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Targeting Borrelia burgdorferi HtpG with a berserker molecule, a strategy for anti-microbial development.

Authors :
Carlson DL
Kowalewski M
Bodoor K
Lietzan AD
Hughes PF
Gooden D
Loiselle DR
Alcorta D
Dingman Z
Mueller EA
Irnov I
Modla S
Chaya T
Caplan J
Embers M
Miller JC
Jacobs-Wagner C
Redinbo MR
Spector N
Haystead TAJ
Source :
Cell chemical biology [Cell Chem Biol] 2024 Mar 21; Vol. 31 (3), pp. 465-476.e12. Date of Electronic Publication: 2023 Nov 01.
Publication Year :
2024

Abstract

Conventional antimicrobial discovery relies on targeting essential enzymes in pathogenic organisms, contributing to a paucity of new antibiotics to address resistant strains. Here, by targeting a non-essential enzyme, Borrelia burgdorferi HtpG, to deliver lethal payloads, we expand what can be considered druggable within any pathogen. We synthesized HS-291, an HtpG inhibitor tethered to the photoactive toxin verteporfin. Reactive oxygen species, generated by light, enables HS-291 to sterilize Borrelia cultures by causing oxidation of HtpG, and a discrete subset of proteins in proximity to the chaperone. This caused irreversible nucleoid collapse and membrane blebbing. Tethering verteporfin to the HtpG inhibitor was essential, since free verteporfin was not retained by Borrelia in contrast to HS-291. For this reason, we liken HS-291 to a berserker, wreaking havoc upon the pathogen's biology once selectively absorbed and activated. This strategy expands the druggable pathogenic genome and offsets antibiotic resistance by targeting non-essential proteins.<br />Competing Interests: Declaration of interests T.A.J.H. and P.F.H. have multiple patents issued or disclosed with Duke University around the tethering technology described in this study.<br /> (Copyright © 2023 The Authors. Published by Elsevier Ltd.. All rights reserved.)

Details

Language :
English
ISSN :
2451-9448
Volume :
31
Issue :
3
Database :
MEDLINE
Journal :
Cell chemical biology
Publication Type :
Academic Journal
Accession number :
37918401
Full Text :
https://doi.org/10.1016/j.chembiol.2023.10.004