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May 10, 20260 citationsOpen Access

Structural mechanism and inhibitor discovery for DhhP, a Borrelia burgdorferi cyclic di-AMP phosphodiesterase with an Fe/Mn bimetallic center

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MKMartin KlímaCzech Academy of Sciences, Institute of Organic Chemistry and BiochemistryMDMilan DejmekCzech Academy of Sciences, Institute of Organic Chemistry and BiochemistryAPAdéla PalusováInstitute of Parasitology

Key Points

  • The aim is to explore the structural mechanism of DhhP and discover specific inhibitors for Borrelia burgdorferi.
  • Presented the crystal structure of DhhP with a bimetallic center and binding sites for manganese and iron.
  • Characterized small-molecule inhibitors and tested their effects on B. burgdorferi growth.
  • Observed enzyme dimerization and proposed a mechanism for substrate processing.
  • DhhP inhibition resulted in lethal effects on Borrelia both in vitro and in mammalian hosts.
  • Identified small-molecule inhibitors effectively inhibited B. burgdorferi growth and altered spirochete morphology.
  • Crystal structure revealed a unique bimetallic center, providing insight for future inhibitor design.

Abstract

Second messenger signaling through cyclic dinucleotides regulates critical processes in pathogenic bacteria. DhhP is a phosphodiesterase that regulates levels of cyclic di-AMP (c-di-AMP), an essential second messenger, in Borrelia. Genetic inhibition of DhhP is lethal to Borrelia both in vitro and within a mammalian host. Here, we present the crystal structure of DhhP, revealing a heterobimetallic active site containing precisely positioned manganese and iron ions. We demonstrate specific binding sites for each metal, challenging the prevailing paradigm of homobimetallic active centers in bacterial c-di-AMP phosphodiesterases. The enzyme forms asymmetric dimers with coordinated open and closed conformations, suggesting an alternating mechanism for substrate processing. Additionally, we identified and characterized a series of small-molecule inhibitors of DhhP and demonstrated their ability to inhibit the growth of B. burgdorferi and disrupt spirochete morphology. These compounds establish proof of concept for specific targeting of bacterial c-di-AMP phosphodiesterases and further research of c-di-AMP roles in bacterial cells.

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Cite This Study

Klíma et al. (2026) studied this question.

synapsesocial.com/papers/6a0021b7c8f74e3340f9ca95https://doi.org/10.3204/pubdb-2026-01390
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