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Research Article

Extracellular Electron Transfer Powers Enterococcus faecalis Biofilm Metabolism

Damien Keogh, Ling Ning Lam, Lucinda E. Doyle, Artur Matysik, Shruti Pavagadhi, Shivshankar Umashankar, Pui Man Low, Jennifer L. Dale, Yiyang Song, Sean Pin Ng, Chris B. Boothroyd, Gary M. Dunny, Sanjay Swarup, Rohan B. H. Williams, Enrico Marsili, Kimberly A. Kline
Lynn E. Hancock, Invited Editor, Scott J. Hultgren, Editor
Damien Keogh
aSingapore Centre for Environmental Life Science Engineering, Nanyang Technological University, Singapore
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Ling Ning Lam
aSingapore Centre for Environmental Life Science Engineering, Nanyang Technological University, Singapore
bSchool of Biological Sciences, Nanyang Technological University, Singapore
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Lucinda E. Doyle
aSingapore Centre for Environmental Life Science Engineering, Nanyang Technological University, Singapore
cInterdisciplinary Graduate School, Nanyang Technological University, Singapore
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Artur Matysik
aSingapore Centre for Environmental Life Science Engineering, Nanyang Technological University, Singapore
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Shruti Pavagadhi
dSingapore Centre for Environmental Life Science Engineering, National University of Singapore, Singapore
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Shivshankar Umashankar
dSingapore Centre for Environmental Life Science Engineering, National University of Singapore, Singapore
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Pui Man Low
aSingapore Centre for Environmental Life Science Engineering, Nanyang Technological University, Singapore
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Jennifer L. Dale
eDepartment of Microbiology, University of Minnesota Medical School, Minneapolis, Minnesota, USA
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Yiyang Song
fSingapore Phenome Center, Lee Kong Chian School of Medicine, Nanyang Technological University, Singapore
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Sean Pin Ng
fSingapore Phenome Center, Lee Kong Chian School of Medicine, Nanyang Technological University, Singapore
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Chris B. Boothroyd
gSchool of Materials Science and Engineering, Nanyang Technological University, Singapore
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Gary M. Dunny
eDepartment of Microbiology, University of Minnesota Medical School, Minneapolis, Minnesota, USA
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Sanjay Swarup
dSingapore Centre for Environmental Life Science Engineering, National University of Singapore, Singapore
hDepartment of Biological Sciences, National University of Singapore, Singapore
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Rohan B. H. Williams
dSingapore Centre for Environmental Life Science Engineering, National University of Singapore, Singapore
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Enrico Marsili
aSingapore Centre for Environmental Life Science Engineering, Nanyang Technological University, Singapore
iSchool of Chemical and Biomedical Engineering, Nanyang Technological University, Singapore
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Kimberly A. Kline
aSingapore Centre for Environmental Life Science Engineering, Nanyang Technological University, Singapore
bSchool of Biological Sciences, Nanyang Technological University, Singapore
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Lynn E. Hancock
University of Kansas
Roles: Invited Editor
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Scott J. Hultgren
Washington University School of Medicine
Roles: Editor
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DOI: 10.1128/mBio.00626-17
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This article has a correction. Please see:

  • Correction for Keogh et al., “Extracellular Electron Transfer Powers Enterococcus faecalis Biofilm Metabolism”
    - June 18, 2019

ABSTRACT

Enterococci are important human commensals and significant opportunistic pathogens. Biofilm-related enterococcal infections, such as endocarditis, urinary tract infections, wound and surgical site infections, and medical device-associated infections, often become chronic upon the formation of biofilm. The biofilm matrix establishes properties that distinguish this state from free-living bacterial cells and increase tolerance to antimicrobial interventions. The metabolic versatility of the enterococci is reflected in the diversity and complexity of environments and communities in which they thrive. Understanding metabolic factors governing colonization and persistence in different host niches can reveal factors influencing the transition to biofilm pathogenicity. Here, we report a form of iron-dependent metabolism for Enterococcus faecalis where, in the absence of heme, extracellular electron transfer (EET) and increased ATP production augment biofilm growth. We observe alterations in biofilm matrix depth and composition during iron-augmented biofilm growth. We show that the ldh gene encoding l-lactate dehydrogenase is required for iron-augmented energy production and biofilm formation and promotes EET.

IMPORTANCE Bacterial metabolic versatility can often influence the outcome of host-pathogen interactions, yet causes of metabolic shifts are difficult to resolve. The bacterial biofilm matrix provides the structural and functional support that distinguishes this state from free-living bacterial cells. Here, we show that the biofilm matrix can immobilize iron, providing access to this growth-promoting resource which is otherwise inaccessible in the planktonic state. Our data show that in the absence of heme, Enterococcus faecalis l-lactate dehydrogenase promotes EET and uses matrix-associated iron to carry out EET. Therefore, the presence of iron within the biofilm matrix leads to enhanced biofilm growth.

  • Copyright © 2018 Keogh et al.

This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license.

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Extracellular Electron Transfer Powers Enterococcus faecalis Biofilm Metabolism
Damien Keogh, Ling Ning Lam, Lucinda E. Doyle, Artur Matysik, Shruti Pavagadhi, Shivshankar Umashankar, Pui Man Low, Jennifer L. Dale, Yiyang Song, Sean Pin Ng, Chris B. Boothroyd, Gary M. Dunny, Sanjay Swarup, Rohan B. H. Williams, Enrico Marsili, Kimberly A. Kline
mBio Apr 2018, 9 (2) e00626-17; DOI: 10.1128/mBio.00626-17

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Extracellular Electron Transfer Powers Enterococcus faecalis Biofilm Metabolism
Damien Keogh, Ling Ning Lam, Lucinda E. Doyle, Artur Matysik, Shruti Pavagadhi, Shivshankar Umashankar, Pui Man Low, Jennifer L. Dale, Yiyang Song, Sean Pin Ng, Chris B. Boothroyd, Gary M. Dunny, Sanjay Swarup, Rohan B. H. Williams, Enrico Marsili, Kimberly A. Kline
mBio Apr 2018, 9 (2) e00626-17; DOI: 10.1128/mBio.00626-17
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KEYWORDS

Enterococcus faecalis
biofilm
extracellular electron transfer
iron
metabolism

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