Shear Stress Affects Biofilm Structure and Consequently Current Generation of Bioanode in Microbial Electrochemical Systems (MESs)

Shear stress is an important factor that affects the formation and structure of anode biofilms, which are strongly related to the extracellular electron transfer phenomena and bioelectric performance of bioanodes. Here, we show that using nitrogen sparging to induce shear stress during anode biofilm...

Full description

Bibliographic Details
Main Authors: Jiawei Yang, Shaoan Cheng, Chaochao Li, Yi Sun, Haobin Huang
Format: Article
Language:English
Published: Frontiers Media S.A. 2019-03-01
Series:Frontiers in Microbiology
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fmicb.2019.00398/full
id doaj-37b39ba78932479e9acfd1ead30fc315
record_format Article
spelling doaj-37b39ba78932479e9acfd1ead30fc3152020-11-24T23:31:33ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2019-03-011010.3389/fmicb.2019.00398428326Shear Stress Affects Biofilm Structure and Consequently Current Generation of Bioanode in Microbial Electrochemical Systems (MESs)Jiawei YangShaoan ChengChaochao LiYi SunHaobin HuangShear stress is an important factor that affects the formation and structure of anode biofilms, which are strongly related to the extracellular electron transfer phenomena and bioelectric performance of bioanodes. Here, we show that using nitrogen sparging to induce shear stress during anode biofilm formation increases the linear sweep voltammetry peak current density of the mature anode biofilm from 2.37 ± 0.15 to 4.05 ± 0.25 A/m2. Electrochemical impedance spectroscopy results revealed that the shear-stress-enriched anode biofilm had a low charge transfer resistance of 46.34 Ω compared to that of the unperturbed enriched anode biofilm (72.2 Ω). Confocal laser scanning microscopy observations showed that the shear-stress-enriched biofilms were entirely viable, whereas the unperturbed enriched anode biofilm consisted of a live outer layer covering a dead inner-core layer. Based on biomass and community analyses, the shear-stress-enriched biofilm had four times the biofilm density (136.0 vs. 27.50 μg DNA/cm3) and twice the relative abundance of Geobacteraceae (over 80 vs. 40%) in comparison with those of the unperturbed enriched anode biofilm. These results show that applying high shear stress during anode biofilm enrichment can result in an entirely viable and dense biofilm with a high relative abundance of exoelectrogens and, consequently, better performance.https://www.frontiersin.org/article/10.3389/fmicb.2019.00398/fullanode biofilmshear stressanode performanceviabilitymicrobial community
collection DOAJ
language English
format Article
sources DOAJ
author Jiawei Yang
Shaoan Cheng
Chaochao Li
Yi Sun
Haobin Huang
spellingShingle Jiawei Yang
Shaoan Cheng
Chaochao Li
Yi Sun
Haobin Huang
Shear Stress Affects Biofilm Structure and Consequently Current Generation of Bioanode in Microbial Electrochemical Systems (MESs)
Frontiers in Microbiology
anode biofilm
shear stress
anode performance
viability
microbial community
author_facet Jiawei Yang
Shaoan Cheng
Chaochao Li
Yi Sun
Haobin Huang
author_sort Jiawei Yang
title Shear Stress Affects Biofilm Structure and Consequently Current Generation of Bioanode in Microbial Electrochemical Systems (MESs)
title_short Shear Stress Affects Biofilm Structure and Consequently Current Generation of Bioanode in Microbial Electrochemical Systems (MESs)
title_full Shear Stress Affects Biofilm Structure and Consequently Current Generation of Bioanode in Microbial Electrochemical Systems (MESs)
title_fullStr Shear Stress Affects Biofilm Structure and Consequently Current Generation of Bioanode in Microbial Electrochemical Systems (MESs)
title_full_unstemmed Shear Stress Affects Biofilm Structure and Consequently Current Generation of Bioanode in Microbial Electrochemical Systems (MESs)
title_sort shear stress affects biofilm structure and consequently current generation of bioanode in microbial electrochemical systems (mess)
publisher Frontiers Media S.A.
series Frontiers in Microbiology
issn 1664-302X
publishDate 2019-03-01
description Shear stress is an important factor that affects the formation and structure of anode biofilms, which are strongly related to the extracellular electron transfer phenomena and bioelectric performance of bioanodes. Here, we show that using nitrogen sparging to induce shear stress during anode biofilm formation increases the linear sweep voltammetry peak current density of the mature anode biofilm from 2.37 ± 0.15 to 4.05 ± 0.25 A/m2. Electrochemical impedance spectroscopy results revealed that the shear-stress-enriched anode biofilm had a low charge transfer resistance of 46.34 Ω compared to that of the unperturbed enriched anode biofilm (72.2 Ω). Confocal laser scanning microscopy observations showed that the shear-stress-enriched biofilms were entirely viable, whereas the unperturbed enriched anode biofilm consisted of a live outer layer covering a dead inner-core layer. Based on biomass and community analyses, the shear-stress-enriched biofilm had four times the biofilm density (136.0 vs. 27.50 μg DNA/cm3) and twice the relative abundance of Geobacteraceae (over 80 vs. 40%) in comparison with those of the unperturbed enriched anode biofilm. These results show that applying high shear stress during anode biofilm enrichment can result in an entirely viable and dense biofilm with a high relative abundance of exoelectrogens and, consequently, better performance.
topic anode biofilm
shear stress
anode performance
viability
microbial community
url https://www.frontiersin.org/article/10.3389/fmicb.2019.00398/full
work_keys_str_mv AT jiaweiyang shearstressaffectsbiofilmstructureandconsequentlycurrentgenerationofbioanodeinmicrobialelectrochemicalsystemsmess
AT shaoancheng shearstressaffectsbiofilmstructureandconsequentlycurrentgenerationofbioanodeinmicrobialelectrochemicalsystemsmess
AT chaochaoli shearstressaffectsbiofilmstructureandconsequentlycurrentgenerationofbioanodeinmicrobialelectrochemicalsystemsmess
AT yisun shearstressaffectsbiofilmstructureandconsequentlycurrentgenerationofbioanodeinmicrobialelectrochemicalsystemsmess
AT haobinhuang shearstressaffectsbiofilmstructureandconsequentlycurrentgenerationofbioanodeinmicrobialelectrochemicalsystemsmess
_version_ 1725537473637908480