Membrane Vesicle Formation Removes Iron Sulfide Mineral Crusts From the Cell Surface of Growing Sulfate-Reducing Bacteria.

IF 2.7 2区 地球科学 Q2 BIOLOGY
Geobiology Pub Date : 2026-05-01 DOI:10.1111/gbi.70047
Cheyenne Brokaw, Patrice Boyd, Aude Picard
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Abstract

Sulfate-reducing bacteria (SRB) drive the process of sulfate reduction in low-temperature sedimentary environments. Through the production of sulfide, they promote the formation of iron-sulfide (Fe-S) minerals when Fe(II) is available. The negative charge of the cell surface of bacteria can promote the binding of Fe(II), leading to the precipitation of Fe-S minerals at the surface of SRB when sulfide is released from cells. We evaluated interactions between Fe-S minerals and the surface of SRB using transmission electron microscopy (TEM) in cultures of Maridesulfovibrio hydrothermalis AM13 grown with 4 mM of Fe(II) over 1 month of incubation. On average, 18% ± 10% of cells were encrusted in cultures collected during the exponential phase. Fe-S mineral deposition occurred at the surface of cells while cells were growing and producing sulfide in the presence of Fe(II), but mineral crusts were removed from most cells shortly after deposition. Cells removed crusts from their surface through the formation of membrane vesicles, which were apparently only produced during growth. Mineralized and non-mineralized membrane vesicles were preserved in mineral aggregates in stationary-phase cultures. On average, 17% ± 7% of cells were encrusted in cultures collected during the stationary phase, indicating that Fe-S minerals precipitated during the exponential phase and removed from the cell surface did not aggregate back onto cells. On the contrary, they formed large aggregates away from cells. When Fe-S mineral precipitation occurred in non-growing cell suspensions that were first exposed to Fe(II) then to sulfide, the proportion of encrusted cells increased to 95% ± 6%, indicating that resting or non-growing cells were not able to remove mineral crusts from their surface. The metabolic status of SRB therefore plays a role in their ability to escape Fe-S mineral entombment.

膜泡的形成除去生长的硫酸盐还原细菌细胞表面的硫化铁矿物结壳。
硫酸盐还原菌(SRB)在低温沉积环境中驱动硫酸盐还原过程。通过硫化物的产生,当铁(II)可用时,它们促进硫化铁(Fe- s)矿物的形成。细菌细胞表面的负电荷可以促进Fe(II)的结合,导致当硫化物从细胞中释放出来时,在SRB表面沉淀Fe- s矿物。我们利用透射电子显微镜(TEM)对热液Maridesulfovibrio AM13进行了Fe- s矿物与SRB表面的相互作用评估,该细菌在4 mM的Fe(II)中培养超过1个月。在指数期收集的培养物中,平均有18%±10%的细胞结痂。在Fe(II)存在下,细胞生长并产生硫化物时,在细胞表面发生了Fe- s矿物沉积,但在沉积后不久,大多数细胞的矿物结壳被去除。细胞通过形成膜泡从表面除去结痂,而膜泡显然只在生长过程中产生。矿化和非矿化膜囊泡在固定相培养中以矿物聚集体的形式保存。在固定期收集的培养物中,平均有17%±7%的细胞结壳,这表明在指数期沉淀并从细胞表面移除的Fe-S矿物没有聚集回细胞上。相反,它们在远离细胞的地方形成了大的聚集体。当先暴露于Fe(II)再暴露于硫化物的非生长细胞悬浮液中发生Fe- s矿物沉淀时,结壳细胞的比例增加到95%±6%,这表明静止或非生长细胞无法从其表面去除矿物结壳。因此,SRB的代谢状态在它们逃避Fe-S矿物埋藏的能力中起作用。
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来源期刊
Geobiology
Geobiology 生物-地球科学综合
CiteScore
6.80
自引率
5.40%
发文量
56
审稿时长
3 months
期刊介绍: The field of geobiology explores the relationship between life and the Earth''s physical and chemical environment. Geobiology, launched in 2003, aims to provide a natural home for geobiological research, allowing the cross-fertilization of critical ideas, and promoting cooperation and advancement in this emerging field. We also aim to provide you with a forum for the rapid publication of your results in an international journal of high standing. We are particularly interested in papers crossing disciplines and containing both geological and biological elements, emphasizing the co-evolutionary interactions between life and its physical environment over geological time. Geobiology invites submission of high-quality articles in the following areas: Origins and evolution of life Co-evolution of the atmosphere, hydrosphere and biosphere The sedimentary rock record and geobiology of critical intervals Paleobiology and evolutionary ecology Biogeochemistry and global elemental cycles Microbe-mineral interactions Biomarkers Molecular ecology and phylogenetics.
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