Interplay between abiotic and microbial biofilm‐mediated processes for travertine formation: Insights from a thermal spring (Piscine Carletti, Viterbo, Italy)

方解石 石膏 非生物成分 生物地球化学循环 环境化学 微生物垫 矿化(土壤科学) 沉积(地质) 矿物 降水 生物矿化 溶解 地质学 矿物学 温泉 化学 微生物种群生物学 微生物 热液循环 极端微生物 硫酸盐 硫黄 硅酸盐矿物 生态学 生物膜
作者
Stefanía Venturi,Simona Crognale,Francesco Di Benedetto,Giordano Montegrossi,Barbara Casentini,Stefano Amalfitano,Tommaso Baroni,Simona Rossetti,Franco Tassi,Francesco Capecchiacci,Orlando Vaselli,Stefano Fazi
出处
期刊:Geobiology [Wiley]
卷期号:20 (6): 837-856 被引量:7
标识
DOI:10.1111/gbi.12516
摘要

Abstract Active hydrothermal travertine systems are ideal environments to investigate how abiotic and biotic processes affect mineralization mechanisms and mineral fabric formation. In this study, a biogeochemical characterization of waters, dissolved gases, and microbial mats was performed together with a mineralogical investigation on travertine encrustations occurring at the outflow channel of a thermal spring. The comprehensive model, compiled by means of TOUGHREACT computational tool from measured parameters, revealed that mineral phases were differently influenced by either abiotic conditions or microbially driven processes. Microbial mats are shaped by light availability and temperature gradient of waters flowing along the channel. Mineralogical features were homogeneous throughout the system, with euhedral calcite crystals, related to inorganic precipitation induced by CO 2 degassing, and calcite shrubs associated with organomineralization processes, thus indicating an indirect microbial participation to the mineral deposition (microbially influenced calcite). The microbial activity played a role in driving calcite redissolution processes, resulting in circular pits on calcite crystal surfaces possibly related to the metabolic activity of sulfur‐oxidizing bacteria found at a high relative abundance within the biofilm community. Sulfur oxidation might also explain the occurrence of gypsum crystals embedded in microbial mats, since gypsum precipitation could be induced by a local increase in sulfate concentration mediated by S‐oxidizing bacteria, regardless of the overall undersaturated environmental conditions. Moreover, the absence of gypsum dissolution suggested the capability of microbial biofilm in modulating the mobility of chemical species by providing a protective envelope on gypsum crystals.
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