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March 5, 2026PLoS Biology0 citationsOpen Access

Magnesium depletion by Candida albicans unleashes two unusual modes of colistin resistance in Pseudomonas aeruginosa with different fitness costs

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YHYu-Ying HsiehIOIan P. O’KeefeZWZeqi Wang

Key Points

  • To investigate how magnesium depletion by Candida albicans affects colistin resistance in Pseudomonas aeruginosa.
  • Examined the effects of magnesium sequestration by Candida albicans on Pseudomonas aeruginosa.
  • Analyzed genetic changes related to lipid A biosynthesis and magnesium transport.
  • Evaluated the roles of the PhoPQ signaling system and specific gene mutations.
  • Magnesium depletion led to nearly a hundredfold increase in colistin resistance.
  • Identified two distinct mutational pathways affecting resistance, each with different fitness costs.
  • One pathway involved htrB2 mutations compromising membrane integrity, while the other did not.

Abstract

Increasing bacterial resistance to colistin, a vital last-resort antibiotic, is an urgent challenge. Previous studies have shown that Mg 2+ depletion enables Pseudomonas aeruginosa to become resistant to colistin. Here, we show that magnesium sequestration by Candida albicans also enables P. aeruginosa to evolve a nearly hundredfold higher level of colistin resistance through genetic changes in lipid A biosynthesis-modification pathways and a putative magnesium transporter. These mutations synergize with the Mg 2+ -sensing PhoPQ two-component signaling system to remodel lipid A structures of the bacterial outer membrane in previously uncharacterized ways. One predominant mutational pathway involves early mutations in htrB2 , a non-essential gene involved in lipid A biosynthesis, which enhances resistance but compromises outer membrane integrity, resulting in fitness costs and increased susceptibility to other antibiotics. A second pathway achieves increased colistin resistance independently of htrB2 mutations without compromising membrane integrity. In both cases, reduced colistin binding to the bacterial membrane underlies resistance. Our findings reveal that Mg 2+ scarcity triggers novel evolutionary trajectories, leading to extremely high colistin resistance in P. aeruginosa .

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Cite This Study

Hsieh et al. (2026) studied this question.

synapsesocial.com/papers/69a91de0d6127c7a504c134dhttps://doi.org/10.1371/journal.pbio.3003673
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