Arsenic Accumulation in Microbial Biomass and the Interpretation of Signals of Early Arsenic-Based Metabolisms

IF 3.4 2区 地球科学 Q2 BIOLOGY
Geobiology Pub Date : 2025-06-13 DOI:10.1111/gbi.70024
David Madrigal-Trejo, Matthew J. Baldes, Nobumichi Tamura, Vanja Klepac-Ceraj, Tanja Bosak
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Abstract

Carbonaceous particles that concentrate arsenic in microbialites as old as ~3.5 Ga are similar to As-rich organic globules in modern microbialites. The former particles have been interpreted as tracers of As cycling by early microbial metabolisms. However, it is unclear if arsenic accumulation is a consequence of biological activity or passive postmortem binding of arsenic by organic matter during diagenesis in volcanically influenced, As-rich environments. Here, we address this uncertainty by evaluating the concentrations, speciation, and detectability of As in active or heat-killed biofilms formed by cyanobacteria or anoxygenic photosynthetic microbes exposed to environmentally relevant concentrations of As(III) or As(V) (50 μM to 3 mM). The genomes or metagenomes of these biofilms contain genes involved in detoxifying or energy-yielding As metabolisms. Biomass accumulates As from the solution in a concentration-dependent manner and with a preference for oxidized As(V) over As(III). Autoclaved biomass accumulates As even more strongly than active biomass, likely because living biofilms actively detoxify As. Active biofilms oxidize and reduce As and accumulate both As(III) and As(V), whereas a small fraction of As(V) can be reduced in inactive biofilms that bind As during diagenesis. Arsenic enrichments in the biomass are detectable by X-ray based spectroscopy techniques (XRF, EPMA-WDS) that are commonly used to analyze geological materials. These findings enable the reconstruction of past active and passive interactions of microbial biomass with arsenic in fossilized microbial biofilms and microbialites from the early Earth.

Abstract Image

微生物生物量中的砷积累和早期砷代谢信号的解释
在距今约3.5 Ga的微生物岩中富集砷的碳质颗粒与现代微生物岩中富含砷的有机微球相似。前者被解释为早期微生物代谢的as循环示踪剂。然而,目前尚不清楚砷的积累是生物活性的结果,还是在火山影响的富砷环境中成岩过程中有机质对砷的被动死后结合的结果。在这里,我们通过评估蓝藻细菌或无氧光合微生物暴露于环境相关浓度的As(III)或As(V) (50 μM至3 mM)下形成的活性或热杀灭生物膜中As的浓度、形态和可检测性来解决这一不确定性。这些生物膜的基因组或宏基因组包含与解毒或产能代谢有关的基因。生物质以浓度依赖的方式从溶液中积累As,并且优先于氧化As(V)而不是As(III)。蒸压后的生物量比活性生物量积累的As更强烈,可能是因为活的生物膜积极地解毒As。活性生物膜氧化和还原As,并积累As(III)和As(V),而在成岩过程中结合As的非活性生物膜中,一小部分As(V)可以被还原。生物质中砷的富集可以通过x射线光谱技术(XRF, EPMA-WDS)检测到,这些技术通常用于分析地质物质。这些发现可以重建早期地球微生物生物膜和微生物岩化石中微生物生物量与砷的主动和被动相互作用。
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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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