Mobilization of Readily Exchangeable Organic P - A Potential Driver of Enhanced P Acquisition Efficiency in Upland Rice.

IF 3.9 3区 农林科学
Eva Mundschenk, Rainer Remus, Matthias Wissuwa, Christiana Staudinger, Uxue Otxandorena-Ieregi, Eva Oburger, Maire Holz
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Abstract

High phosphorus (P) fixation in soils is a major constraint on crop production worldwide. To address this challenge, we investigated plant-induced changes in soil P pools, aiming to identify superior P uptake strategies by examining whether different upland rice genotypes access various P sources in the rhizosphere. Two genotypes (DJ123 and Nerica4) with varying P acquisition efficiencies (PAEs) were grown in an Andosol under low- and high-P fertilization. Fertilizer-P was labeled with 33P, and plants were harvested 34 days after emergence. Hedley fractionation was conducted on initial soil, as well as on bulk and rhizosphere soils after harvest, to analyze changes in fertilizer/native soil and inorganic/organic P in different fractions. Fertilizer-P entered all Hedley fractions, with the largest share being found in the moderately labile (NaOH-P, + 72%) and stable (H2SO4-P, + 19.8%) P fractions under both P treatments. The plant presence resulted in a decrease in fertilizer-P in the most labile P fraction (resin-P), whereas native soil-P and organic P increased in the other labile P fraction (NaHCO3-P). Moreover, a sharp decline in organic NaOH-P fraction in the rhizosphere, along with an increase in inorganic NaOH-P under both P conditions, was observed. Genotypic differences were evident, with DJ123 exhibiting increased organic resin-P concentrations in the rhizosphere compared to Nerica4. DJ123 demonstrated superior access to readily exchangeable organic P in the rhizosphere, highlighting a potential driver for its enhanced PAE. These findings emphasize the importance of genotype-specific strategies for optimizing P mobilization and acquisition in highly P-fixing soils.

易交换有机磷的动员——旱稻磷吸收效率提高的潜在驱动因素。
在世界范围内,土壤高磷固结是制约作物生产的主要因素。为了解决这一挑战,我们研究了植物诱导的土壤磷库变化,旨在通过研究不同旱稻基因型是否能获取根际不同的磷源来确定优越的磷吸收策略。在低磷和高磷施肥条件下,两个基因型(DJ123和Nerica4)具有不同的磷获取效率(PAEs)。用33P标记肥料- p,植株出芽后34天收获。对初始土壤、收获后块状土壤和根际土壤进行Hedley分馏,分析不同分馏中肥料/原生土和无机/有机磷的变化。肥料磷进入所有赫德利组分,在两种施磷处理下,中不稳定组分(NaOH-P, + 72%)和稳定组分(H2SO4-P, + 19.8%)所占比例最大。植物的存在导致最不稳定的磷组分(树脂磷)中肥料磷的减少,而另一个不稳定的磷组分(NaHCO3-P)中土壤磷和有机磷的增加。此外,在两种施磷条件下,根际有机NaOH-P含量急剧下降,无机NaOH-P含量增加。基因型差异明显,DJ123根际有机树脂p浓度高于Nerica4。DJ123表现出对根际易交换有机磷的优越获取,突出了其增强PAE的潜在驱动因素。这些发现强调了在高固磷土壤中优化磷动员和获取的基因型特异性策略的重要性。
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来源期刊
自引率
10.30%
发文量
331
期刊介绍: The Journal of Soil Science and Plant Nutrition is an international, peer reviewed journal devoted to publishing original research findings in the areas of soil science, plant nutrition, agriculture and environmental science. Soil sciences submissions may cover physics, chemistry, biology, microbiology, mineralogy, ecology, pedology, soil classification and amelioration. Plant nutrition and agriculture submissions may include plant production, physiology and metabolism of plants, plant ecology, diversity and sustainability of agricultural systems, organic and inorganic fertilization in relation to their impact on yields, quality of plants and ecological systems, and agroecosystems studies. Submissions covering soil degradation, environmental pollution, nature conservation, and environmental protection are also welcome. The journal considers for publication original research articles, technical notes, short communication, and reviews (both voluntary and by invitation), and letters to the editor.
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