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Cyclic di-GMP directly reprograms the multidrug resistance machinery via UspG-mediated sequestration of RamR in Klebsiella.

Created on 25 Aug 2026

Authors

Xiaoxiao Liu, Mingfang Wang, Yikai Fu, Xiangjie Zhu, Miao Du, Yao Wen, Yiwen Liao, Yunhu Zhao, Yinyue Deng, Bing Gu

Published in

PLoS pathogens. Volume 22. Issue 8. Pages e1014537. Aug 24, 2026. Epub Aug 24, 2026.

Abstract

The integration of environmental cues to counter selective pressures is crucial for the epidemiological success of major human pathogens. Klebsiella pneumoniae poses an increasing critical public health threat due to its high biofilm forming capacity and adaptive antimicrobial resistance. While the second messenger cyclic di-GMP (c-di-GMP) is a key regulator of bacterial cellular physiological adaptations, its downstream effectors that control antibiotic resistance remain unknown in K. pneumoniae. Unlike c-di-GMP metabolizing enzymes, which contain highly conserved GGDEF or EAL domains, effectors enable signal transduction through structurally heterogeneous sensing domains that defy homology-based prediction. Here, we identified the universal stress protein UspG (AVR78_17055) as a cryptic, direct c-di-GMP effector in extended-spectrum beta-lactamase (ESBL)-producing strain K. quasipneumoniae ATCC 700603. Utilizing site-directed mutagenesis and EMSA, we demonstrate that UspG senses elevated intracellular c-di-GMP levels, thereby promoting biofilm formation, via N39 and K116 residues. Mechanistically, c-di-GMP binding enhances the binding affinity of UspG to the transcriptional repressor RamR. This specific protein sequestration antagonizes RamR, a transcriptional repressor that regulates RamA expression, thereby derepressing the ramA locus and unleashing a regulatory program that fortifies lipid A biosynthesis, upregulates multidrug efflux pumps expression, and promotes biofilm development. Importantly, this c-di-GMP-UspG axis is not restricted to ESBL-producing lineages. Through mutagenesis verification, we discovered similar phenotypic dependency in hypervirulent K. pneumoniae ATCC 43816. These findings indicate that UspG is functionally conserved across Enterobacteriaceae. By elucidating how Klebsiella exploits UspG to bridge intracellular nucleotide signaling with acute environmental adaptation, our study provides a new therapeutic target for recalcitrant Klebsiella infections.

PMID:
42636267
Bibliographic data and abstract were imported from PubMed on 25 Aug 2026.

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