The RecA/LexA axis of the bacterial DNA damage (SOS) response is a promising, yet nontraditional, drug target. The SOS response is initiated upon genotoxic stress, when RecA, a DNA damage sensor, induces LexA, the SOS repressor, to undergo autoproteolysis, thereby derepressing downstream genes that can mediate DNA repair and accelerate mutagenesis. As genetic inhibition of the SOS response sensitizes bacteria to DNA damaging antibiotics and decreases acquired resistance, inhibitors of the RecA/LexA axis could potentiate our current antibiotic arsenal. Compounds targeting RecA, which has many mammalian homologues, have been reported; however, small-molecules targeting LexA autoproteolysis, a reaction unique to the prokaryotic SOS response, have remained elusive. Here, we describe the logistics and accomplishments of an academic-industry partnership formed to pursue inhibitors against the RecA/LexA axis. A novel fluorescence polarization assay reporting on RecA-induced self-cleavage of LexA enabled the screening of 1.8 million compounds. Follow-up studies on select leads show distinct activity patterns in orthogonal assays, including several with activity in cell-based assays reporting on SOS activation. Mechanistic assays demonstrate that we have identified first-in-class small molecules that specifically target the LexA autoproteolysis step in SOS activation. Our efforts establish a realistic example for navigating academic-industry partnerships in pursuit of anti-infective drugs and offer starting points for dedicated lead optimization of SOS inhibitors that could act as adjuvants for current antibiotics.
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http://dx.doi.org/10.1021/acsinfecdis.7b00122 | DOI Listing |
BMC Microbiol
January 2025
University of Amsterdam, Swammerdam Institute of Life Sciences, Molecular Biology and Microbial Food Safety, Amsterdam, The Netherlands.
Background: Fluoroquinolones are indispensable antibiotics used in treating bacterial infections in both human and veterinary medicine. However, resistance to these drugs presents a growing challenge. The SOS response, a DNA repair pathway activated by DNA damage, is known to influence resistance development, yet its role in fluoroquinolone resistance is not fully understood.
View Article and Find Full Text PDFLeuk Lymphoma
January 2025
Unit of Hematology, Azienda Ospedaliera Universitaria Senese and University of Siena, Siena, Italy.
Treatment strategies for early stage diffuse large B-cell lymphoma (ES-DLBCL) include R-CHOP, with a similar schedule to that used in advanced stage, or a reduced number of cycles followed by radiation therapy (RT). We retrospectively analyzed 179 ES-DLBCL patients, managed according to the clinical practice. Treatment regimens include chemoimmunotherapy 4-6 cycles +/- RT as consolidation.
View Article and Find Full Text PDFUnlabelled: The activity of DNA adenine methyltransferase (Dam) and DNA cytosine methyltransferase (Dcm) together account for nearly all methylated nucleotides in the K-12 MG1655 genome. Previous studies have shown that perturbation of DNA methylation alters global gene expression, but it is unclear whether the methylation state of Dam or Dcm target sites regulates local transcription. In recent genome-wide experiments, we observed an underrepresentation of Dam sites in transcriptionally silent extended protein occupancy domains (EPODs), prompting us to hypothesize that EPOD formation is caused partially by low Dam site density.
View Article and Find Full Text PDFJ Hazard Mater
January 2025
College of Environmental Science and Engineering, Hunan University, Changsha 410082, PR China. Electronic address:
The production scalability and increasing demand for black phosphorus nanosheets (BPNSs) inevitably lead to environmental leakage. Although BPNSs' ecotoxicological effects have been demonstrated, their indirect health risks, such as inducing increased resistance in pathogenic bacteria, are often overlooked. This study explores the influence of BPNSs on the horizontal gene transfer of antibiotic resistance genes (ARGs) facilitated by the RP4 plasmid, which carries multiple resistance genes.
View Article and Find Full Text PDFJ Infect Dis
January 2025
Division of Environmental Health Sciences, School of Public Health, University of Minnesota, St. Paul, MN 55108, USA.
Shiga toxin-producing Escherichia coli (STEC) infections pose a significant public health challenge, characterized by severe complications including hemolytic uremic syndrome (HUS) due to Shiga toxin (Stx) production. Current therapeutic approaches encounter a critical limitation, as conventional antibiotic treatment is contraindicated due to its propensity to trigger bacterial SOS response and subsequently enhance Stx production, which increases the likelihood of developing HUS in antibiotic-treated patients. The lack of effective, safe therapeutic options has created an urgent need for alternative treatment strategies for STEC infections.
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