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  4. Metallibacterium scheffleri: Genomic data reveal a versatile metabolism
 
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Metallibacterium scheffleri: Genomic data reveal a versatile metabolism

Publikationstyp
Journal Article
Date Issued
2017-01-30
Sprache
English
Author(s)
Bartsch, Sibylle  
Gensch, André  
Stephan, Simon  
Dötsch, Andreas  
Gescher, Johannes  
TORE-URI
http://hdl.handle.net/11420/13558
Journal
FEMS microbiology ecology  
Volume
93
Issue
3
Article Number
fix011
Citation
FEMS Microbiology Ecology 93 (3): fix011 (2017-03-01)
Publisher DOI
10.1093/femsec/fix011
Scopus ID
2-s2.0-85027977178
PubMed ID
28137766
Publisher
Wiley-Blackwell
This study describes the physiological properties of the widespread and recently described acid-tolerant microorganism Metallibacterium scheffleri DKE6. Despite that casitone was reported to be the only growth substrate of the organism, using a combination of proteomic, genomic and transcriptomic approaches as well as microbiological assays, we could identify a rather versatile metabolism. The detected casein hydrolysis was corroborated by the detection of proteases in the supernatant of the organism as well as in transcriptome studies. Genomic analysis identified amino acid auxotrophies, which were revealed as the reason for the observed growth deficiency with other substrates in the absence of casein. It was verified that glucose could serve as a growth substrate in the presence of amino acids as building blocks, a finding that was supported by the detection of three glycolytic pathways. Additionally, genes for sulfur and hydrogen oxidation were found, and sulfate formation could be shown during growth with tetrathionate. Metallibacterium scheffleri is able to raise the pH in acidic environments via ammonium production. Overall, the distribution of related Metallibacterium species demonstrates an adaption of this genus to diverse environments with varying pH values. Growth in biofilms or sediments also seems to be a common trait. We hypothesize that this biofilm growth supports the ability of Metallibacterium species to adapt to different pH values via formation of pH microniches.
Subjects
acid mine drainage
ammonium
auxotrophy
genome
Metallibacterium
DDC Class
570: Biowissenschaften, Biologie
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