Back to Search Start Over

Mitigation of galvanized steel biocorrosion by Pseudomonas aeruginosa biofilm using a biocide enhanced by trehalase.

Authors :
Xu, Lingjun
Ivanova, Svetlana A.
Gu, Tingyue
Source :
Bioelectrochemistry. Dec2023, Vol. 154, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

• Nitrate reducing Pseudomonas aeruginosa corrodes galvanized steel significantly. • The corrosion mechanism is film damage-microbiologically influenced corrosion. • 30 ppm (w/w) trehalase reduces sessile cell count by 0.8-log and weight loss by 14%. • Trehalase enhances 30 ppm THPS with fewer sessile cells and lower weight loss. • This work uses a mini-electrochemical glass cell to minimize chemical consumption. Pseudomonas aeruginosa is a facultative bacterium that is pathogenic. It is ubiquitous in the environment including air handling systems. It causes microbiologically influenced corrosion (MIC) aerobically and anaerobically. In this work, P. aeruginosa was grown as a nitrate reducing bacterium (NRB) in Luria-Bertani medium with KNO 3 at 37 °C. Trehalase, an enzyme which plays a crucial role in biofilm formation was found to enhance the treatment of P. aeruginosa biofilm and its MIC against galvanized steel by tetrakis-hydroxymethyl phosphonium sulfate (THPS) green biocide. After a 7-d incubation, 30 ppm (w/w) trehalase reduced sessile cell count by 0.8-log, and it also reduced galvanized steel weight loss by 14%, compared to 2.3-log and 39%, respectively for the 30 ppm THPS treatment. The combination of 30 ppm THPS + 30 ppm trehalase reduced sessile cell count further by 0.1-log and weight loss by 13% compared to using THPS alone. Electrochemical corrosion measurements supported weight loss results. The injection of 20 ppm riboflavin into a 3-d P. aeruginosa broth failed to accelerate the corrosion rate, suggesting that nitrate reducing P. aeruginosa MIC of galvanized steel did not belong to extracellular electron transfer-MIC, because Zn was hydrolyzed after the microbe damaged the passive film. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
15675394
Volume :
154
Database :
Academic Search Index
Journal :
Bioelectrochemistry
Publication Type :
Academic Journal
Accession number :
171901796
Full Text :
https://doi.org/10.1016/j.bioelechem.2023.108508