The transcriptional response of Yersinia pseudotuberculosis to macrophage-released metabolites during growth within synthetic microcolonies

ABSTRACT Yersinia pseudotuberculosis ( Yptb ) replicates in immune cell-encompassed microcolonies within tissues. Bacterial replication is controlled by protection against neutrophil attack and by macrophage-released antimicrobial factors, such as nitric oxide (NO). During these attacks, bacteria located on the microcolony periphery encounter extracellular signals that differ from those in the interior. To dissect individual microbial populations, γ interferon-activated macrophages were used to challenge microdroplet-grown Yptb harboring an NO-responsive mCherry reporter. Subsequently, bacterial subpopulations that hyperactivated the reporter were isolated from droplets composed of a reversible polymer matrix. RNA-seq analysis indicated that induction of nitrosative stress-associated genes was the primary determinant distinguishing peripheral bacteria from the remaining population. In addition, a secondary stress response that induced prophage-associated genes was detected, which could not be traced to either DNA damage or nitrosative stress responses. Activated macrophages also induced the expression of the Yptb itaconate degradation enzyme-encoding transcript throughout the entire colony. To determine if itaconate production by the interferon-activated Irg1 protein played a role in restricting Yptb , bacteria harboring an itaconate-responsive reporter and Yptb mutants defective for itaconate degradation were analyzed during bacterial colonization of the murine spleen. Only a subset of colonies appeared to be exposed to itaconate, which may explain the very small defects exhibited by mutants unable to degrade the interferon-induced macrophage product. These results indicate that the primary response of bacteria to macrophage-elicited factors is likely associated with protection against NO-derived metabolites. IMPORTANCE Bacterial microcolonies are often linked to invasive infectious diseases. Once established, organisms as diverse as Staphylococcus aureus and enteropathogenic Yersinia recruit activated macrophages that surround these sites. For Yersinia pseudotuberculosis , the layer of distant macrophages induces a nitric oxide (NO)-inactivating enzyme in the outermost bacteria, enabling bacteria in the core to survive. This study shows that the cellular states of bacteria in the periphery and the core can be examined by recreating tissue infection in an in vitro system, in which microcolonies form within droplets of a degradable solid matrix, surrounded by interferon-activated macrophages. Transcriptomic analysis revealed that the peripheral bacteria primarily differ from the core in their response to NO. Surprisingly, the entire colony is bathed in itaconate, an immune-modulating chemical produced by activated macrophages. The ability to respond to itaconate may help rare bacteria engulfed by macrophages to survive phagocytic attack.

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Journal
mBio
Published
2026-09-21
DOI
https://doi.org/10.1128/mbio.00691-26
Primary Topic
Yersinia bacterium, plague, ectoparasites research
Type
article
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article

The transcriptional response of Yersinia pseudotuberculosis to macrophage-released metabolites during growth within synthetic microcolonies

Kimberly Michele Davis, Ralph R. Isberg, Stacie A. Clark, Alexander C Joyce et al.
mBio
Yersinia bacterium, plague, ectoparasites research
article

The transcriptional response of Yersinia pseudotuberculosis to macrophage-released metabolites during growth within synthetic microcolonies

Kimberly Michele Davis, Ralph R. Isberg, Stacie A. Clark, Alexander C Joyce, Tim van Opijnen, Juan Ortiz-Marquez, Alexander Palmer, Wenwen Huo
article en

Abstract

ABSTRACT Yersinia pseudotuberculosis ( Yptb ) replicates in immune cell-encompassed microcolonies within tissues. Bacterial replication is controlled by protection against neutrophil attack and by macrophage-released antimicrobial factors, such as nitric oxide (NO). During these attacks, bacteria located on the microcolony periphery encounter extracellular signals that differ from those in the interior. To dissect individual microbial populations, γ interferon-activated macrophages were used to challenge microdroplet-grown Yptb harboring an NO-responsive mCherry reporter. Subsequently, bacterial subpopulations that hyperactivated the reporter were isolated from droplets composed of a reversible polymer matrix. RNA-seq analysis indicated that induction of nitrosative stress-associated genes was the primary determinant distinguishing peripheral bacteria from the remaining population. In addition, a secondary stress response that induced prophage-associated genes was detected, which could not be traced to either DNA damage or nitrosative stress responses. Activated macrophages also induced the expression of the Yptb itaconate degradation enzyme-encoding transcript throughout the entire colony. To determine if itaconate production by the interferon-activated Irg1 protein played a role in restricting Yptb , bacteria harboring an itaconate-responsive reporter and Yptb mutants defective for itaconate degradation were analyzed during bacterial colonization of the murine spleen. Only a subset of colonies appeared to be exposed to itaconate, which may explain the very small defects exhibited by mutants unable to degrade the interferon-induced macrophage product. These results indicate that the primary response of bacteria to macrophage-elicited factors is likely associated with protection against NO-derived metabolites. IMPORTANCE Bacterial microcolonies are often linked to invasive infectious diseases. Once established, organisms as diverse as Staphylococcus aureus and enteropathogenic Yersinia recruit activated macrophages that surround these sites. For Yersinia pseudotuberculosis , the layer of distant macrophages induces a nitric oxide (NO)-inactivating enzyme in the outermost bacteria, enabling bacteria in the core to survive. This study shows that the cellular states of bacteria in the periphery and the core can be examined by recreating tissue infection in an in vitro system, in which microcolonies form within droplets of a degradable solid matrix, surrounded by interferon-activated macrophages. Transcriptomic analysis revealed that the peripheral bacteria primarily differ from the core in their response to NO. Surprisingly, the entire colony is bathed in itaconate, an immune-modulating chemical produced by activated macrophages. The ability to respond to itaconate may help rare bacteria engulfed by macrophages to survive phagocytic attack.

mBio
Tufts University (US), Boston Children's Hospital (US), Harvard University (US), Johns Hopkins University (US)
Life in Land
Openalex Percentile: Top 11%
Yersinia bacterium, plague, ectoparasites research
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