| Literature DB >> 30853966 |
Geng Ma1, Weixing Liu1, Shasha Li1, Panpan Zhang1, Chenyang Wang1,2,3, Hongfang Lu1,2,3, Lifang Wang1,2,3, Yingxin Xie1,2,3, Dongyun Ma1,2,3, Guozhang Kang1,2,3.
Abstract
Excessive or improper nitrogen (N) application rates negatively affect crop production and thereby environmental quality, particularly for winter wheat production in the North China Plain. Therefore, it is very important to optimize N fertilizer input to balance grain yield, environmental risk, and benefits under irrigated conditions. Three long-term stationary field experiments including five N levels, from 0 to 300 kg ha-1 [0 (N0), 90 (N90), 180 (N180), 240 (N240), and 300 (N300) kg ha-1] were carried out to investigate the effects of N regime on wheat yield, photosynthesis, and N balance at different sites. The grain yield and protein content increased quadratically with N rate, and the maximum values were 8087 kg ha-1 and 13.9% at N application rates of 250 and 337 kg N ha-1, respectively. N application increased the photosynthetic fluorescence parameters (Pn, Gs, and Tr) and N metabolism enzyme activities (NR and GS) which then increased grain yield. The leaching of soil nitrate into the deeper soil layers ( > 100 cm) increased with higher N fertilization and experimental years. The partial factor productivity (PFPN) was decreased by N because the apparent N loss increased with N application rate. In order to balance grain yield, N use efficiency (NUE), and N loss, the recommended N rate should be 120-171 kg N ha-1, and the corresponding yields and apparent N loss were 7278-7787 ka ha-1 and 22-37 kg ha-1, respectively.Entities:
Keywords: N application rate; N use efficiency; apparent N loss; grain yield; protein content; wheat
Year: 2019 PMID: 30853966 PMCID: PMC6396033 DOI: 10.3389/fpls.2019.00181
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
FIGURE 1Grain yields of winter wheat at different N application rates for each experimental year in Wenxian (A), Zhengzhou (B), and Kaifeng (C), and their correlation with N application rate (D). Bars (A–C) denote the standard errors. Different uppercase letters indicate significant differences among years, and lowercase letters denote significant differences among N rates at p < 0.05 using the LSD test in SPSS. Solid and dashed lines, box boundaries, and bars and dots inside or outside of the boxes (D) represent the median and mean values, the 25th and 75th, the 10th and 90th, and < 5th and > 95th percentiles of all data, respectively. These symbols are the same used in Figure 2.
FIGURE 2Grain protein content of winter wheat grown at different N application rates for all experimental years at Wenxian (A), Zhengzhou (B), and Kaifeng (C) and their correlation with N application rate (D).
Chlorophyll content, photosynthesis (Pn, Gs, Ci, and Tr), and chlorophyll fluorescence (ΦPSII, Fv/Fm, qP and qN) parameters in flag leaves of wheat plants grown under different N application rates at anthesis in Wenxian, Zhengzhou, and Kaifeng (2015–2016).
| Site | N rate (kg ha-1) | Chlorophyll content (mg g-1 FW) | Pn (μmol CO2 m-2 s-1) | Gs (mol H2O m-2 s-1) | Ci (μmol CO2 mol-1) | Tr (mmol H2O m-2 s-1) | ΦPSII | Fv/Fm | qP | qN |
|---|---|---|---|---|---|---|---|---|---|---|
| Wenxian | 0 | 2.15c | 16.81b | 0.57b | 244.33b | 6.71b | 0.83bc | 0.86a | 0.99a | 0.15c |
| 180 | 2.69b | 25.26a | 0.61b | 195.64b | 7.15ab | 0.87a | 0.88a | 0.99a | 0.17bc | |
| 240 | 3.07a | 25.93a | 0.76ab | 182.52b | 7.55ab | 0.84bc | 0.87a | 1.00a | 0.22b | |
| 300 | 2.91ab | 26.98a | 0.86a | 169.63bc | 8.14a | 0.82c | 0.86a | 1.00a | 0.25a | |
| Zhengzhou | 0 | 1.75c | 15.68c | 0.32c | 314.33a | 6.52b | 0.81b | 0.86a | 0.91b | 0.11b |
| 90 | 2.35b | 18.15b | 0.43b | 310.12a | 6.69ab | 0.82ab | 0.86a | 0.92b | 0.11b | |
| 180 | 2.75ab | 20.36ab | 0.47b | 296.45ab | 6.97a | 0.84a | 0.86a | 0.96a | 0.13ab | |
| 240 | 2.98a | 23.95a | 0.66a | 274.43b | 7.15a | 0.81b | 0.88a | 0.99a | 0.16a | |
| 300 | 2.62ab | 21.55ab | 0.51ab | 289.60ab | 7.22a | 0.83ab | 0.88a | 0.96a | 0.15a | |
| Kaifeng | 0 | 1.98c | 16.52b | 0.36c | 259.67a | 6.65b | 0.79b | 0.86c | 0.93a | 0.12b |
| 180 | 2.63b | 22.63a | 0.46b | 235.28b | 6.79b | 0.83a | 0.88bc | 0.97a | 0.22a | |
| 240 | 3.13a | 23.26a | 0.58a | 231.47b | 7.43ab | 0.82a | 0.90a | 0.95a | 0.16ab | |
| 300 | 2.86ab | 21.85a | 0.46b | 243.23ab | 7.73a | 0.83a | 0.89ab | 0.94a | 0.13b |
FIGURE 3Nitrate reductase (NR) and glutamine synthetase (GS) activities in flag leaves in winter during grain filing under different N application rates at Wenxian (A,D), Zhengzhou (B,E), and Kaifeng (C,F) in 2016. Horizontal bars represent the standard errors of the mean.
FIGURE 4Nitrate distribution in the 0–100 cm soil layers after the winter wheat harvest for plants grown under different N application rates during the harvest years 2011–2016 in Wenxian. Panels (A), (B), (C), (D), (E), and (F) show the nitrate distribution for the different N rates in 2011, 2012, 2013, 2014, 2015, and 2016, respectively. Horizontal bars represent the standard errors of the mean.
Partial factor productivity of N (PFPN) and agronomic efficiency of N (NAE) for winter wheat grown at different N application rates in Wenxian for harvest years 2011-2016.
| Year | PFPN (kg kg-1) | Average | NAE (kg kg-1) | Average | ||||
|---|---|---|---|---|---|---|---|---|
| N180 | N240 | N300 | N180 | N240 | N300 | |||
| 2011 | 43.36d | 33.07c | 27.44b | 34.62f | 1.94d | 2.01d | 2.59c | 2.18d |
| 2012 | 45.69c | 34.42bc | 28.47ab | 36.19c | 16.79b | 12.75b | 11.13b | 13.56b |
| 2013 | 36.94e | 27.99d | 22.86c | 29.26e | 6.07c | 4.84c | 4.34c | 5.08c |
| 2014 | 47.10b | 34.61bc | 29.78ab | 37.16bc | 17.93b | 12.74b | 12.28b | 14.31b |
| 2015 | 49.93a | 37.96a | 29.78ab | 39.22a | 22.26a | 17.21a | 13.17ab | 17.55a |
| 2016 | 47.49b | 36.11ab | 30.99a | 38.20ab | 22.46a | 17.34a | 15.98a | 18.59a |
| Average | 45.08A | 34.03B | 28.22C | 14.57A | 11.15B | 9.92C | ||
| N Rate | 1091.83∗∗∗ | 41.35∗∗∗ | ||||||
| Year | 94.61∗∗∗ | 160.53∗∗∗ | ||||||
| N Rate × Year | 2.94∗∗ | 3.95∗∗∗ | ||||||
Average initial N content before sowing( soil Ninitial), N uptake by the plant(plant Nuptake), residual N after harvest (soil Nend), N mineralization(Nmin), N loss(Nloss), and N loss rate for all study years at the three planting sites.
| Site | N rate (kg ha-1) | Soil Ninitial (kg ha-1) | Plant Nuptake (kg ha-1) | Soil Nend (kg ha-1) | Nmin (kg ha-1) | Nloss (kg ha-1) | N loss rate (%) |
|---|---|---|---|---|---|---|---|
| Wenxian | 0 | 64.28c | 105.73c | 38.11d | 79.56 | 0 | — |
| 180 | 213.62b | 272.75b | 148.78c | 79.56 | 51.65ab | 28.69b | |
| 240 | 239.47b | 289.76b | 199.27b | 79.56 | 70.01b | 29.17ab | |
| 300 | 285.82a | 315.41a | 254.69a | 79.56 | 95.28a | 31.76a | |
| Zhengzhou | 0 | 91.94c | 112.38c | 38.14d | 58.58 | 0 | — |
| 90 | 128.51bc | 205.54b | 56.89cd | 58.58 | 14.66c | 16.29c | |
| 180 | 168.56b | 260.28a | 107.91c | 58.58 | 38.95bc | 21.64b | |
| 240 | 186.99ab | 277.46a | 148.75b | 58.58 | 59.36b | 24.73b | |
| 300 | 216.93a | 271.62a | 214.76a | 58.58 | 89.13a | 29.71a | |
| Kaifeng | 0 | 109.21c | 155.02c | 48.77d | 94.63 | 0 | — |
| 180 | 133.63b | 253.01b | 115.71c | 94.63 | 39.54b | 21.97b | |
| 240 | 185.36a | 295.69a | 168.94b | 94.63 | 55.36b | 23.07b | |
| 300 | 211.87a | 308.06a | 194.42a | 94.63 | 104.02a | 34.67a |
FIGURE 5The relationships between SNA in the 0–100 cm soil layer (A) and apparent N loss (B) with N application rates across all experimental years and planting sites.
FIGURE 6Relationships between grain yield, protein content, apparent N loss, SNA in the 0–100 cm soil layer, and relative economic return with the different N fertilizer application rates.