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May 7, 2026Microorganisms0 citationsOpen Access

Magnesium Transporters as Crucial Regulators of Bacterial Survival and Pathogenicity

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SHSY HurYYYoungki YooJCJeong Min Chung

Key Points

  • This review summarizes the roles of magnesium transport systems in bacterial survival and pathogenicity.
  • Focused on magnesium transporters in bacteria, particularly in Salmonella and ESKAPE pathogens.
  • Examined the function of MgtA, MgtB, and MgtC under magnesium-limiting conditions.
  • Discussed mechanisms of CorA and MgtE channels for magnesium uptake.
  • Identified the significance of magnesium for bacterial metabolism and stability.
  • Highlighted MgtA and MgtB as high-affinity P-type ATPases crucial for magnesium transport.
  • Presented MgtC's role in bacterial survival by inhibiting F-type ATP synthase.

Abstract

Magnesium is an essential divalent cation required for adenosine triphosphate (ATP)-dependent reactions, nucleic acid metabolism, and ribosomal stability. Bacteria depend on specialized transport systems to maintain intracellular Mg2+ homeostasis as it cannot freely cross the phospholipid bilayer. During infection, host nutritional immunity restricts metal availability, and magnesium limitation within the phagosome compromises bacterial metabolism and stability. This review summarizes the major bacterial magnesium transport systems and their roles in survival and pathogenicity, with an emphasis on Salmonella and extension to clinically relevant ESKAPE pathogens. We focus on the PhoPQ-regulated MgtA, MgtB, and MgtC system, in which low magnesium, acidic pH, and other host-derived signals activate PhoPQ to induce mgt gene expression. MgtA and MgtB act as high-affinity P-type ATPases, whereas MgtC promotes bacterial survival within the intramacrophage environment by inhibiting bacterial F-type ATP synthase through specific interactions with subunit a. We also discuss CorA as a conserved channel for basal Mg2+ uptake and MgtE as a Mg2+-selective channel whose gating responds to intracellular Mg2+ and ATP. Finally, we consider the conservation and variation in these systems across pathogenic bacteria and their potential as therapeutic targets for antimicrobial development.

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Cite This Study

Hur et al. (2026) studied this question.

synapsesocial.com/papers/69fbe2f2164b5133a91a246fhttps://doi.org/10.3390/microorganisms14051033
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