Scientia Agricultura Sinica ›› 2020, Vol. 53 ›› Issue (17): 3527-3540.doi: 10.3864/j.issn.0578-1752.2020.17.010

• SOIL & FERTILIZER·WATER-SAVING IRRIGATION·AGROECOLOGY & ENVIRONMENT • Previous Articles     Next Articles

Differences of Main Nutrient Concentration in Wheat Grain Between Typical Locations of the Loess Plateau

WANG Li1(),WANG ZhaoHui1,2(),GUO ZiKang1,TAO ZhenKui1,ZHENG MingJun1,HUANG Ning1,GAO ZhiYuan1,ZHANG XinXin1,HUANG TingMiao1   

  1. 1College of Natural Resources and Environment, Northwest A&F University/Key Laboratory of Plant Nutrition and Agro-environment in Northwest China, Ministry of Agriculture and Rural Affairs, Yangling 712100, Shaanxi
    2Northwest A&F University/State Key Laboratory of Crop Stress Biology in Arid Areas, Yangling 712100, Shaanxi
  • Received:2019-10-27 Accepted:2020-02-16 Online:2020-09-01 Published:2020-09-11
  • Contact: ZhaoHui WANG E-mail:371860842@qq.com;w-zhaohui@263.net

Abstract:

【Objective】This study was performed to understand the differences of wheat grain nutrient concentrations and their relations to soil nutrient and crop nutrient uptake and utilization among different locations at the same region, in order to guide reasonable fertilizer application and improve soil fertility for local farmers. 【Method】Field experiments were conducted at Yongshou and Yangling in Shaanxi province from 2017 to 2018. At each site, twenty wheat cultivars from different wheat production areas were planted under conditions of 180 kg N·hm-2, 100 kg P2O5·hm-2 and 75 kg K2O·hm-2. The aboveground wheat plant and soil samples were collected at maturity to determine the grain yield and nutrient concentration in different organs and soil available macro- and micronutrients, for investigating the relationships between soil nutrient supply and grain nutrient concentration at two locations. 【Result】Compared to Yangling, the grain nitrogen (N) and potassium (K) concentrations were decreased by 10.6% and 6.7% at Yongshou, respectively, but no difference was observed for phosphorus (P) concentration between two locations. Soil N and P supply capacity, N, P and K uptake and harvest index at Yongshou were higher than that of Yangling, but the total rainfall and its distribution at Yongshou were more beneficial to grain yield formation to Yangling. The increase magnitude of grain yield caused by the rainfall was larger than the magnitude of grain N and K uptake increase, and close to that of grain P uptake. Thus, the decrease of grain N, P and K concentrations was mainly attributed to the yield dilution. The concentrations of grain calcium (Ca) and magnesium (Mg) at Yongshou were 19.0% and 10.3% higher than that at Yangling, respectively, and the difference for sulfur (S) concentration was not significantly different between two locations. Soil exchangeable Mg at Yongshou was lower than that at Yangling, and no difference of soil exchangeable Ca was found between two locations. However, the lower soil pH and available K, and higher available S promoted the uptake and translocation of Ca and Mg to grain at Yongshou. Compared with Yangling, the increase of Ca and Mg absorption in wheat grains was greater than that of yield increase, and the increase of S absorption was close to that of the yield. Therefore, Ca and Mg concentration in grains increased, and the S concentration did not change significantly. The concentrations of grain iron (Fe), manganese (Mn) and copper (Cu) at Yongshou were 9.3%, 22.2% and 12.7% higher than those at Yangling, respectively, and grain zinc (Zn) concentration was 63.1% lower than Yangling. No significant difference was observed for soil available Mn between two locations, but soil available Cu and Zn at Yongshou were lower than that of Yangling. The longer filling period promoted the uptake of micronutrients in wheat grain, whereas the higher soil available P inhibited Zn uptake, this resulted in a higher Fe, Mn and Cu uptake and translocation to grain, and lower Zn uptake and translocation to grain. The higher Fe, Mn and Cu uptake in grain increased their concentrations, while the Zn concentration decreased. 【Conclusion】Therefore, the discordance between variation of grain yield and its nutrient uptake caused by different precipitation and soil nutrient supply capacities between locations were the key reason for their nutrient concentration variation in dryland. Compared with Yangling, the yield dilution influence was the main reason for the lower N concentration in wheat grain of Yongshou. It was the higher soil available P and available S supply, so that the higher P and S absorption of grain and aboveground at Yongshou did not decrease its grain P and S concentrations. The lower soil available K and Zn as well as the P and Zn antagonistic inhibited the accumulation of wheat grain K and Zn at Yongshou. Low pH and low available K promoted the plant absorption and transfer of Ca and Mg to grain at Yongshou, and the longer grain-filling period benefitted the absorption of Fe, Mn and Cu and the transfer to grain. In practical crop production, the optimized fertilization practice should be taken according to the specific soil nutrient supply and climate conditions for the purpose to coordinate the crop nutrient uptake and yield change, to produce wheat with high yield and high grain nutrient quality.

Key words: dry land, wheat, grain, soil nutrients, Loess Plateau

Table 1

The test soil physical and chemical properties in 0-40 cm soil layer at the beginning of the experiment in 2017"

土层
Soil layer (cm)
地点
Site
pH 有机质
Organic matter (g·kg-1)
全氮
Total N
(g·kg-1)
硝态氮
NO3- -N
(mg·kg-1)
铵态氮
NH4+-N
(mg·kg-1)
有效磷
Available P
(mg·kg-1)
速效钾
Available K (mg·kg-1)
0-20 永寿Yongshou 8.0b 13.5a 0.8a 8.0a 0.5a 19.4a 140.8a
杨凌Yangling 8.1a 14.1a 0.8a 6.4a 0.2a 3.3b 167.5a
20-40 永寿Yongshou 7.9b 12.1a 0.7a 18.7a 0.5a 13.9a 121.6b
杨凌Yangling 8.2a 9.3b 0.6b 3.9b 0.0b 1.2b 134.8a

Fig. 1

Precipitation during the fallow (7-9 months) and growing seasons (10-6 months) of winter wheat in 2017-2018 at two experimental sites"

Table 2

Grain yield, biomass, harvest index and yield components averaged over 20 cultivars at two experimental sites"

试验地点
Site
品种数
Variety
number
籽粒产量
Grain yield
(kg·hm-2)
生物量
Biomass
(kg·hm-2)
收获指数
Harvest
(%)
穗数
Spike number
(×104·hm-2)
穗粒数
Grain number
千粒重
1000-grain weight
(g)
永寿Yongshou 20 5928a 11995a 49.4a 433a 32a 44.0b
杨凌Yangling 20 4502b 10781b 41.6b 353b 29a 46.0a

Table 3

The test soil physical and chemical properties of medium and micronutrients in 0-40 cm soil layer at the beginning of the experiment"

土层
Soil layer
(cm)
地点
Site
中量元素Medium element 微量元素Microelement
有效硫
Available S
(mg·kg-1)
交换性钙
Exch.-Ca
(g·kg-1)
交换性镁
Exch.-Mg
(g·kg-1)
有效铁
DTPA-Fe
(mg·kg-1)
有效锰
DTPA-Mn
(mg·kg-1)
有效铜
DTPA-Cu
(mg·kg-1)
有效锌
DTPA-Zn
(mg·kg-1)
0-20 永寿Yongshou 9.14a 36.9a 1.00b 5.48a 10.53a 1.13b 0.33b
杨凌Yangling 5.69a 36.6a 2.19a 5.26a 11.64a 1.25a 0.47a
20-40 永寿Yongshou 9.13a 37.1a 1.02b 5.99a 9.13a 1.23a 0.29a
杨凌Yangling 5.46a 37.6a 2.42a 5.63a 8.75a 1.44a 0.24a

Fig. 2

Winter wheat grain N, P and K contents, their uptake and harvest indexes at two experimental sites Different lowercase letters on the top of columns indicate that differences are significant for the items compared between Yongshou and Yangling(P<0.05). The same as below"

Fig. 3

Winter wheat grain Ca, Mg and S contents, their uptake and harvest indexes at two experimental sites"

Fig. 4

Winter wheat grain Fe, Mn, Cu and Zn contents, and their uptake and harvest indexes at two experimental sites"

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