B12A-06:
Mycogenic Mn(II) oxidation promotes remediation of acid mine drainage and other anthropogenically impacted environments

Monday, 15 December 2014: 11:45 AM
Cara M Santelli1, Dominique Chaput1, Colleen M Hansel2 and William D Burgos3, (1)National Museum of Natural History, Washington, DC, United States, (2)Woods Hole Oceanographic Institution, Woods Hole, MA, United States, (3)Pennsylvania State Univ, University Park, PA, United States
Abstract:
Manganese is a pollutant in worldwide environments contaminated with metals and organics, such as acid mine drainage (AMD), freshwater ponds, and agricultural waste storage sites. Microorganisms contribute to the removal of dissolved Mn compounds in the environment by promoting Mn(II) oxidation reactions. The oxidation of Mn(II) results in the precipitation of sparingly soluble Mn(IV) oxide minerals, effectively removing the metal from the aqueous milieu (e.g., groundwater or wastewater streams). In recent years, our research has identified a diversity of Mn(II)-oxidizing fungi inhabiting these polluted environments, however their overall contribution to the remediation process in situ remains poorly understood. Here we present results of culture-based and Next Generation Sequencing (NGS) studies in AMD treatment systems actively remediating Mn and other metals where we profile the bacterial, fungal, algal and archaeal communities to determine the overall community diversity and to establish the relative abundance of known Mn(II) oxidizers.

A variety of treatment systems with varying Mn-removal efficiencies were sampled to understand the relationship between remediation efficiency and microbial community composition and activity. Targeted-amplicon sequencing of DNA and RNA of the 16S rRNA genes (bacteria and archaea), 23S rRNA genes (algae) and ITS region (fungi) was performed using both 454 pyrosequencing and Illumina platforms. Results showed that only the fungal taxonomic profiles significantly differed between sites that removed the majority of influent Mn and those that did not. Specifically, Ascomycota (which include known Mn(II) oxidizers isolated from these treatment systems) dominated greater efficiency systems whereas less efficient systems were dominated by Basidiomycota. Furthermore, known Mn(II) oxidizers accounted for only a minor proportion of bacterial sequences but a far greater proportion of fungal sequences. These culture-independent studies lend further evidence to numerous culture-based studies (of AMD remediation systems here, as well as a variety of other metal-rich systems) that establish Mn(II)-oxidizing fungi as important contributors to the remediation of Mn, and likely other metals, in metal polluted environments.