Ligand-Displaying E. coli Cells and Minicells for Programmable Delivery of Toxic Payloads via Type IV Secretion Systems
Christie, P. J.; Li, Y. G.; Kishida, K.; Ogawa-Kishida, N.
Show abstract
Bacterial type IV secretion systems (T4SSs) are highly versatile macromolecular translocators and offer great potential for deployment as delivery systems for therapeutic intervention. One major T4SS subfamily, the conjugation machines, are well-adapted for delivery of DNA cargoes of interest to other bacteria or eukaryotic cells, but generally exhibit modest transfer frequencies and lack specificity for target cells. Here, we tested the efficacy of a surface-displayed nanobody/antigen (Nb/Ag) pairing system to enhance the conjugative transfer of IncN (pKM101), IncF (F/pOX38), or IncP (RP4) plasmids, or of mobilizable plasmids including those encoding CRISPR/Cas9 systems (pCrispr), to targeted recipient cells. Escherichia coli donors displaying Nbs transferred plasmids to E. coli and Pseudomonas aeruginosa recipients displaying the cognate Ags at significantly higher frequencies than to recipients lacking Ags. Nb/Ag pairing functionally substituted for the surface adhesin activities of F-encoded TraN and pKM101-encoded Pep, although not conjugative pili or VirB5-like adhesins. Nb/Ag pairing further elevated the killing effects accompanying delivery of pCrispr plasmids to E. coli and P. aeruginosa transconjugants bearing CRISPR/Cas9 target sequences. Finally, we determined that anucleate E. coli minicells, which are clinically safer delivery vectors than intact cells, transferred self-transmissible and mobilizable plasmids to E. coli and P. aeruginosa cells. Minicell-mediated mobilization of pCrispr plasmids to E. coli recipients elicited significant killing of transconjugants, although Nb/Ag pairing did not enhance conjugation frequencies or killing. Together, our findings establish the potential for deployment of bacteria or minicells as Programmed Delivery Systems (PDSs) for suppression of targeted bacterial species in infection settings. IMPORTANCEThe rapid emergence of drug-resistant bacteria and current low rate of antibiotic discovery emphasize an urgent need for alternative antibacterial strategies. We engineered Escherichia coli to conjugatively transfer plasmids to specific E. coli and Pseudomonas aeruginosa recipient cells through surface display of cognate nanobody/antigen (Nb/Ag) pairs. We further engineered mobilizable plasmids to carry CRISPR/Cas9 systems (pCrispr) for selective killing of recipient cells harboring CRISPR/Cas9 target sequences. In the assembled Programmed Delivery System (PDS), Nb-displaying E. coli donors with different conjugation systems and mobilizable pCrispr plasmids suppressed growth of Ag-displaying recipient cells to significantly greater extents than unpaired recipients. We also showed that anucleate minicells armed with conjugation machines and pCrispr plasmids were highly effective in killing of E. coli recipients. Together, our findings suggest that bacteria or minicells armed with PDSs may prove highly effective as an adjunct or alternative to antibiotics for antimicrobial intervention.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Recombination-independent recognition of DNA homology for meiotic silencing in Neurospora crassa 96%
- Antimicrobial resistance level and conjugation permissiveness shape plasmid distribution in clinical enterobacteria 95%
- Genetic dominance governs the evolution and spread of mobile genetic elements in bacteria 95%
Similar papers in this journal
- Vibrio cholerae Type VI Secretion System Auxiliary Cluster 3 is a Pandemic-associated Mobile Genetic Element 95%
- Evolution of satellite plasmids can stabilize the maintenance of newly acquired accessory genes in bacteria 95%
- CRISPR-Cas12a induced DNA double-strand breaks are repaired by locus-dependent and error-prone pathways in a fungal pathogen 94%
Similar papers in this journal
Similar papers in this journal
- Exclusion Systems Preserve Host Cell Homeostasis and fitness, Ensuring Successful Dissemination of Conjugative Plasmids and Associated Resistance Genes 97%
- Single-cell evidence for plasmid addiction mediated by toxin-antitoxin systems 97%
- Targeted-Antibacterial-Plasmids (TAPs) combining conjugation and CRISPR /Cas systems achieve strain-specific antibacterial activity 96%
Similar papers in this journal
- Unbiased homeologous recombination during pneumococcal transformation allows for multiple chromosomal integration events 94%
- An interbacterial DNA deaminase toxin directly mutagenizes surviving target populations 94%
- Pathogen clonal expansion underlies multiorgan dissemination and organ-specific outcomes during systemic infection 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.