Effect of Environmental pH on Mineralization of Anaerobic Iron-Oxidizing Bacteria

Author:

Jiang Na,Feng Yiqing,Huang Qiang,Liu Xiaoling,Guo Yuan,Yang Zhen,Peng Chao,Li Shun,Hao Likai

Abstract

Freshwater lakes are often polluted with various heavy metals in the Anthropocene. The iron-oxidizing microorganisms and their mineralized products can coprecipitate with many heavy metals, including Al, Zn, Cu, Cd, and Cr. As such, microbial iron oxidation can exert a profound impact on environmental remediation. The environmental pH is a key determinant regulating microbial growth and mineralization and then influences the structure of the final mineralized products of anaerobic iron-oxidizing bacteria. Freshwater lakes, in general, are neutral-pH environments. Understanding the effects of varying pH on the mineralization of iron-oxidizing bacteria under neutrophilic conditions could aid in finding out the optimal pH values that promote the coprecipitation of heavy metals. Here, two typical neutrophilic Fe(II)-oxidizing bacteria, the nitrate-reducing Acidovorax sp. strain BoFeN1 and the anoxygenic phototrophic Rhodobacter ferrooxidans strain SW2, were selected for studying how their growth and mineralization response to slight changes in circumneutral pH. By employing focused ion beam/scanning electron microscopy (FIB–SEM) and transmission electron microscopy (TEM), we examined the interplay between pH changes and anaerobic iron-oxidizing bacteria and observed that pH can significantly impact the microbial mineralization process and vice versa. Further, pH-dependent changes in the structure of mineralized products of bacterial iron oxidation were observed. Our study could provide mechanical insights into how to manipulate microbial iron oxidation for facilitating remediation of heavy metals in the environment.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

State Key Laboratory of Environmental Geochemistry

Publisher

Frontiers Media SA

Subject

Microbiology (medical),Microbiology

Reference50 articles.

1. Role of biogenic Fe(III) minerals as a sink and carrier of heavy metals in the Rio Tinto, Spain;Abramov,2020

2. Bioremoval of heavy metals by bacterial biomass;Aryal,2014

3. Iron and manganese removal from groundwater using limestone filter with iron-oxidized bacteria;Aziz;Int. J. Environ. Sci. Technol,2020

4. Microbial anaerobic Fe(II) oxidation – Ecology, mechanisms and environmental implications;Bryce;Environ. Microbiol,2018

5. The fox operon from Rhodobacter strain SW2 promotes phototrophic fe(II) oxidation in Rhodobacter capsulatus SB1003;Croal;J. Bacteriol,2007

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