微生物呼吸 - - 从生物矿物质的角度来看
Lucian C Staicu1,2, Julie Cosmidis3, Muammar Mansor4
1Department of Bacterial Genetics, Faculty of Biology, University of Warsaw, 02-096 Warsaw, Poland.
FEMS microbiology ecology
|September 25, 2025
概括
微生物通过无氧呼吸将,铁,硫和等金属和金属化物转化为生物矿物. 这些生物矿物质具有不同的功能和作为生物标志的潜力.
科学领域:
- 地质微生物学的生物.
- 环境科学 环境科学
- 生物化学 生物化学
背景情况:
- 微生物生物矿化在自然和人为环境中至关重要.
- 微生物通过无氧呼吸利用金属和金属化物获得能量.
- 这个过程产生了细胞内和细胞外的生物矿物质.
研究的目的:
- 探索 (As),铁 (Fe),硫 (S) 和 (Se) 的微生物生物矿化.
- 研究这些生物矿物化过程与微生物呼吸道之间的联系.
- 审查由此产生的生物矿物质的形成,功能和潜在的生物特征应用.
主要方法:
- 文献综述侧重于微生物呼吸和生物矿物化.
- 对由As,Fe,S和Se转化形成的生物矿物质的分析.
- 讨论这些生物矿物质的功能作用和生物签名潜力.
主要成果:
- 微生物呼吸利用Fe (III) 和As,S和Se的氧离子作为电子受体,产生能量.
- 生物矿物形成包括硫化,铁 (氧化) 氧化物/硫化物,元素硫 (S0) 和元素 (Se0).
- 生物矿物具有储存 (S0),密度/丰度改变 (Se0) 等作用,或作为具有未知功能的副产品出现.
结论:
- As,Fe,S和Se的微生物生物矿化是一个重要的生物地化学过程.
- 许多生物矿物质的功能作用仍在研究中.
- 生物矿物具有作为生物签名的潜力,需要进一步研究以获得基本和应用洞察力.
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