Living commensal biofilms for corrosion prevention

Corrosion imposes a $2.5 trillion annual global cost, with much attributed to microbiologically influenced corrosion (MIC) associated with sulfate-reducing bacteria (SRB). Existing mitigation strategies that rely on biocides or polymeric coatings are costly and ecologically disruptive. Here, we present a four-part framework integrating microbiome engineering, biological passivation, commensal antagonism, and sustainability. We define microbioclaim as a biologically mediated ecological dominance mechanism through which a commensal biofilm establishes protective control over the surface. Using copper (Cu) as a model metal, we show that Citrobacter sp. strain MICI21 forms a commensal biofilm that reduces SRB-induced corrosion in co-culture with Oleidesulfovibrio alaskensis strain G20. MICI21 conferred 3- to 15-fold higher resistance, and multimodal characterization confirmed formation of a compact MICI21-dominated biofilm that resisted sulfide ingress, limited pitting, and exhibited high rigidity (~0.8 GPa). Analyses indicate contributions from Cu–EPS interactions, competitive exclusion of SRB, and a putative Type VI secretion system (T6SS) associated with antagonistic potential in publicly available Citrobacter genomes. Complementary assays using isolated Citrobacter -derived extracellular polymeric substances (EPS), applied to bare copper surfaces in the absence of living cells, showed that EPS alone can contribute to surface passivation in 3.5% NaCl. Together, this work positions microbiome engineering as a design principle for living coatings.

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Publication Details

Journal
npj Biofilms and Microbiomes
Published
2026-09-01
DOI
https://doi.org/10.1038/s41522-026-01128-y
Primary Topic
Corrosion Behavior and Inhibition
Type
article
Field-Weighted Citation Impact
0.00

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article

Living commensal biofilms for corrosion prevention

Bharat K. Jasthi, Venkata A.S. Kandadai, Manoj Tripathi, V. Gadhamshetty et al.
npj Biofilms and Microbiomes
Corrosion Behavior and Inhibition
article

Living commensal biofilms for corrosion prevention

Bharat K. Jasthi, Venkata A.S. Kandadai, Manoj Tripathi, V. Gadhamshetty, Pawan Sigdel, Ajayan Pulickel, Etienne Gnimpieba Z., Glenn R. Johnson, Tingyue Gu, Jawaharraj Kalimuthu
article en

Abstract

Corrosion imposes a $2.5 trillion annual global cost, with much attributed to microbiologically influenced corrosion (MIC) associated with sulfate-reducing bacteria (SRB). Existing mitigation strategies that rely on biocides or polymeric coatings are costly and ecologically disruptive. Here, we present a four-part framework integrating microbiome engineering, biological passivation, commensal antagonism, and sustainability. We define microbioclaim as a biologically mediated ecological dominance mechanism through which a commensal biofilm establishes protective control over the surface. Using copper (Cu) as a model metal, we show that Citrobacter sp. strain MICI21 forms a commensal biofilm that reduces SRB-induced corrosion in co-culture with Oleidesulfovibrio alaskensis strain G20. MICI21 conferred 3- to 15-fold higher resistance, and multimodal characterization confirmed formation of a compact MICI21-dominated biofilm that resisted sulfide ingress, limited pitting, and exhibited high rigidity (~0.8 GPa). Analyses indicate contributions from Cu–EPS interactions, competitive exclusion of SRB, and a putative Type VI secretion system (T6SS) associated with antagonistic potential in publicly available Citrobacter genomes. Complementary assays using isolated Citrobacter -derived extracellular polymeric substances (EPS), applied to bare copper surfaces in the absence of living cells, showed that EPS alone can contribute to surface passivation in 3.5% NaCl. Together, this work positions microbiome engineering as a design principle for living coatings.

npj Biofilms and Microbiomes
Battelle (US), South Dakota School of Mines and Technology (US), University of South Dakota (US), University of Sioux Falls (US), Ohio University (US), Rice University (US)
National Science Foundation, South Dakota School of Mines and Technology, National Institutes of Health
Life in Land
Openalex Percentile: Top 24%
Corrosion Behavior and Inhibition
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