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High spatial resolution of distribution and interconnections between Fe- and N-redox processes in profundal lake sediments

机译:湖泊深部沉积物中铁氧化还原过程与氮氧化还原过程之间分布和相互联系的高空间分辨率

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The Fe and N biogeochemical cycles play key roles in freshwater environments. We aimed to determine the spatial positioning and interconnections of the N and Fe cycles in profundal lake sediments. The gradients of O_2, NO_3~-, NH_4~+, pH, Eh, Fe(II) and Fe(III) were determined and the distribution of microorganisms was assessed by most probable numbers and quantitative polymerase chain reaction. The redox zones could be divided into an oxic zone (0-8 mm), where microaerophiles (Gallionellaceae) were most abundant at a depth of 7 mm. This was followed by a denitrification zone (6-12 mm), where NO_3~-- dependent Fe(II) oxidizers and organoheterotrophic denitrifiers both reduce nitrate. Lastly, an iron redox transition zone was identified at 12.5-22.5 mm. Fe(III) was most abundant above this zone while Fe(II) was most abundant beneath. The high abundance of poorly crystalline iron suggested iron cycling. The Fe and N cycles are biologically connected through nitrate-reducing Fe(II) oxidizers and chemically by NO_x~- species formed during denitrification, which can chemically oxidize Fe(II). This study combines high resolution chemical, molecular and microbiological data to pinpoint sedimentary redox zones in which Fe is cycled between Fe(II) and Fe(III) and where Fe and N-redox processes interact.
机译:铁和氮的生物地球化学循环在淡水环境中起关键作用。我们旨在确定湖底沉积物中氮和铁循环的空间定位和相互联系。确定了O_2,NO_3〜-,NH_4〜+,pH,Eh,Fe(II)和Fe(III)的梯度,并通过最可能的数量和定量聚合酶链反应评估了微生物的分布。氧化还原区域可分为一个氧化区域(0-8毫米),其中在7毫米深度处的微需氧菌(金蝇科)最丰富。随后是一个反硝化区(6-12毫米),其中依赖NO_3-的Fe(II)氧化剂和有机异养反硝化剂均还原硝酸盐。最后,确定了一个铁氧化还原过渡区为12.5-22.5 mm。 Fe(III)在该区域上方最丰富,而Fe(II)在该区域下方最丰富。大量的不良结晶铁表明铁循环。 Fe和N循环通过还原硝酸盐的Fe(II)氧化剂进行生物连接,并通过反硝化过程中形成的NO_x〜-在化学上进行连接,从而可以化学氧化Fe(II)。这项研究结合了高分辨率的化学,分子和微生物学数据,以查明沉积的氧化还原带,其中Fe在Fe(II)和Fe(III)之间循环,并且Fe和N-氧化还原过程相互作用。

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