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Effect of P fertilizer reduction regime on soil Olsen-P,root Fe-plaque P,and rice P uptake in rice-wheat rotation paddy fields
作者姓名:Hao CHEN  Yu WANG  Jiahui YUAN  Wenbin ZHU  Guanglei CHEN  Shenqiang WANG
作者单位:State Key Laboratory of Soil and Sustainable Agriculture;College of Resource and Environment;College of Resources and Environmental Sciences
基金项目:funded by The National Key Research and Development Program of China (No. 2017YFD0800103);the National Natural Science Foundation of China (No. 41671304);the Key Projects in the National “948” Program during the Twelfth Five-Year Plan Period (No. 2011-G30)。
摘    要:In agricultural systems, it is vital to use limited yet optimal phosphorus(P) resources, because excessive P fertilizer application leads to the accumulation of P in soil, increasing the risk of environmental pollution and causing the waste and exhaustion of P resources. In a rice-wheat rotation system, omitting P fertilizer application in the rice-growing season is a good alternative;however, how this P fertilization reduction influences changes in P in the soil-root-aboveground system is unclear. In this study, after a seven-year rice-wheat rotation at the Yixing(YX) and Changshu(CS) sampling sites, China, compared with P fertilization in rice-and wheat-growing seasons(PR+W), reduced P fertilization(no P fertilizer application in either season, P0;P fertilization only in wheat-growing seasons, PW;and P fertilization only in rice-growing seasons, PR) did not result in substantial variation in crop biomass. The PW treatment did not reduce crop total P, root iron(Fe)-plaque P, and soil Olsen-P at three stages of rice growth(seedling, booting, and harvesting stages) at the YX and CS sites. In contrast, concentrations of soil Olsen-P, aboveground crop total P, and root Fe-plaque P decreased in the P0 treatment by 45.8%–81.0%,24.6%–30.9%, and 45.6%–73.4%, respectively. In addition, a significant negative correlation was observed between the root Fe-plaque P and crop biomass at the two sites. Significant positive correlations were also observed between root Fe-plaque P and root total P, crop total P, and soil Olsen-P. In addition, the results of a redundancy analysis revealed that soil alkaline phosphatase(ALP) played a major role in the supply of P in soil, and was closely associated with root Fe-plaque P. The results of this study will enhance the understanding of the changes in P in the soil-root-aboveground system, particularly under P fertilizer reduction regimes.

关 键 词:crop  biomass  crop  total  P  iron  plaque  reduced  P  input  rice-growth  stage  soil-root-aboveground  system
收稿时间:17 November 2018

Effect of P fertilizer reduction regime on soil Olsen-P, root Fe-plaque P, and rice P uptake in rice-wheat rotation paddy fields
Hao CHEN,Yu WANG,Jiahui YUAN,Wenbin ZHU,Guanglei CHEN,Shenqiang WANG.Effect of P fertilizer reduction regime on soil Olsen-P,root Fe-plaque P,and rice P uptake in rice-wheat rotation paddy fields[J].Pedosphere,2021,31(1):94-102.
Authors:Hao CHEN  Yu WANG  Jiahui YUAN  Wenbin ZHU  Guanglei CHEN and Shenqiang WANG
Institution:1State Key Laboratory of Soil and Sustainable Agriculture, Changshu National Agro-Ecosystem Observation and Research Station, Institute of Soil Science, Chinese Academy of Sciences, Nanjing 210008(China); 2College of Resource and Environment, University of Chinese Academy of Sciences, Beijing 100049(China); 3College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing 210095(China)
Abstract:In agricultural systems, it is vital to use limited yet optimal phosphorus (P) resources, because excessive P fertilizer application leads to the accumulation of P in soil, increasing the risk of environmental pollution and causing the waste and exhaustion of P resources. In a rice-wheat rotation system, omitting P fertilizer application in the rice-growing season is a good alternative; however, how this P fertilization reduction influences changes in P in the soil-root-aboveground system is unclear. In this study, after a seven-year rice-wheat rotation at the Yixing (YX) and Changshu (CS) sampling sites, China, compared with P fertilization in rice- and wheat-growing seasons (PR+W), reduced P fertilization (no P fertilizer application in either season, P0; P fertilization only in wheat-growing seasons, PW; and P fertilization only in rice-growing seasons, PR) did not result in substantial variation in crop biomass. The PW treatment did not reduce crop total P, root iron (Fe)-plaque P, and soil Olsen-P at three stages of rice growth (seedling, booting, and harvesting stages) at the YX and CS sites. In contrast, concentrations of soil Olsen-P, aboveground crop total P, and root Fe-plaque P decreased in the P0 treatment by 45.8%-81.0%, 24.6%-30.9%, and 45.6%-73.4%, respectively. In addition, a significant negative correlation was observed between the root Fe-plaque P and crop biomass at the two sites. Significant positive correlations were also observed between root Fe-plaque P and root total P, crop total P, and soil Olsen-P. In addition, the results of a redundancy analysis revealed that soil alkaline phosphatase (ALP) played a major role in the supply of P in soil, and was closely associated with root Fe-plaque P. The results of this study will enhance the understanding of the changes in P in the soil-root-aboveground system, particularly under P fertilizer reduction regimes.
Keywords:crop biomass  crop total P  iron plaque  reduced P input  rice-growth stage  soil-root-aboveground system
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