In-situ microbial colonization and its potential contribution on biofilm formation in subsurface sediments
Author(s) -
Ji-Hoon Lee,
BongJoo Lee,
Uk Yun,
DongChan Koh,
Soo Jin Kim,
Dukki Han,
Tatsuya Unno
Publication year - 2019
Publication title -
journal of applied biological chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.229
H-Index - 18
eISSN - 2234-7941
pISSN - 1976-0442
DOI - 10.3839/jabc.2019.008
Subject(s) - biofilm , microorganism , chemistry , microbial population biology , extracellular polymeric substance , environmental chemistry , geobacter , groundwater , bacteria , geology , paleontology , geotechnical engineering
Biofilms facilitate communication among microorganisms for nutrients and protect them from predators and harmful chemicals such as antibiotics and detergents. Biofilms can also act as cores for the development of clogs in many agricultural irrigation systems and in porous media. In this study, we deployed glass units at a depth of 20 m below the ground surface in the groundwater-surface water mixing zone, and retrieved them after 4 months to investigate the potential colonization of indigenous microbial community and possible mineral-microbe assemblages. We observed the periodic formation of microbial colonies by fluorescence dye staining and microscopy, and analyzed the composition of the microbial community in both the mineralmicrobe aggregates and groundwater, by next generation sequencing of the 16S rRNA gene amplicons using MiSeq platform. During the course of incubation, we observed an increase in both the mineral-microbe aggregates and content of extracellular polymeric substances. Interestingly, the microbial community from the aggregates featured a high abundance of iron redox-related microorganisms such as Geobacter sp., Comamonadaceae sp., and Burkholderiales incertae sedis. Therefore, these microorganisms can potentially produce iron-minerals within the sediment-microbeassociated aggregates, and induce biofilm formation within the groundwater borehole and porous media.
Accelerating Research
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom
Address
John Eccles HouseRobert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom