Geobacter-associated prophages confer beneficial effect on dissimilatory reduction of Fe(III) oxides

IF 6.2 3区 综合性期刊 Q1 Multidisciplinary Fundamental Research Pub Date : 2024-11-01 DOI:10.1016/j.fmre.2022.10.013
Guiqin Yang, Annian Lin, Xian Wu, Canfen Lin, Siyue Zhu, Li Zhuang
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Abstract

The dissimilatory reduction of Fe(III) oxides driven by Fe(III)-reducing bacteria (FRB) is an important biogeochemical process that influences not only iron cycling but also the biogeochemical cycles of carbon, trace metals, nutrients and contaminants. Phages have central roles in modulating the population and activity of FRB, but the mechanism for phage-involved Fe(III) oxide reduction is still unclear. This work used a common FRB, Geobacter soli, to explore the roles and underlying mechanisms of FRB-harboring prophages in the dissimilatory reduction of Fe(III) oxides. Bioinformatic analysis predicted 185 phage-related genes in the G. soli genome, comprising functional prophages that were verified to be induced to form tailed phage particles. Ferrihydrite reduction was facilitated as prophage induction was stimulated and declined as prophage induction was inhibited, which indicated a positive role of G. soli-harboring prophages in Fe(III) oxide reduction. A comparison of gene expression and released phage particles in the cells grown with Fe(III)-citrate and ferrihydrite suggested that microbial ferrihydrite reduction would activate the SOS response and consequently induce the prophages to enter lytic cycles. The prophage-mediated lysis of the subpopulation resulted in an increased release of extracellular DNA and membrane vesicles that were conducive to Fe(III) oxide reduction, which might explain the positive role of prophages in ferrihydrite reduction. In summary, our results revealed the functional roles and underlying mechanisms of FRB-associated prophages in facilitating the dissimilatory reduction of Fe(III) oxides, which will advance our understanding of iron cycling in natural ecosystems.

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地杆菌相关的噬菌体对Fe(III)氧化物的异化还原具有有益的作用
铁(III)还原菌(FRB)驱动铁(III)氧化物的异化还原是一个重要的生物地球化学过程,不仅影响铁的循环,而且影响碳、微量金属、营养物质和污染物的生物地球化学循环。噬菌体在调节FRB的数量和活性方面发挥着核心作用,但噬菌体参与铁(III)氧化物还原的机制尚不清楚。本研究使用了一种常见的FRB,土杆菌,来探索FRB在Fe(III)氧化物的异化还原中的作用和潜在机制。生物信息学分析预测了185个与噬菌体相关的基因,包括功能性噬菌体,这些噬菌体被证实可以诱导形成尾状噬菌体颗粒。刺激原噬菌体诱导有利于水合铁还原,抑制原噬菌体诱导有利于水合铁还原,说明G. soli- containing原噬菌体对Fe(III)氧化物还原具有积极作用。用铁(III)-柠檬酸盐和水铁酸盐培养的细胞中基因表达和释放的噬菌体颗粒的比较表明,微生物水铁酸盐还原会激活SOS反应,从而诱导噬菌体进入裂解循环。原噬菌体介导的亚群裂解导致细胞外DNA和膜囊泡的释放增加,有利于Fe(III)氧化物的还原,这可能解释了原噬菌体在还原水合铁中的积极作用。总之,我们的研究结果揭示了frb相关噬菌体在促进Fe(III)氧化物异化还原中的功能作用和潜在机制,这将有助于我们对自然生态系统中铁循环的理解。
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来源期刊
Fundamental Research
Fundamental Research Multidisciplinary-Multidisciplinary
CiteScore
4.00
自引率
1.60%
发文量
294
审稿时长
79 days
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