Influences of arsenate and/or phosphate adsorption to ferrihydrite on iron-reducing and arsenic-reducing microbial communities in paddy soil revealed by rRNA-13C-acetate probing

砷酸盐 铁酸盐 地杆菌 磷酸盐 环境化学 化学 亚砷酸盐 吸附 针铁矿 稳定同位素探测 无机化学 生物 生物化学 细菌 微生物 有机化学 生物膜 遗传学
作者
Long‐Jun Ding,Xiaomin Li,Yifei Wang,Chong-Yi Luo,Xuedong Wang,Guilan Duan,Yong‐Guan Zhu
出处
期刊:Soil Biology & Biochemistry [Elsevier BV]
卷期号:169: 108679-108679 被引量:10
标识
DOI:10.1016/j.soilbio.2022.108679
摘要

Iron (oxyhydr)oxides [Fe(III)] are important adsorbents of arsenate [As(V)] and phosphate in paddy soils, and microbial Fe(III) reduction is hence central to biogeochemical cycles of arsenic and phosphorus. Nevertheless, how Fe(III) reducers and As(V) reducers at the community level respond to As(V) and phosphate adsorption in paddy soils remain unclear. Here, we explored the influences of arsenate and/or phosphate adsorption to ferrihydrite on active acetate-dependent Fe(III)-reducing and As(V)-reducing microbial communities in a paddy soil, using 13 C-acetate-based rRNA-stable isotope probing (SIP). During anaerobic SIP incubations, the arsenate and/or phosphate adsorption to ferrihydrite retarded Fe(III) reduction to various extents, with arsenate alone or combined with phosphate having greater inhibitory effects than phosphate alone. 16S rRNA-based sequencing results revealed that the adsorption of arsenate alone or combined with phosphate markedly enriched several Fe(III) reducers that have also been found to enable arsenate reduction, especially Geobacter genus. This was coincided with the pronounced increment in transcript abundance of arsenate-respiring gene ( arrA ) induced by the presence of arsenate and further confirmed by cloning and sequencing result which indicated that Geobacter spp. harboring arrA gene were the major As(V) reducers herein. In contrast, the presence of arsenate led to a remarkable decline in other Fe(III) reducers, including Dechloromonas and Thermincola genera, which have rarely been reported to be related to arsenate transformation. Furthermore, all these identified Fe(III) reducers declined significantly by phosphate adsorption alone. Additionally, the adsorption of phosphate to ferrihydrite not only boosted the reduction of adsorbed As(V), but also enriched the respiratory As(V)-reducing microbes containing arrA gene. These findings demonstrate that the adsorption of arsenate and/or phosphate inhibits Fe(III) reduction while promotes As(V) reduction, and shifts the Fe(III)-reducing and As(V)-reducing microbial communities in paddy soils. Overall this study provides novel insights into intricate biogeochemical coupling between iron, arsenic and phosphorus in paddy soils. • Arsenate and/or phosphate adsorbed on iron inhibited iron reduction in a paddy soil. • Adsorption of As(V) and/or phosphate shifted soil iron-reducing bacterial community. • Phosphate adsorption promoted As(V) reduction and favored growth of As(V) reducers.
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