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Updated: May 24, 2025

Population and Single-Cell Analysis of Antibiotic Persistence in Escherichia coli
Published on: March 24, 2023
Clinical Isolates of Antimicrobial-Resistant Enterobacter Species Can Persist in Human Macrophages Without
Georgiana Parau1, Hannah J Parks1, Amy J G Anderson1
1Infection Biology Group, Wellcome-Wolfson Institute for Experimental Medicine, Queen's University Belfast, Belfast, United Kingdom.
Background:
Enterobacter species are opportunistic, multidrug resistant gram-negative bacteria associated with morbidity and mortality worldwide. Because very little is known about the infection biology of Enterobacter spp, we investigated the intracellular trafficking of a subset of Enterobacter clinical isolates, including colistin-resistant strains, within human macrophages and determined the macrophage response to the intracellular infection.
Methods:
Phagocytosis of 11 clinical isolates representing Enterobacter cloacae, Enterobacter bugandensis, Enterobacter kobei, Enterobacter xiangfangensis, Enterobacter roggenkampii, Enterobacter hoffmannii, and Enterobacter ludwigii was investigated in primary human macrophages. Intracellular bacterial trafficking was followed by confocal fluorescence microscopy, intracellular bacterial replication was assessed by bacterial enumeration, and a fluorescence dilution approach was used to follow bacterial cell division over time. Macrophage cell cytotoxicity was investigated by quantifying the release of lactate dehydrogenase during infection and by determining cleavage of the proinflammatory markers caspase-1, gasdermin D, and prointerleukin-1β.
Results:
Enterobacter isolates did not replicate in human macrophages, exhibiting long-term survival (up to 44 hours) within a modified late phagolysosome compartment. Survival did not correlate with colistin resistance, lipopolysaccharide modifications, or bacterial pathogenicity in the Galleria mellonella infection model. Intracellular bacteria induced low levels of macrophage cytotoxicity that correlated with absence of cleavage of proinflammatory markers in infected macrophages.
Conclusions:
Enterobacter spp clinical isolates can persist without replication inside human macrophages with minimal effects on cell integrity and inflammation. These observations could have implications for clinical outcome of patients that cannot readily clear Enterobacter infections, which can potentially lead to prolonged intracellular survival and infection relapse.
Insights
Enterobacter bacteria can survive long-term inside human macrophages without replicating, potentially leading to persistent infections and relapse in patients. This study reveals their intracellular survival mechanisms.
Area of Science:
- Microbiology
- Immunology
- Cell Biology
Background:
- Enterobacter species are opportunistic, multidrug-resistant Gram-negative bacteria causing significant global morbidity and mortality.
- Limited knowledge exists regarding the infection biology and intracellular behavior of Enterobacter spp.
Purpose of the Study:
- To investigate the intracellular trafficking of Enterobacter clinical isolates within human macrophages.
- To determine the host macrophage response to intracellular Enterobacter infection.
Main Methods:
- Phagocytosis of 11 clinical Enterobacter isolates by primary human macrophages.
- Confocal fluorescence microscopy to track intracellular bacterial trafficking.
- Bacterial enumeration and fluorescence dilution to assess replication; lactate dehydrogenase release and inflammatory marker cleavage to measure cytotoxicity.
Main Results:
- Enterobacter isolates survived intracellularly for up to 44 hours within macrophages without replicating.
- Intracellular survival did not correlate with colistin resistance, LPS modifications, or Galleria mellonella pathogenicity.
- Low macrophage cytotoxicity was observed, with minimal cleavage of key inflammatory markers.
Conclusions:
- Enterobacter spp. clinical isolates can persist intracellularly in macrophages without replication, causing minimal host cell damage.
- This intracellular persistence may contribute to prolonged infections and relapse in patients unable to clear the bacteria.
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