Soil Management Modulates Maize Responses to Phosphate-Solubilizing Bacteria

Phosphorus (P) limitation constrains crop production in highly weathered tropical soils, and microbial inoculants may enhance P acquisition, although their effectiveness varies with edaphic conditions. We hypothesized that the effects of a phosphate-solubilizing bacterial inoculant on plant performance and belowground processes would depend on soil P status and no-tillage history. A two-year field experiment on an Oxisol in the Brazilian Cerrado (Chapadão do Sul, MS, Brazil) compared newly established, low-P (NTS-NC) and consolidated, high-P (NTS-C) no-tillage systems. Treatments combined 0, 50, or 100% of recommended P fertilization with or without BiomaPhos®, composed of Priestia megaterium CNPMS B119 and Bacillus subtilis CNPMS B2084. Grain yield, resin-extractable soil phosphorus (P-resin), root architecture, bacterial and arbuscular mycorrhizal fungal (AMF) communities, AMF colonization, and phosphatase activities were evaluated. Grain yield in NTS-C exceeded NTS-NC by 15.7% and 18.8% in 2021/2022 and 2022/2023, respectively. Inoculation × P interactions for yield and P-resin occurred only in NTS-NC in the second season. Inoculation altered root architecture, whereas P availability reorganized bacterial association networks. AMF responses were limited and season-specific, while inoculation reduced AMF colonization and phosphatase activity primarily in NTS-C. These findings confirm that inoculant performance is context-dependent and should be integrated with site-specific P fertilization strategies.

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Publication Details

Journal
Agronomy
Published
2026-09-21
DOI
https://doi.org/10.3390/agronomy16181861
Primary Topic
Mycorrhizal Fungi and Plant Interactions
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article
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article

Soil Management Modulates Maize Responses to Phosphate-Solubilizing Bacteria

C. A. Oliveira-Paiva, Isabela Figueiredo de Oliveira, S. M. de Sousa, Eliane Aparecida Gomes et al.
Agronomy
Mycorrhizal Fungi and Plant Interactions
article

Soil Management Modulates Maize Responses to Phosphate-Solubilizing Bacteria

C. A. Oliveira-Paiva, Isabela Figueiredo de Oliveira, S. M. de Sousa, Eliane Aparecida Gomes, Thiago Teixeira Santos, Mariana Lourenço Campolino, Rafael Felippe Ratke, Raquel Gomes de Oliveira, João Vitor Silvério Alves de Avelar, Ubiraci Gomes de Paula Lana
article en

Abstract

Phosphorus (P) limitation constrains crop production in highly weathered tropical soils, and microbial inoculants may enhance P acquisition, although their effectiveness varies with edaphic conditions. We hypothesized that the effects of a phosphate-solubilizing bacterial inoculant on plant performance and belowground processes would depend on soil P status and no-tillage history. A two-year field experiment on an Oxisol in the Brazilian Cerrado (Chapadão do Sul, MS, Brazil) compared newly established, low-P (NTS-NC) and consolidated, high-P (NTS-C) no-tillage systems. Treatments combined 0, 50, or 100% of recommended P fertilization with or without BiomaPhos®, composed of Priestia megaterium CNPMS B119 and Bacillus subtilis CNPMS B2084. Grain yield, resin-extractable soil phosphorus (P-resin), root architecture, bacterial and arbuscular mycorrhizal fungal (AMF) communities, AMF colonization, and phosphatase activities were evaluated. Grain yield in NTS-C exceeded NTS-NC by 15.7% and 18.8% in 2021/2022 and 2022/2023, respectively. Inoculation × P interactions for yield and P-resin occurred only in NTS-NC in the second season. Inoculation altered root architecture, whereas P availability reorganized bacterial association networks. AMF responses were limited and season-specific, while inoculation reduced AMF colonization and phosphatase activity primarily in NTS-C. These findings confirm that inoculant performance is context-dependent and should be integrated with site-specific P fertilization strategies.

AgronomyVol. 16(18)
Universidade Federal de Mato Grosso do Sul (BR), Brazilian Agricultural Research Corporation (BR), Federal University of São João del-Rei (BR)
Zero hunger
Openalex Percentile: Top 13%
Mycorrhizal Fungi and Plant Interactions
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