2 63.7±1.0 bB 78.3±3.5 bC 8.8±0.1 bB 1454.6±20.4 bB 41.7±1.2 bC 10.5±3.4 bB 3.9±0.1 bC
D3 54.3±1.5 cB 64.9±1.3 cC 8.8±0.7 bB 1199.2±61.0 cC 42.7±0.8 bC 7.7±0.1 bcC 3.1±0.1 cC
D4 49.1±1.2 dC 54.6±1.7 dC 8.6±0.6 bB 1076.5±65.1 dB 39.3±1.2 cC 6.8±0.5 cB 2.8±0.1 dC
D5 47.6±3.1 dC 51.1±1.3 dC 7.6±0.6 cB 769.1±9.1 eB 38.0±0.3 cB 4.8±1.0 dB 2.4±0.2 eB
MY73 D1 110.8±0.3 aA 141.8±6.5 aA 16.5±0.3 aA 2466.3±126.1 aA 77.3±0.5 aA 21.0±1.4 aA 7.6±0.1 aA
D2 99.5±1.5 bA 112.0±1.2 bA 14.5±0.1 bA 1857.3±70.7 bA 56.3±1.0 bA 15.1±0.6 bA 6.0±0.1 bA
D3 88.4±2.1 cA 86.0±2.9 cB 12.6±0.9 cA 1475.4±37.8 cB 54.7±1.0 cA 8.7±0.1 cB 4.3±0.0 cA
D4 91.3±1.9 cA 79.0±4.1 cdA 11.4±0.2 dA 1343.2±29.4 dA 44.3±0.5 dB 7.6±0.3 cdB 4.2±0.1 cA
D5 73.2±1.9 dA 65.0±2.8 dA 11.0±0.4 dA 1043.0±8.1 eA 53.3±1.0 cA 7.1±0.1 dA 4.1±0.0 dA
变异来源
Source of variation
年地组合
Year-site
combination (Y)
ns * ns ns ns ns ns
密度Density (D) *** ** *** *** *** *** **
品种Cultivar (C) ** ** * ** ** ** **
Y×D ns ns ns ns ns ns ns
Y×C ns ns ** ns ns ns ns
D×C * ns * ns *** *** **
Y×D×C *** *** ns ** *** ns ***

图1

不同耐密性玉米品种在不同种植密度处理下的根系形态差异 缩写和处理同表1。单个品种左侧为根系原始图像, 右侧为根系扫描解析图。扫描图标注数据从左至右分别为左侧根角、根开角、右侧根角。比例尺为10 cm。"

表2

不同耐密性玉米品种在不同种植密度处理下穗位叶及其上两叶叶夹角和叶向值的变化"

年地组合
Year-site combination
品种
Cultivar
密度
Density
叶夹角 Leaf angle (°) 叶向值 Leaf orientation value
穗位叶
Ear-leaf
穗上1叶
1st leaf upper ear
穗上2叶
2nd leaf upper ear
穗位叶
Ear leaf
穗上1叶
1st leaf upper ear
穗上2叶
2nd leaf upper ear
2023-
Xuchang
XY335 D1 35.2±1.1 aB 28.6±0.6 aA 27.9±3.3 aA 40.1±0.9 eC 48.1±0.4 eC 56.2±0.3 bB
D2 32.7±0.4 abA 26.6±1.0 bA 24.5±0.4 abA 43.7±0.8 dB 50.2±0.6 dC 56.3±0.6 bB
D3 32.0±1.2 bA 23.8±0.3 cA 22.8±0.3 bcA 46.8±0.8 cC 52.4±0.4 cC 56.2±0.7 bC
D4 23.9±2.0 cA 20.2±1.3 dA 19.8±2.6 cA 48.7±0.6 bC 54.3±0.3 bC 56.3±0.6 bC
D5 22.7±1.9 cA 20.9±1.2 dA 19.4±1.3 cA 51.3±0.6 aC 56.3±1.3 aB 58.6±0.3 aC
ZD958 D1 38.8±1.0 aA 26.5±0.6 aB 20.3±0.5 aB 43.2±0.2 eB 50.8±1.9 cB 56.8±0.4 dA
D2 31.2±1.7 bA 19.1±1.0 bC 18.0±0.5 bB 45.5±1.2 dB 55.0±0.7 bB 57.6±0.4 cdA
D3 28.4±0.6 cB 17.6±0.6 cC 17.7±0.8 bB 49.5±0.7 cB 56.8±0.7 abB 57.8±0.5 cB
D4 25.6±0.5 dA 16.6±0.4 cB 15.6±1.2 cB 53.5±0.5 bB 56.7±0.5 abB 59.1±0.4 bB
D5 19.1±0.9 eB 14.5±1.1 dC 12.7±0.4 dC 56.7±1.1 aB 58.0±0.6 aB 60.6±0.5 aB
MY73 D1 33.6±1.0 aB 24.6±1.3 aC 21.3±1.2 aB 56.4±1.0 cA 54.8±0.7 dA 57.0±0.3 eA
D2 32.1±1.1 aA 22.5±0.7 bB 18.5±0.5 bB 57.9±1.1 cA 59.3±1.0 cA 58.7±0.8 dA
D3 26.4±0.8 bC 21.8±0.9 bB 16.8±0.5 cB 61.9±0.6 bA 60.1±1.6 cA 62.7±0.2 cA
D4 20.2±1.1 cB 19.0±0.7 cA 15.5±0.6 cdB 69.8±1.1 aA 69.1±0.7 bA 69.0±1.1 bA
D5 19.1±0.9 cB 18.5±0.7 cB 15.2±0.7 dB 70.9±0.9 aA 70.9±0.6 aA 70.6±0.7 aA
2024-
Hebi
XY335 D1 38.7±0.4 aB 28.4±0.8 aA 28.2±1.2 aA 39.0±1.9 cB 48.4±0.5 cC 59.2±1.0 aA
D2 33.3±0.2 bA 26.9±0.3 bA 25.9±1.5 bA 42.8±1.9 bB 53.4±1.0 bC 59.7±0.7 aA
D3 31.2±1.1 cA 24.3±0.3 cA 23.2±1.0 cA 44.6±2.0 bB 54.8±2.1 abB 55.5±0.3 cB
D4 24.3±1.4 dA 23.2±0.8 cA 23.1±0.4 cA 49.8±2.1 aB 55.6±0.4 aC 55.0±0.3 cC
D5 21.6±1.4 eA 21.0±0.9 dA 18.6±1.6 dA 51.5±1.4 aB 56.1±0.6 aB 57.7±0.6 bC
ZD958 D1 40.8±0.8 aA 24.0±1.1 aB 21.6±1.6 aB 37.5±2.6 dB 52.8±1.2 cB 56.7±0.6 bB
D2 32.0±0.5 bA 19.6±0.4 bC 18.8±0.4 bB 40.2±2.7 cB 55.2±1.1 bB 55.5±0.6 cC
D3 28.7±1.2 cA 18.3±0.5 bcC 17.5±1.2 bB 45.0±2.3 bB 55.1±1.9 bB 55.5±0.5 cB
D4 26.3±0.7 dA 16.9±0.6 cC 15.2±0.3 cC 48.6±3.7 aB 57.6±1.0 aB 60.2±0.5 aB
D5 19.9±2.3 eA 13.5±1.0 dB 12.4±0.2 dB 50.8±4.3 aB 57.5±0.6 aB 60.8±0.5 aB
MY73 D1 33.4±2.6 aC 26.0±1.6 aAB 21.8±1.2 aB 45.2±1.5 eA 55.1±0.4 dA 56.6±0.4 cB
D2 33.0±2.2 aA 23.6±0.4 bB 19.5±0.3 bB 50.8±1.0 dA 58.4±0.7 cA 57.5±0.9 cB
D3 24.3±2.1 bB 22.3±0.4 bcB 17.3±1.0 cB 56.4±2.1 cA 59.7±1.4 cA 63.8±0.6 bA
D4 21.1±1.6 bcB 21.1±0.4 cB 16.0±0.4 cB 62.7±0.9 bA 67.0±0.8 bA 64.6±0.4 bA
D5 19.9±2.0 cA 19.4±0.9 dA 14.1±1.0 dB 69.1±3.6 aA 70.1±1.4 aA 67.5±0.2 aA
变异来源
Source of variation
年地组合
Year-site combination (Y)
ns ns ns ns ns ns
密度Density (D) ** *** *** *** *** ***
品种Cultivar (C) ** ** ** ** * **
Y×D ns ** ns ns ns ns
Y×C ns ** ns ns * ns
D×C ** *** ** * * ***
Y×D×C *** ns ns ns ns *

图2

不同耐密性玉米品种在不同种植密度处理下冠层各层透光率的变化 缩写和处理同表1。TE: 冠层顶部至穗位的中点处; E: 穗位处; EG: 穗位至地面的中点处; G: 地上20 cm处。不同小写字母表示同一品种的不同密度间在0.05水平差异显著。不同大写字母表示同一密度下不同品种间在0.05水平差异显著。"

表3

不同耐密性玉米品种在不同种植密度处理下穗位叶光合特性的变化"

年地组合
Year-site combination
品种
Cultivar
密度
Density
净光合速率
Pn
(μmol m-2 s-1)
气孔导度
Gs
(mol m-2 s-1)
胞间二氧化碳浓度
Ci
(μmol m-2 s-1)
蒸腾速率
Tr
(mmol m-2 s-1)
2023-Xuchang XY335 D1 32.8±0.8 aA 0.40±0.03 aA 285.2±4.5 aA 7.85±0.50 aA
D2 27.5±0.8 bC 0.32±0.02 bA 259.1±6.3 bAB 6.38±0.80 bA
D3 24.1±0.6 cB 0.24±0.00 cB 226.2±2.2 cB 4.71±0.15 cB
D4 21.8±0.8 dB 0.20±0.00 dB 203.5±4.8 dB 3.98±0.03 dAB
D5 16.3±0.5 eA 0.16±0.01 eA 171.4±3.3 eB 3.28±0.23 eAB
ZD958 D1 33.8±1.3 aA 0.41±0.02 aA 276.0±7.9 aA 7.56±0.44 aA
D2 28.3±0.9 bB 0.31±0.04 bA 241.0±6.5 bB 5.67±0.33 bB
D3 24.7±0.8 cB 0.26±0.02 cA 233.8±2.9 bA 5.07±0.21 cAB
D4 23.0±0.7 dA 0.21±0.00 dA 201.7±2.0 cB 4.07±0.08 dA
D5 15.5±0.6 eB 0.16±0.00 eA 179.5±2.4 dA 3.32±0.03 eA
MY73 D1 32.9±0.5 aA 0.42±0.03 aA 277.0±7.7 aA 8.25±0.41 aA
D2 29.1±0.3 bA 0.35±0.03 bA 265.3±13.0 aA 6.48±0.17 bA
D3 26.7±0.8 cA 0.26±0.02 cA 237.6±4.2 bA 5.39±0.26 cA
D4 23.1±0.7 dA 0.20±0.01 dB 210.6±2.1 cA 3.88±0.01 dB
D5 13.9±1.0 eC 0.14±0.00 eB 169.5±2.3 dB 3.02±0.04 eB
2024-Hebi XY335 D1 27.1±0.3 aB 0.34±0.03 aA 253.6±4.5 aA 6.75±0.50 aA
D2 24.7±0.4 bA 0.26±0.02 bB 229.1±6.3 bA 5.66±0.80 bA
D3 23.2±0.9 bcA 0.23±0.00 cA 211.4±2.2 cB 5.06±0.15 cA
D4 21.3±1.3 cA 0.21±0.00 dA 200.7±4.8 dA 4.28±0.03 dA
D5 15.8±1.3 dA 0.13±0.01 eA 159.9±3.3 eB 3.71±0.23 eA
ZD958 D1 29.7±1.7 aA 0.34±0.02 aA 234.2±7.9 aB 6.44±0.44 aA
D2 24.7±0.9 bA 0.23±0.04 bB 209.5±6.5 bB 4.91±0.33 bB
D3 22.7±0.7 bcAB 0.19±0.02 cB 207.5±2.9 bB 4.33±0.21 cB
D4 21.0±0.6 cA 0.18±0.00 cB 176.3±2.0 cB 4.16±0.08 cAB
D5 16.3±0.4 dA 0.12±0.00 dA 178.8±2.4 cA 3.13±0.03 dB
MY73 D1 28.2±0.6 aAB 0.39±0.03 aA 257.5±7.7 aA 6.77±0.41 aA
D2 25.9±0.3 bA 0.29±0.03 bA 231.6±13.0 bA 5.78±0.17 bA
D3 22.4±1.1 cB 0.23±0.02 cA 221.3±4.2 bA 4.90±0.26 cA
D4 20.1±1.0 dA 0.15±0.01 dC 181.3±2.1 cB 3.91±0.01 dB
D5 12.2±1.0 eB 0.09±0.00 eB 177.6±2.3 cA 2.71±0.04 eC
变异来源
Source of variation
年地组合
Year-site combination (Y)
ns * ** *
密度Density (D) ** *** *** ***
品种Cultivar (C) * ns * **
Y×D ns * ns *
Y×C * ns ns ns
D×C ** * * **
Y×D×C *** * ns ns

图3

不同耐密性玉米品种在不同种植密度处理下各叶序叶面积的变化 缩写和处理同表1。"

表4

不同耐密性玉米品种在不同种植密度处理下辐射利用率和产量变化"

年地组合
Year-site
combination
品种
Cultivar
密度
Density
籽粒产量辐射利用率
Radiation utilization of grain yield (g MJ-1)
地上生物量辐射利用率
Radiation utilization of aboveground
dry matter (g MJ-1)
产量
Yield
(t hm-2)
2023年许昌
2023-Xuchang
XY335 D1 1.28±0.02 aA 2.29±0.04 dA 12,680±183 aA
D2 1.30±0.06 aA 2.73±0.06 cA 12,923±588 aA
D3 1.25±0.01 aA 3.00±0.04 bA 12,393±140 bA
D4 1.04±0.03 bB 3.01±0.02 bA 10,290±255 cC
D5 0.81±0.03 cB 3.17±0.15 aA 8012±325 dB
ZD958 D1 1.01±0.01 bB 1.73±0.04 eB 10,060±139 bB
D2 1.10±0.06 abB 2.00±0.02 dB 10,975±563 abB
D3 1.15±0.08 aB 2.35±0.06 cB 11,457±816 aB
D4 1.08±0.05 abB 2.55±0.00 bB 10,745±516 abB
D5 0.75±0.02 cB 2.79±0.08 aB 7460±173 cC
MY73 D1 0.93±0.04 cC 1.60±0.04 dC 9260±367 dC
D2 1.10±0.09 bB 1.84±0.07 cC 10,950±909 cB
D3 1.24±0.08 aA 2.11±0.02 bC 12,300±749 abA
D4 1.33±0.05 aA 2.22±0.03 bC 13,248±459 aA
D5 1.34±0.03 aA 2.41±0.15 aC 13,280±346 aA
2024年鹤壁
2024-Hebi
XY335 D1 1.16±0.04 aA 2.39±0.01 dA 11,190±391 aA
D2 1.18±0.03 aA 2.68±0.06 cA 11,370±265 aB
D3 1.02±0.04 bC 3.00±0.01 bA 9855±345 bC
D4 0.76±0.01 cC 3.24±0.01 aA 7335±64 cC
D5 0.26±0.02 dC 1.76±0.09 eC 2490±164 dC
ZD958 D1 1.05±0.01 bB 2.08±0.01 cB 10,142±54 bB
D2 1.19±0.04 aA 2.12±0.01 cB 11,476±424 aB
D3 1.19±0.05 aB 2.34±0.07 bB 11,444±485 aB
D4 1.07±0.04 bB 2.76±0.04 aB 10,307±359 bB
D5 0.84±0.10 cB 2.30±0.04 bA 8067±940 cB
MY73 D1 1.05±0.01 dB 1.71±0.10 bC 10,157±75 dB
D2 1.23±0.01 bA 1.98±0.04 aC 11,915±136 bA
D3 1.32±0.04 aA 2.10±0.04 aC 12,702±365 aA
D4 1.27±0.02 bA 1.98±0.07 aC 12,279±181 bA
D5 1.17±0.02 cA 2.07±0.08 aB 11,316±216 cA
变异来源
Source of variation
年地组合
Year-site combination (Y)
ns ns ns
密度Density (D) *** ** **
品种Cultivar (C) ** ** ***
Y×D ns ns *
Y×C ** ** ns
D×C *** *** **
Y×D×C * *** ***

表5

不同耐密性玉米品种的丰产性指数与密度敏感性指数"

品种
Cultivar
2023年许昌2023-Xuchang 2024年鹤壁2024-Hebi
丰产性指数
YPI (t hm-2)
密度敏感性指数
DSI (%)
最适密度
OSD
丰产性指数
YPI (t hm-2)
密度敏感性指数
DSI (%)
最适密度
OSD
XY335 12,923 2.99 D2 11,370 7.45 D2
ZD958 11,457 5.21 D3 11,476 5.95 D2
MY73 13,248 3.70 D4 12,702 4.76 D3

图4

不同耐密性玉米品种在不同种植密度处理下籽粒灌浆曲线的变化 缩写和处理同表1。"

表6

不同耐密性玉米品种在不同种植密度处理下籽粒灌浆特征的变化"

年地组合Year-site combination 品种Cultivar 密度Density 决定系数
R2
潜在粒重
A
参数B
Parameter B
参数K
Parameter K
达最大灌浆速率的天数
Tmax (d)
最大灌浆速率
Gmax
(g d-1)
活跃灌浆期
Active grain filling period (d)
2023-
Xuchang
XY335 D1 0.9950 38.97 13.98 0.1051 25.10 1.02 57.09
D2 0.9945 37.11 16.05 0.1035 26.82 0.96 57.97
D3 0.9971 36.19 18.29 0.1030 28.22 0.93 58.25
D4 0.9943 36.70 19.30 0.1087 27.23 1.00 55.20
D5 0.9948 36.54 18.45 0.1074 27.14 0.98 55.87
ZD958 D1 0.9980 35.37 14.51 0.1139 23.48 1.01 52.68
D2 0.9989 34.80 16.09 0.1122 24.76 0.98 53.48
D3 0.9946 32.62 16.14 0.1105 25.17 0.90 54.30
D4 0.9980 33.19 16.47 0.1154 24.28 0.96 51.99
D5 0.9940 35.65 16.45 0.1140 24.56 1.02 52.63
MY73 D1 0.9978 29.54 11.88 0.1101 22.48 0.81 54.50
D2 0.9988 29.71 11.97 0.1069 23.22 0.79 56.13
D3 0.9972 29.72 12.43 0.1056 23.86 0.78 56.82
D4 0.9952 29.26 12.52 0.1029 24.56 0.75 58.31
D5 0.9967 28.99 13.60 0.1020 25.59 0.74 58.82
2024-Hebi XY335 D1 0.9911 38.26 24.70 0.1461 21.95 1.40 41.07
D2 0.9917 37.21 33.79 0.1459 24.13 1.36 41.12
D3 0.9926 36.55 34.01 0.1457 24.20 1.33 41.18
D4 0.9936 35.43 35.26 0.1410 25.27 1.25 42.55
ZD958 D1 0.9948 32.30 40.12 0.1546 23.88 1.25 38.81
D2 0.9941 32.03 38.89 0.1494 24.50 1.20 40.16
D3 0.9946 31.55 36.80 0.1455 24.78 1.15 41.24
D4 0.9977 31.14 39.78 0.1439 25.60 1.12 41.70
D5 0.9949 29.56 44.56 0.1426 26.63 1.05 42.08
MY73 D1 0.9900 30.32 25.99 0.1256 25.94 0.95 47.77
D2 0.9901 29.26 26.46 0.1268 25.83 0.93 47.32
D3 0.9910 28.48 29.79 0.1271 26.70 0.90 47.21
D4 0.9908 28.21 28.29 0.1273 26.26 0.90 47.13
D5 0.9903 27.80 25.89 0.1205 27.00 0.84 49.79

图5

基于玉米生物量、冠层透光性、光合特性及产量性状的Mantel test相关性分析 CLT: 冠层透光率; CS: 冠层结构; PC: 光合特性; RSA: 根系构型; ADMW: 单株地上生物量; GWE: 单穗粒重; HI: 收获指数; KR: 出籽率; HGW: 百粒重; HGV: 百粒体积; RUG: 籽粒产量辐射利用率; RUA: 生物量辐射利用率。**和*分别表示在P < 0.01和P < 0.05水平显著相关。"

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