Automated Microscopic Analysis of Metal Sulfide Colonization by Acidophilic Microorganisms
Author(s) -
Sören Bellenberg,
Antoine BuettiDinh,
Vanni Galli,
Olga Ilie,
Malte Herold,
Stephan Christel,
Mariia Boretska,
Igor V. Pivkin,
Paul Wilmes,
Wolfgang Sand,
Mario Vera,
Mark Dopson
Publication year - 2018
Publication title -
applied and environmental microbiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.552
H-Index - 324
eISSN - 1070-6291
pISSN - 0099-2240
DOI - 10.1128/aem.01835-18
Subject(s) - colonization , sulfide , biofilm , bioleaching , dissolution , microorganism , axenic , metal , sulfide minerals , chemistry , bacteria , microbiology and biotechnology , environmental chemistry , biology , genetics , organic chemistry , copper
The presented method for the assessment of mineral colonization allows accurate relative comparisons of the microbial colonization of metal sulfide concentrate particles in a time-resolved manner. Quantitative assessment of the mineral colonization development is important for the compilation of improved mathematical models for metal sulfide dissolution. In addition, deep-learning algorithms proved that axenic or mixed cultures of the three species exhibited characteristic biofilm patterns and predicted the biofilm species composition. The method may be extended to the assessment of microbial colonization on other solid particles and may serve in the optimization of bioleaching processes in laboratory scale experiments with industrially relevant metal sulfide concentrates. Furthermore, the method was used to demonstrate that DSF quorum sensing signals directly influence colonization and dissolution of metal sulfides by mineral-oxidizing bacteria, such asL. ferriphilum andS. thermosulfidooxidans .
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