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Phages released from Acidithiobacillus ferrooxidans enhance chalcopyrite bioleaching by alleviating passivation and promoting sulfur turnover.

Created on 27 Jul 2026

Authors

Zhaoyue Yang, Zhenghua Liu, Delong Meng, Zhendong Yang, Kuojun Hu, Zhuzhong Yin, Ling Xia, Ibrahim Ahmed Ibrahim, Xiangdong Xiao, Xueduan Liu, Huaqun Yin

Published in

Advanced biotechnology. Volume 4. Issue 3. Jul 27, 2026. Epub Jul 27, 2026.

Abstract

Chalcopyrite is the most abundant copper-bearing sulfide mineral, characterized by a stable crystal structure. Bioleaching of chalcopyrite is inherently slow and further constrained by surface passivation layers during prolonged bioleaching. In this study, bacteriophages released from Acidithiobacillus ferrooxidans were introduced to promote chalcopyrite bioleaching. Mineralogical characterization, microbial profiling, and functional gene analysis were employed to reveal the underlying mechanisms. One day after phage introduction, phage abundance was 9.42 × 105 VLPs mL-1 in the phage-treated group, 150-fold higher than in the control (6.26 × 103 VLPs mL-1). Over a 60-day leaching period, the copper leaching efficiency of the phage-treated group was 31.72%, significantly higher than that of the control (20.43%). Phage introduction alleviated surface passivation, suppressed elemental sulfur (S0) and jarosite-type deposition, and increased the apparent product-layer diffusion rate constant 3.60-fold. Bacterial diversity and the relative abundance of heterotrophic bacteria were elevated. The increase in heterotrophic bacteria may alleviate the inhibitory effects of organic matter on autotrophic bioleaching microorganisms. Genes associated with the Sox system, dissimilatory sulfur metabolism, and organic sulfur transformation were significantly enriched in the phage-treated group, consistent with enhanced S0 turnover and reduced surface accumulation. Together, these results indicate that phage introduction enhances chalcopyrite bioleaching by alleviating surface passivation and promoting sulfur turnover through coupled interfacial and microbial regulation. This study provides a novel approach for sustainable intensification of bioleaching of refractory sulfide minerals.

PMID:
42507248
Bibliographic data and abstract were imported from PubMed on 27 Jul 2026.

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