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Colicin-Mediated Transport of DNA through the Iron Transporter FepA
Ruth Cohen-Khait1, Ameya Harmalkar2, Phuong Pham1
1Department of Biochemistry, University of Oxfordgrid.4991.5, Oxford, United Kingdom.
Abstract:
Colicins are protein antibiotics deployed by Escherichia coli to eliminate competing strains. Colicins frequently exploit outer membrane (OM) nutrient transporters to penetrate the selectively permeable bacterial cell envelope. Here, by applying live-cell fluorescence imaging, we were able to monitor the entry of the pore-forming toxin colicin B (ColB) into E. coli and localize it within the periplasm. We further demonstrate that single-stranded DNA coupled to ColB can also be transported to the periplasm, emphasizing that the import routes of colicins can be exploited to carry large cargo molecules into bacteria. Moreover, we characterize the molecular mechanism of ColB association with its OM receptor FepA by applying a combination of photoactivated cross-linking, mass spectrometry, and structural modeling. We demonstrate that complex formation is coincident with large-scale conformational changes in the colicin. Thereafter, active transport of ColB through FepA involves the colicin taking the place of the N-terminal half of the plug domain that normally occludes this iron transporter. IMPORTANCE Decades of excessive use of readily available antibiotics has generated a global problem of antibiotic resistance and, hence, an urgent need for novel antibiotic solutions. Bacteriocins are protein-based antibiotics produced by bacteria to eliminate closely related competing bacterial strains. Bacteriocin toxins have evolved to bypass the complex cell envelope in order to kill bacterial cells. Here, we uncover the cellular penetration mechanism of a well-known but poorly understood bacteriocin called colicin B that is active against Escherichia coli. Moreover, we demonstrate that the colicin B-import pathway can be exploited to deliver conjugated DNA cargo into bacterial cells. Our work leads to a better understanding of the way bacteriocins, as potential alternative antibiotics, execute their mode of action as well as highlighting how they might even be exploited in the genomic manipulation of Gram-negative bacteria.
Insights
Colicin B, a protein antibiotic, uses outer membrane transporters to enter Escherichia coli. This import pathway can be engineered to deliver DNA cargo, offering new strategies against antibiotic resistance.
Area of Science:
- Microbiology
- Molecular Biology
- Structural Biology
Background:
- Colicins are protein antibiotics produced by E. coli to inhibit competing strains.
- Colicins utilize outer membrane (OM) nutrient transporters for bacterial cell entry.
- Antibiotic resistance necessitates novel therapeutic strategies, including bacteriocins.
Purpose of the Study:
- To elucidate the cellular penetration mechanism of colicin B (ColB) in E. coli.
- To investigate the potential of ColB import pathways for delivering large cargo molecules.
- To characterize the molecular interactions between ColB and its OM receptor, FepA.
Main Methods:
- Live-cell fluorescence imaging to monitor ColB entry.
- Photoactivated cross-linking and mass spectrometry to study protein interactions.
- Structural modeling to determine the mechanism of transport.
Main Results:
- ColB entry into E. coli and localization in the periplasm were visualized.
- Single-stranded DNA conjugated to ColB was successfully transported to the periplasm.
- ColB binding to FepA induces conformational changes, and ColB displaces the FepA plug domain during transport.
Conclusions:
- The FepA transporter facilitates ColB entry by undergoing conformational changes and allowing ColB to displace its plug domain.
- The ColB import pathway can be exploited for delivering DNA cargo into Gram-negative bacteria.
- Understanding colicin mechanisms provides insights into potential alternative antibiotics and tools for bacterial genetic manipulation.
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