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Rodriguez-Villalobos, H.

Publications and source records attributed to Rodriguez-Villalobos, H..

2 recordsLinked to original sources

Multiplexing bacteriocin synthesis to kill and prevent antimicrobial resistance

Antibiotic resistance represents an emergency for global public health. This calls for using alternative drugs and developing innovative therapies based on a clear understanding of their mechanisms of action and resistance in bacteria. Bacteriocins represent a unique class of natural molecules selectively eliminating bacteria. These secreted proteins exhibit a narrower spectrum of activity compared to conventional broad-spectrum antimicrobials by interacting with specific protein and lipid receptors on bacterial cell envelopes. Despite their diverse molecular structures, the commonality of being genetically encoded makes bacteriocins amenable to synthetic biology design. In using cell-free gene expression (CFE) and continuous-exchange CFE (CECFE), we produced controlled combinations (cocktails) of bacteriocins in single synthesis reactions for the first time. A first set of bacteriocin cocktails comprising both linear and circular proteins allowed the targeting of different bacterial species. Other cocktails were designed to target one bacterial species and considering bacteriocins pathways to cross the cell-envelope. Such combinations demonstrated efficient bacterial eradication and prevention of resistance. We illustrate the effectiveness of these bacteriocin mixtures in eradicating various human pathogenic-multiresistant--isolates. Finally, we highlight their potential as targeted and versatile tools in antimicrobial therapy by testing a combination of bacteriocins for treatment in vivo in the animal model Galleria mellonella.

synthetic biology↗

Targeted chromosomal barcoding establishes direct genotype-phenotype associations for antibiotic resistance in Mycobacterium abscessus

A bedaquiline resistant Mycobacterium abscessus isolate was sequenced and a candidate mutation in the atpE gene was identified as responsible for the antibiotic resistance phenotype. To establish a direct genotype-phenotype relationship of this D29A mutation, we developed a recombineering-based method consisting of the specific replacement of the desired mutation in the bacterial chromosome. As surrogate bacteria, we used two M. abscessus antibiotic susceptible strains: ATCC19977, and the SL541 clinical isolate. The allelic exchange substrates used in recombineering carried either the sole D29A mutation, or a genetic barcode of silent mutations in codons flanking the D29A mutation. After selection of bedaquiline resistant M. abscessus colonies, transformed with both substrates, we obtained equivalent numbers of recombinants. These resistant colonies were analyzed by allele-specific PCR, and Sanger sequencing, demonstrating that the presence of the genetic barcode is linked to the targeted incorporation of the desired mutation in its chromosomal location. All recombinants displayed the same minimal inhibitory concentration to bedaquiline than the original isolate, from which the D29A mutation was identified. Finally, to demonstrate the broad applicability of this method, we confirmed the association of bedaquiline resistance with the atpE A64P mutation, performed in independent M. abscessus strains and by independent researchers.

microbiology↗