Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Methylmercury formation in biofilms of Geobacter sulfurreducens

View through CrossRef
IntroductionMercury (Hg) is a major environmental pollutant that accumulates in biota predominantly in the form of methylmercury (MeHg). Surface-associated microbial communities (biofilms) represent an important source of MeHg in natural aquatic systems. In this work, we report MeHg formation in biofilms of the iron-reducing bacterium Geobacter sulfurreducens.MethodsBiofilms were prepared in media with varied nutrient load for 3, 5, or 7 days, and their structural properties were characterized using confocal laser scanning microscopy, cryo-scanning electron microscopy and Fourier-transform infrared spectroscopy.ResultsBiofilms cultivated for 3 days with vitamins in the medium had the highest surface coverage, and they also contained abundant extracellular matrix. Using 3 and 7-days-old biofilms, we demonstrate that G. sulfurreducens biofilms prepared in media with various nutrient load produce MeHg, of which a significant portion is released to the surrounding medium. The Hg methylation rate constant determined in 6-h assays in a low-nutrient assay medium with 3-days-old biofilms was 3.9 ± 2.0 ∙ 10−14  L ∙ cell−1 ∙ h−1, which is three to five times lower than the rates found in assays with planktonic cultures of G. sulfurreducens in this and previous studies. The fraction of MeHg of total Hg within the biofilms was, however, remarkably high (close to 50%), and medium/biofilm partitioning of inorganic Hg (Hg(II)) indicated low accumulation of Hg(II) in biofilms.DiscussionThese findings suggest a high Hg(II) methylation capacity of G. sulfurreducens biofilms and that Hg(II) transfer to the biofilm is the rate-limiting step for MeHg formation in this systems.
Title: Methylmercury formation in biofilms of Geobacter sulfurreducens
Description:
IntroductionMercury (Hg) is a major environmental pollutant that accumulates in biota predominantly in the form of methylmercury (MeHg).
Surface-associated microbial communities (biofilms) represent an important source of MeHg in natural aquatic systems.
In this work, we report MeHg formation in biofilms of the iron-reducing bacterium Geobacter sulfurreducens.
MethodsBiofilms were prepared in media with varied nutrient load for 3, 5, or 7 days, and their structural properties were characterized using confocal laser scanning microscopy, cryo-scanning electron microscopy and Fourier-transform infrared spectroscopy.
ResultsBiofilms cultivated for 3 days with vitamins in the medium had the highest surface coverage, and they also contained abundant extracellular matrix.
Using 3 and 7-days-old biofilms, we demonstrate that G.
sulfurreducens biofilms prepared in media with various nutrient load produce MeHg, of which a significant portion is released to the surrounding medium.
The Hg methylation rate constant determined in 6-h assays in a low-nutrient assay medium with 3-days-old biofilms was 3.
9 ± 2.
0 ∙ 10−14  L ∙ cell−1 ∙ h−1, which is three to five times lower than the rates found in assays with planktonic cultures of G.
sulfurreducens in this and previous studies.
The fraction of MeHg of total Hg within the biofilms was, however, remarkably high (close to 50%), and medium/biofilm partitioning of inorganic Hg (Hg(II)) indicated low accumulation of Hg(II) in biofilms.
DiscussionThese findings suggest a high Hg(II) methylation capacity of G.
sulfurreducens biofilms and that Hg(II) transfer to the biofilm is the rate-limiting step for MeHg formation in this systems.

Related Results

The electrically conductive pili of Geobacter soli
The electrically conductive pili of Geobacter soli
Abstract Electrically conductive pili (e-pili) enable electron transport over multiple cell lengths to extracellular environments and play an imp...
The Mechanism of Methylmercury Permeation Through the Blood-Brain Barrier using <i>Caenorhabditis Elegans</i>
The Mechanism of Methylmercury Permeation Through the Blood-Brain Barrier using <i>Caenorhabditis Elegans</i>
Methylmercury is a neurotoxin present in fish tissues that permeates the blood-brain barrier after consumption. Previous research has shown that methylmercury is harmful to neurons...
The Mechanism of Methylmercury Permeation Through the Blood-Brain Barrier using <i>Caenorhabditis elegans</i>
The Mechanism of Methylmercury Permeation Through the Blood-Brain Barrier using <i>Caenorhabditis elegans</i>
Methylmercury is a neurotoxin present in fish tissues that permeates the blood-brain barrier after consumption. Previous research has shown that methylmercury is harmful to neurons...
Hydrogen Production by Geobacter Species and a Mixed Consortium in a Microbial Electrolysis Cell
Hydrogen Production by Geobacter Species and a Mixed Consortium in a Microbial Electrolysis Cell
ABSTRACT A hydrogen utilizing exoelectrogenic bacterium ( Geobacter sulfurreducens ) was compared to both a nonhydrogen oxidizer ( ...
Geobacter protein nanowires
Geobacter protein nanowires
The study of electrically conductive protein nanowires in Geobacter sulfurreducens has led to new concepts for long-range electron extracellular...
Propionate oxidation by Geobacter sulfurreducens is electron acceptor dependent
Propionate oxidation by Geobacter sulfurreducens is electron acceptor dependent
ABSTRACT The accumulation of propionate is a challenge in numerous fermentative industrial processes because its degradation is energetically unf...
Liens entre le parasite d'amphibiens Batrachochytrium dendrobatidis et les biofilms benthiques de lacs de montagne pyrénéens
Liens entre le parasite d'amphibiens Batrachochytrium dendrobatidis et les biofilms benthiques de lacs de montagne pyrénéens
Les écosystèmes d’eau douce de montagne fournissent des services essentiels à l’humanité, comme la provision d’eau claire, mais sont fortement affectés par les changements globaux ...

Back to Top