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Microbial anaerobic Fe(II) oxidation – Ecology, mechanisms and environmental implications

Casey Bryce; Nia Blackwell; Caroline Schmidt; Julia Otte; Yu‐Ming Huang; Sara Kleindienst; Elizabeth Tomaszewski; Manuel Schad; Viola Warter; Chao Peng; James M. Byrne; Andreas Kappler
Environmental Microbiology · Vol. 20, Issue 10 · pp. 3462-3483 · 2018

Abstract

Summary Iron is the most abundant redox‐active metal in the Earth's crust. The one electron transfer between the two most common redox states, Fe(II) and Fe(III), plays a role in a huge range of environmental processes from mineral formation and dissolution to contaminant remediation and global biogeochemical cycling. It has been appreciated for more than a century that microorganisms can harness the energy of this Fe redox transformation for their metabolic benefit. However, this is most widely understood for anaerobic Fe(III)‐reducing or aerobic and microaerophilic Fe(II)‐oxidizing bacteria. Only in the past few decades have we come to appreciate that bacteria also play a role in the anaerobic oxidation of ferrous iron, Fe(II), and thus can act to form Fe(III) minerals in anoxic settings. Since this discovery, our understanding of the ecology of these organisms, their mechanisms of Fe(II) oxidation and their role in environmental processes has been increasing rapidly. In this article, we bring these new discoveries together to review the current knowledge on these environmentally important bacteria, and reveal knowledge gaps for future research.

Bibliographic Information

JournalEnvironmental Microbiology
PublisherWiley
Publication Date2018-10-01
Publication Year2018
Volume20
Issue10
Pages3462-3483
Document TypeJournal Article
Print ISSN1462-2912
eISSN1462-2920
DOI10.1111/1462-2920.14328
SubjectMicrobial Ecology

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NARA Access Coverage1999-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/14622920
Publisher PageOpen Publisher Page
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