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bioRxiv · 10.64898/2026.07.30.741922

Colistin resistance-mediated lipopolysaccharide modification in Klebsiella pneumoniae modulates host inflammatory response

Abstract

Resistance to the polymyxin antimicrobial colistin in Gram-negative bacteria is associated with a modification of the immunogenic lipid A moiety of the lipopolysaccharide (LPS). Chromosomal and plasmid-borne colistin resistance results in the addition of L-Ara4N and pEtN groups to lipopolysaccharide (LPS), respectively. Here, using THP-1 cells, we studied the impact of different LPS modifications of Klebsiella pneumoniae in stimulating host immune response. K. pneumoniae clinical isolates were screened for colistin resistance using broth microdilution (BMD) and the MALDIxin test. LPS was extracted from colistin-resistant isolates and used to stimulate differentiated THP-1 cells. Luminex cytokine assay measured the immune induction via a panel of proinflammatory cytokines. Out of a collection of 72 clinical K. pneumoniae, eight (11.1%) exhibited phenotypic colistin resistance with a minimum inhibitory concentration (MIC) of 8 to 64 mg/L. In total, five isolates possessed genes associated with polymyxin resistance; three isolates had a mutation in the pmrB gene, and two were mcr-8.1 positive. MALDIxin demonstrated that all eight phenotypic colistin-resistant isolates elaborated peaks at m/z 1,955 and m/z 2,193, indicating an L-Ara4N group of LPS modification. For two mcr-8.1 positive isolates, LPS had a pEtN group. The LPS modification positively correlated with colistin MIC (correlation coefficient, r= 0.6 and R2= 0.4). Compared to the native structure, LPS modification was associated with greater production of IL-1{beta}, IL-6, and CXCL-8 (p<0.001). The pEtN-conjugated LPS triggered a significantly greater production of TNF-, IL-6, and CXCL-8 compared to L-Ara4N (p<0.05). This study reveals that the colistin MIC value can significantly predict lipid A modification in clinical K. pneumoniae, and differences in resistance-mediated lipid A modification result in variation in the immunological response. This study highlights the potential of dynamic host-pathogen interaction in the context of colistin resistance.

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Dutta, A., Gallagher, P., Sutherland, K. M. J., Halder, B., To Nguyen Thi, N., Keane, J. A., Larrouy-Maumus, G., Baker, S.. 2026-07-31. Colistin resistance-mediated lipopolysaccharide modification in Klebsiella pneumoniae modulates host inflammatory response. https://doi.org/10.64898/2026.07.30.741922

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