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Model Colibactins Exhibit Human Cell Genotoxicity in the Absence of Host Bacteria
Emilee E Shine1,2, Mengzhao Xue3, Jaymin R Patel2,4
1Department of Microbial Pathogenesis , Yale School of Medicine , New Haven , Connecticut 06536 , United States.
Abstract:
Colibactins are genotoxic secondary metabolites produced in select Enterobacteriaceae, which induce downstream DNA double-strand breaks (DSBs) in human cell lines and are thought to promote the formation of colorectal tumors. Although key structural and functional features of colibactins have been elucidated, the full molecular mechanisms regulating these phenotypes remain unknown. Here, we demonstrate that free model colibactins induce DSBs in human cell cultures and do not require delivery by host bacteria. Through domain-targeted editing, we demonstrate that a subset of native colibactins generated from observed module skipping in the nonribosomal peptide synthetase-polyketide synthase (NRPS-PKS) biosynthetic assembly line share DNA alkylation phenotypes with the model colibactins in vitro. However, module skipping eliminates the strong DNA interstrand cross-links formed by the wild-type pathway in cell culture. This product diversification during the modular NRPS-PKS biosynthesis produces a family of metabolites with varying observed mechanisms of action (DNA alkylation versus cross-linking) in cell culture. The presence of membranes separating human cells from model colibactins attenuated genotoxicity, suggesting that membrane diffusion limits colibactin activity and could account for the reported bacterium-human cell-to-cell contact phenotype. Additionally, extracellular supplementation of the colibactin resistance protein ClbS was able to intercept colibactins in an Escherichia coli-human cell transient infection model. Our studies demonstrate that free model colibactins recapitulate cellular phenotypes associated with module-skipped products in the native colibactin pathway and define specific protein domains that are required for efficient DNA interstrand cross-linking in the native pathway.
Insights
Colibactins, genotoxic compounds, cause DNA damage independently of bacteria. Their varied structures lead to different DNA interactions, influencing colorectal tumor formation.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Colibactins are genotoxic metabolites from Enterobacteriaceae, linked to colorectal cancer.
- Their DNA double-strand break (DSB) induction mechanisms and regulation are not fully understood.
Purpose of the Study:
- To investigate the molecular mechanisms of colibactin genotoxicity.
- To determine if free colibactins induce DNA damage without bacterial delivery.
- To explore how variations in colibactin biosynthesis affect DNA damage.
Main Methods:
- Utilized model colibactins to assess DNA damage in human cell cultures.
- Employed domain-targeted editing of nonribosomal peptide synthetase-polyketide synthase (NRPS-PKS) to study native colibactin variants.
- Investigated the role of cell membranes in colibactin genotoxicity.
- Assessed the efficacy of the resistance protein ClbS in neutralizing colibactins.
Main Results:
- Free model colibactins induce DNA double-strand breaks (DSBs) in human cells.
- Module skipping in NRPS-PKS biosynthesis generates colibactins with DNA alkylation but not cross-linking activity.
- Cell membranes attenuate colibactin genotoxicity, suggesting diffusion limitation.
- Extracellular ClbS protein can neutralize colibactins in an infection model.
Conclusions:
- Free colibactins can cause DNA damage, recapitulating effects of native pathway variants.
- Product diversification in colibactin biosynthesis yields metabolites with distinct DNA interaction mechanisms.
- Membrane diffusion and specific protein domains are critical for colibactin activity and genotoxicity.
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