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Manganese scavenging is required for virulence of the cytosolic pathogen Listeria monocytogenes

Created on 09 Oct 2026

Authors

Mascari, C. A. M., Carerros, C., Kelliher, J. L.

Abstract

Metals are essential for all forms of life and are therefore the subject of tight competition at the host-pathogen interface. Manganese (Mn) is an important cofactor for enzymes involved in various processes in bacteria, including the response to oxidative stress, and the ability to scavenge Mn through the expression of high-affinity Mn transporters has been associated with virulence of many extracellular and vacuolar pathogens. While the cytosol has been established to be restrictive for growth of non-adapted pathogens, the extent to which metal limitation contributes to this is not well understood. Here, we investigate whether high-affinity Mn acquisition is important for intracellular adaptation and virulence of the cytosolic pathogen Listeria monocytogenes (Lmo). To do so, we generated a strain of Lmo in which both of its predicted high-affinity Mn transporters, MntH and MntABC, are disrupted. We found that this strain was severely defective in growth in vitro under Mn-limited conditions and had lower intracellular Mn content. Additionally, we observed Mn-dependent transcriptional regulation of the mntH and mntA genes. Together, these data strongly support that MntH and MntABC are high-affinity Mn transporters and are likely to be the only such dedicated Mn transporters expressed in Lmo. Using the {Delta}mntH {Delta}mntA strain, we provide evidence that Mn limitation sensitizes Lmo to oxidative stress in vitro, consistent with the known role of Mn in mitigating reactive oxygen species. Ultimately, we demonstrate that expression of high-affinity Mn transporters is essential for intracellular replication of Lmo in macrophages, plaquing on fibroblast monolayers, and for virulence in an animal model of systemic infection. Our work, therefore, suggests that Lmo is challenged by Mn limitation in the cytosol and requires Mn scavenging to adapt to its intracellular niche.

Preprint server: bioRxiv
The authors list and abstract were imported from bioRxiv on 09 Oct 2026.

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