Synergistic remediation of cadmium-contaminated soil by biochar-loaded nanoscale zerovalent iron and Eisenia fetida: Shifting bacterial communities from cadmium tolerance to metabolic resilience

Biochar-loaded nanoscale zerovalent iron (nZVI@BC) combined with earthworms is a promising strategy for Cd-contaminated soil remediation. However, the responses of soil bacterial communities, which are crucial indicators of soil health, remain poorly understood. This study systematically evaluated soil bacterial variations under BC/nZVI@BC- Eisenia fetida remediation through five perspectives: species composition, diversity analysis, differential species and biomarkers, co-occurrence networks, and metabolic pathways. The results revealed that Cd contamination enriched Cd-tolerant Actinobacteria and suppressed Proteobacteria , thereby destabilizing the bacterial community. BC- Eisenia fetida remediation partially restored sensitive bacteria but failed to fully reverse the community degradation. In contrast, nZVI@BC- Eisenia fetida remediation significantly increased the abundance of dominant bacteria, notably enriching Nocardioides and Blastococcus . This shift drove a community transition from Cd tolerance to functional recovery and enhanced ecological stability. It also significantly increased diversity and promoted the aggregation of dominant species. Twenty-two biomarkers were identified, with Actinobacteria indicating Cd tolerance stress, and Chloroflexi reflecting nZVI@BC-mediated redox. Co-occurrence networks clarified the interactions within bacterial community, revealing restructured ecological connectivity. Furthermore, functional prediction indicated that nZVI@BC- Eisenia fetida remediation activated basal energy metabolism and anaerobic pathways, inhibited non-essential secondary metabolism, and reshaped metabolic networks, thereby providing labile carbon sources and regulating redox conditions. This study provides a theoretical basis for understanding microbial responses to synergistic remediation of Cd-contaminated soil, and promotes soil sustainable utilization.

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Publication Details

Journal
Applied Soil Ecology
Published
2026-09-18
DOI
https://doi.org/10.1016/j.apsoil.2026.107465
Primary Topic
Environmental remediation with nanomaterials
Type
article
Field-Weighted Citation Impact
0.00

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article

Synergistic remediation of cadmium-contaminated soil by biochar-loaded nanoscale zerovalent iron and Eisenia fetida: Shifting bacterial communities from cadmium tolerance to metabolic resilience

Peipei Song, Xiaoyu Gao
Applied Soil Ecology
Environmental remediation with nanomaterials
article

Synergistic remediation of cadmium-contaminated soil by biochar-loaded nanoscale zerovalent iron and Eisenia fetida: Shifting bacterial communities from cadmium tolerance to metabolic resilience

Peipei Song, Xiaoyu Gao
article en

Abstract

Biochar-loaded nanoscale zerovalent iron (nZVI@BC) combined with earthworms is a promising strategy for Cd-contaminated soil remediation. However, the responses of soil bacterial communities, which are crucial indicators of soil health, remain poorly understood. This study systematically evaluated soil bacterial variations under BC/nZVI@BC- Eisenia fetida remediation through five perspectives: species composition, diversity analysis, differential species and biomarkers, co-occurrence networks, and metabolic pathways. The results revealed that Cd contamination enriched Cd-tolerant Actinobacteria and suppressed Proteobacteria , thereby destabilizing the bacterial community. BC- Eisenia fetida remediation partially restored sensitive bacteria but failed to fully reverse the community degradation. In contrast, nZVI@BC- Eisenia fetida remediation significantly increased the abundance of dominant bacteria, notably enriching Nocardioides and Blastococcus . This shift drove a community transition from Cd tolerance to functional recovery and enhanced ecological stability. It also significantly increased diversity and promoted the aggregation of dominant species. Twenty-two biomarkers were identified, with Actinobacteria indicating Cd tolerance stress, and Chloroflexi reflecting nZVI@BC-mediated redox. Co-occurrence networks clarified the interactions within bacterial community, revealing restructured ecological connectivity. Furthermore, functional prediction indicated that nZVI@BC- Eisenia fetida remediation activated basal energy metabolism and anaerobic pathways, inhibited non-essential secondary metabolism, and reshaped metabolic networks, thereby providing labile carbon sources and regulating redox conditions. This study provides a theoretical basis for understanding microbial responses to synergistic remediation of Cd-contaminated soil, and promotes soil sustainable utilization.

Applied Soil EcologyVol. 227
Soil and Fertilizer Institute of Hunan Province (CN), Shandong Agricultural University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 21%
Environmental remediation with nanomaterials
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