Profiling In Situ Microbial Community Structure with an Amplification Microarray

Author:

Chandler Darrell P.1,Knickerbocker Christopher1,Bryant Lexi1,Golova Julia1,Wiles Cory1,Williams Kenneth H.2,Peacock Aaron D.3,Long Philip E.2

Affiliation:

1. Akonni Biosystems, Inc., Frederick, Maryland, USA

2. Earth Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California, USA

3. Haley & Aldrich, Oak Ridge, Tennessee, USA

Abstract

ABSTRACT The objectives of this study were to unify amplification, labeling, and microarray hybridization chemistries within a single, closed microfluidic chamber (an amplification microarray) and verify technology performance on a series of groundwater samples from an in situ field experiment designed to compare U(VI) mobility under conditions of various alkalinities (as HCO 3 ) during stimulated microbial activity accompanying acetate amendment. Analytical limits of detection were between 2 and 200 cell equivalents of purified DNA. Amplification microarray signatures were well correlated with 16S rRNA-targeted quantitative PCR results and hybridization microarray signatures. The succession of the microbial community was evident with and consistent between the two microarray platforms. Amplification microarray analysis of acetate-treated groundwater showed elevated levels of iron-reducing bacteria ( Flexibacter , Geobacter , Rhodoferax , and Shewanella ) relative to the average background profile, as expected. Identical molecular signatures were evident in the transect treated with acetate plus NaHCO 3 , but at much lower signal intensities and with a much more rapid decline (to nondetection). Azoarcus , Thaurea , and Methylobacterium were responsive in the acetate-only transect but not in the presence of bicarbonate. Observed differences in microbial community composition or response to bicarbonate amendment likely had an effect on measured rates of U reduction, with higher rates probable in the part of the field experiment that was amended with bicarbonate. The simplification in microarray-based work flow is a significant technological advance toward entirely closed-amplicon microarray-based tests and is generally extensible to any number of environmental monitoring applications.

Publisher

American Society for Microbiology

Subject

Ecology,Applied Microbiology and Biotechnology,Food Science,Biotechnology

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