Efagins evolved independently to target the enterococcal cell wall
Prichula, J.; Manson, A. L.; Smith, J. T.; Karumidze, N.; Richards, G.; Mello, S. S.; Czajkowski, A.; Kaplan, M.; Earl, A. M.; Gilmore, M. S.
Show abstract
Enterococci are major causes of multidrug-resistant infections, and antimicrobials with fundamentally new mechanisms of action are urgently needed. We identify a new class of antibacterial agents, termed efagins, which are chromosomally encoded, phage-related nanomachines that recognize cell wall carbohydrate receptors and inhibit subsets of E. faecalis, E. faecium and other enterococci selectively--a key reason they evaded prior detection. Five natural variants with distinct targeting profiles were identified - four related by sequence divergence, while one appears to have arisen through recombination of the targeting domain, likely from a phage donor. Operons encoding the corresponding carbohydrate receptors are highly variable, accounting for targeting specificity. The efagin targeting domain can be engineered to reprogram them toward alternative receptors, providing a pathway for filling critical coverage gaps. These findings advance efagins as new selective antibacterials with promise for addressing infection and spread of multidrug-resistant enterococcal infection.
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