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Phosphorus application, nutrient absorption, and endophytic root bacterial communities in maize grown in phosphorus-deficient rocky arid soils, China
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  • Published: 13 April 2026

Phosphorus application, nutrient absorption, and endophytic root bacterial communities in maize grown in phosphorus-deficient rocky arid soils, China

  • Zhi Jia1,
  • Li fei Zhu3,
  • Li Wang4,
  • Jianchun Zhang3,
  • Shuanghu Liu3,
  • Fang Tian1,
  • Yin Yi2,3,
  • Jianfeng Wang5,
  • Jing Tang1,3 &
  • …
  • Jiyi Gong  ORCID: orcid.org/0009-0009-9439-70801,2 

Scientific Reports , Article number:  (2026) Cite this article

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We are providing an unedited version of this manuscript to give early access to its findings. Before final publication, the manuscript will undergo further editing. Please note there may be errors present which affect the content, and all legal disclaimers apply.

Subjects

  • Ecology
  • Environmental sciences
  • Microbiology
  • Plant sciences

Abstract

Phosphorus deficiency is one of the major constraints for crop growth in Karst rocky desertification regions. Different phosphorus treatments have become important strategies for enhancing agricultural productivity; however, the effects of phosphorus fertilization on nutrient allocation and root endophytic microbiome at different growth stages under field conditions remain inadequately explored. Therefore, this study implemented four phosphorus application treatments in a field-based maize cultivation system: P0 (0 kg ha⁻¹), P1 (75 kg ha⁻¹), P2 (150 kg ha⁻¹), and P3 (225 kg ha⁻¹). Nutrient distribution and root endophytic microbial community dynamics were analyzed at the jointing and milk-ripening stages. The results demonstrated that: (1) With increasing phosphorus application, the total nitrogen (TN) and total phosphorus (TP) in roots and leaves at the jointing, silking, and milk-ripening stages exhibited a pattern of “low phosphorus treatment enhancing TP content, while high phosphorus treatment suppressing TP uptake.” Total potassium (TK) content showed a decreasing trend, with the highest nutrient uptake observed at the phosphorus application rate of 150 kg ha⁻¹. (2) Analysis of the root bacterial community revealed a decline in bacterial diversity with increasing phosphorus levels, but the abundance of Proteobacteria and Actinobacteria were significantly enhanced. (3) Correlation analysis indicated that low phosphorus treatment (P0) induced microbial community restructuring, high phosphorus treatment (P3) promoted the proliferation of functional taxa such as Pseudomonadaceae, while medium phosphorus treatment (P2) showed the most significant correlation between microbial community structure and phosphorus availability. This study provides valuable scientific insights for optimizing phosphorus fertilization in maize production in karst regions.

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Data availability

The author declares that all data sources are genuine and in compliance with the planning guidelines, and all data are available.

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Funding

This work was funded by the Major Scientific and Technological Project of Guizhou Province (Qiankehechengguo[2022] zhongdian 010), The Science and Technology Research Project of Guizhou Provincial Department of Education (Qianjiaoji [2023] No.004).Science and Technology Support Project of Guizhou Province (QKHZC[2021]YB459)

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Authors and Affiliations

  1. College of Life Sciences, Guizhou Normal University, Guiyang, Guizhou, 550025, China

    Zhi Jia, Fang Tian, Jing Tang & Jiyi Gong

  2. Engineering Research Center of Carbon Neutrality in Karst Areas, Guiyang, Guizhou, 550025, China

    Yin Yi & Jiyi Gong

  3. School of Ecological Civilization, Guizhou Normal University, Guiyang, 550025, Guizhou, China

    Li fei Zhu, Jianchun Zhang, Shuanghu Liu, Yin Yi & Jing Tang

  4. College of Animal Husbandry and Veterinary Science, Qinghai University, Xining, 810016, Qinghai, China

    Li Wang

  5. State Key Laboratory of Herbage Improvement and Grassland Agro- ecosystems, Center for Grassland Microbiome, Key Laboratory of Grassland Livestock Industry Innovation, Engineering Research Center of Grassland Industry, College of Pastoral Agriculture Science and Technology, Lanzhou University, Lanzhou University, Ministry of Agriculture and Rural Affairs, Ministry of Education, Lanzhou University, Lanzhou, 730000, China

    Jianfeng Wang

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Yin Yi and Jing Tang was responsible for experimental design and the submission of funding proposals. Jiyi Gong led the experimental design method development, and manuscript preparation. Zhi Jia undertook sample collection data analysis, and manuscript writing. Lifei Zhu and Jianchun Zhang collaborated on sample collection and data gathering. Shuanghu Liu and Fang Tian were in charge of the systematic organization of experimental data. Jianfeng Wang and Li Wang conducted multiple rounds of revisions and language polishing for the manuscript.

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Jia, Z., Zhu, L.f., Wang, L. et al. Phosphorus application, nutrient absorption, and endophytic root bacterial communities in maize grown in phosphorus-deficient rocky arid soils, China. Sci Rep (2026). https://doi.org/10.1038/s41598-026-47922-8

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  • Received: 07 January 2026

  • Accepted: 03 April 2026

  • Published: 13 April 2026

  • DOI: https://doi.org/10.1038/s41598-026-47922-8

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Keywords

  • Maize
  • Zea mays
  • Phosphorus fertilization
  • Root nutrient allocation
  • Root endophytic microbiota
  • Karst rocky desertification
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