SLC11A2 withholds divalent metals from <i>Salmonella</i> in the gut epithelium

E Emilia S. Norberg (Department of Microbiology and Molecular Genetics, Robert Larner, M.D. College of Medicine, University of Vermont) T Trina L. Westerman (Department of Pathobiological Sciences, School of Veterinary Medicine, University of Wisconsin-Madison) E Eddy Cruz (Department of Pathobiological Sciences, School of Veterinary Medicine, University of Wisconsin-Madison) S Summer D. Bushman (Department of Pathology, Microbiology, and Immunology, and Vanderbilt Institute for Infection, Immunology, and Inflammation, Vanderbilt University Medical Center) J John Salogiannis (Department of Molecular Physiology and Biophysics, Robert Larner, M.D. College of Medicine, University of Vermont) E Eric P. Skaar (Department of Pathology, Microbiology, and Immunology, and Vanderbilt Institute for Infection, Immunology, and Inflammation, Vanderbilt University Medical Center) J Johanna R. Elfenbein (Department of Pathobiological Sciences, School of Veterinary Medicine, University of Wisconsin-Madison) L Leigh A. Knodler (Department of Microbiology and Molecular Genetics, Robert Larner, M.D. College of Medicine, University of Vermont)

Abstract

There is a constant tug-of-war for transition metals at the pathogen–host interface. Vertebrate hosts modulate the availability of metals to pathogens in a process known as nutritional immunity, but pathogens have evolved numerous countermeasures to this host defense strategy. The bioavailability of trace metals therefore shapes the outcome of disease. In mammals, epithelial cells lining the intestine are a major site of metal absorption. Intestinal epithelial cells (IECs) are also a target for invading enteric pathogens but the contribution of epithelium-intrinsic factors toward nutritional immunity is unclear. Using Salmonella enterica serovar Typhimurium (STm) harboring genetically encoded fluorescent sensors for transition metals, we mapped the spatiotemporal nature of metal competition during enteric salmonellosis. In contrast to the metal replete lumen, a subpopulation of STm experience a temporal, cell-specific restriction of Fe 2+ and Zn 2+ (≤0.1 µM), and possibly Mn 2+ , in both IECs and cells of the lamina propria during the early stages of infection. We further studied the contribution of the broad specificity divalent metal transporter, SLC11A2, in IECs to nutritional immunity against STm. SLC11A2 was recruited to maturing Salmonella -containing vacuoles and knockout of SLC11A2 led to increased bacterial proliferation in IECs. Metal-responsive fluorescent reporters showed that vacuolar STm were less starved for Fe 2+ , and possibly Mn 2+ , but not Zn 2+ or Mg 2+ in the absence of SLC11A2 . STm counters SLC11A2-mediated growth restriction in IECs via the Mn 2+ /Fe 2+ transporter, MntH, and iron-binding siderophores. We conclude that SLC11A2-mediated sequestration of a subset of metals is an IEC innate defense mechanism against STm.

Article Details

Volume / Issue Vol. 123, Issue 26
Published June 30, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

E

Emilia S. Norberg

Department of Microbiology and Molecular Genetics, Robert Larner, M.D. College of Medicine, University of Vermont

T

Trina L. Westerman

Department of Pathobiological Sciences, School of Veterinary Medicine, University of Wisconsin-Madison

E

Eddy Cruz

Department of Pathobiological Sciences, School of Veterinary Medicine, University of Wisconsin-Madison

S

Summer D. Bushman

Department of Pathology, Microbiology, and Immunology, and Vanderbilt Institute for Infection, Immunology, and Inflammation, Vanderbilt University Medical Center

J

John Salogiannis

Department of Molecular Physiology and Biophysics, Robert Larner, M.D. College of Medicine, University of Vermont

E

Eric P. Skaar

Department of Pathology, Microbiology, and Immunology, and Vanderbilt Institute for Infection, Immunology, and Inflammation, Vanderbilt University Medical Center

J

Johanna R. Elfenbein

Department of Pathobiological Sciences, School of Veterinary Medicine, University of Wisconsin-Madison

L

Leigh A. Knodler

Department of Microbiology and Molecular Genetics, Robert Larner, M.D. College of Medicine, University of Vermont