Mechanistic insight into the repair of C8-linked pyrrolobenzodiazepine monomer-mediated DNA damage

Article


Joseph, A.M., Nahar, K., Daw, S., Hasan, M.M., Lo, R., Le, T.B.K., Rahman, K.M. and Badrinarayanan, A. 2022. Mechanistic insight into the repair of C8-linked pyrrolobenzodiazepine monomer-mediated DNA damage. RSC Medicinal Chemistry. 13 (12), pp. 1621-1633. https://doi.org/10.1039/d2md00194b
TypeArticle
TitleMechanistic insight into the repair of C8-linked pyrrolobenzodiazepine monomer-mediated DNA damage
AuthorsJoseph, A.M., Nahar, K., Daw, S., Hasan, M.M., Lo, R., Le, T.B.K., Rahman, K.M. and Badrinarayanan, A.
Abstract

Pyrrolobenzodiazepines (PBDs) are naturally occurring DNA binding compounds that possess anti-tumor and anti-bacterial activity. Chemical modifications of PBDs can result in improved DNA binding, sequence specificity and enhanced efficacy. More recently, synthetic PBD monomers have shown promise as payloads for antibody drug conjugates and anti-bacterial agents. The precise mechanism of action of these PBD monomers and their role in causing DNA damage remains to be elucidated. Here we characterized the damage-inducing potential of two C8-linked PBD bi-aryl monomers in <i>Caulobacter crescentus</i> and investigated the strategies employed by cells to repair the same. We show that these compounds cause DNA damage and efficiently kill bacteria, in a manner comparable to the extensively used DNA cross-linking agent mitomycin-C (MMC). However, in stark contrast to MMC which employs a mutagenic lesion tolerance pathway, we implicate essential functions for error-free mechanisms in repairing PBD monomer-mediated damage. We find that survival is severely compromised in cells lacking nucleotide excision repair and to a lesser extent, in cells with impaired recombination-based repair. Loss of nucleotide excision repair leads to significant increase in double-strand breaks, underscoring the critical role of this pathway in mediating repair of PBD-induced DNA lesions. Together, our study provides comprehensive insights into how mono-alkylating DNA-targeting therapeutic compounds like PBD monomers challenge cell growth, and identifies the specific mechanisms employed by the cell to counter the same.

Sustainable Development Goals3 Good health and well-being
Middlesex University ThemeHealth & Wellbeing
PublisherRoyal Society of Chemistry
JournalRSC Medicinal Chemistry
ISSN
Electronic2632-8682
Publication dates
Online18 Oct 2022
Print01 Dec 2022
Publication process dates
Submitted24 Jun 2022
Accepted18 Oct 2022
Deposited27 May 2026
Output statusPublished
Digital Object Identifier (DOI)https://doi.org/10.1039/d2md00194b
PubMed ID36561066
PubMed Central ID9749960
Web of Science identifierWOS:000874488600001
Related Output
Is supplemented byhttps://www.rsc.org/suppdata/d2/md/d2md00194b/d2md00194b1.pdf
Has versionhttps://europepmc.org/articles/PMC9749960
Has versionhttps://kclpure.kcl.ac.uk/portal/en/publications/mechanistic-insight-into-the-repair-of-c8-linked-pyrrolobenzodiaz/
LanguageEnglish
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