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Microbial diversity involved in iron and cryptic sulfur cycling in the ferruginous low-sulfate waters of Lake Pavin

机译:帕文湖含铁低硫酸盐水中的铁和隐含硫循环中的微生物多样性

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摘要

Both iron- and sulfur- reducing bacteria strongly impact the mineralogy of iron, but their activity has long been thought to be spatially and temporally segregated based on the higher thermodynamic yields of iron over sulfate reduction. However, recent evidence suggests that sulfur cycling can predominate even under ferruginous conditions. In this study, we investigated the potential for bacterial iron and sulfur metabolisms in the iron-rich (1.2 mM dissolved Fe2+), sulfate-poor (< 20 μM) Lake Pavin which is expected to host large populations of iron-reducing and iron-oxidizing microorganisms influencing the mineralogy of iron precipitates in its permanently anoxic bottom waters and sediments. 16S rRNA gene amplicon libraries from at and below the oxycline revealed that highly diverse populations of sulfur/sulfate-reducing (SRB) and sulfur/sulfide-oxidizing bacteria represented up to 10% and 5% of the total recovered sequences in situ, respectively, which together was roughly equivalent to the fraction of putative iron cycling bacteria. In enrichment cultures amended with key iron phases identified in situ (ferric iron phosphate, ferrihydrite) or with soluble iron (Fe2+), SRB were the most competitive microorganisms, both in the presence and absence of added sulfate. The large fraction of Sulfurospirillum, which are known to reduce thiosulfate and sulfur but not sulfate, present in all cultures was likely supported by Fe(III)-driven sulfide oxidation. These results support the hypothesis that an active cryptic sulfur cycle interacts with iron cycling in the lake. Analyses of mineral phases showed that ferric phosphate in cultures dominated by SRB was transformed to vivianite with concomitant precipitation of iron sulfides. As colloidal FeS and vivianite have been reported in the monimolimnion, we suggest that SRB along with iron-reducing bacteria strongly influence iron mineralogy in the water column and sediments of Lake Pavin.
机译:还原铁和还原硫的细菌均会强烈影响铁的矿物学,但长期以来,人们认为它们的活性在空间和时间上是基于铁的热力学产率高于硫酸盐还原而分离的。但是,最近的证据表明,即使在铁质条件下,硫循环仍可能占主导地位。在这项研究中,我们调查了富含铁(1.2 mM溶解的Fe 2 + ),贫硫酸盐(<20μM)的帕文湖中细菌铁和硫代谢的潜力,该湖有望成为宿主大量铁还原性和铁氧化性微生物会影响其永久缺氧的底水和沉积物中铁沉淀的矿物学。来自奥克西林及其下方的16S rRNA基因扩增子文库显示,高度减少硫/硫酸盐还原(SRB)和硫/硫化物氧化细菌的种群分别占原位总回收序列的10%和5%,它们合计相当于推定的铁循环细菌的比例。在用原位确定的关键铁相(磷酸铁铁,水铁矿)或可溶性铁(Fe 2 + )修正的富集培养中,无论是否存在添加物,SRB都是最具竞争力的微生物硫酸盐。存在于所有培养物中的大部分磺脲螺菌素已知会还原硫代硫酸盐和硫,但不会还原硫酸盐,很可能是由Fe(III)驱动的硫化物氧化所支持的。这些结果支持了一个假设,即一个活跃的隐性硫循环与湖中的铁循环相互作用。矿物相分析表明,以SRB为主的培养物中的磷酸铁被伴随着硫化铁的沉淀转化为堇青石。由于已在monimolimnion中报道了胶体FeS和维维石,因此我们建议SRB与还原铁细菌一起强烈影响帕文湖水柱和沉积物中的铁矿质。

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