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Goren, M. G.

Publications and source records attributed to Goren, M. G..

2 recordsLinked to original sources

A widespread bacterial mobile genetic element encodes weapons against phages, bacteria, and eukaryotes

Conflicts between bacteria and their rivals led to an evolutionary arms race and the development of bacterial immune systems. Although diverse immunity mechanisms were recently identified, many remain unknown, and their dissemination within bacteria is poorly understood. Here, we describe a widespread genetic element, defined by the presence of the Gamma-Mobile-Trio (GMT) proteins, that serves as a bacterial survival kit. We show that GMT-containing genomic islands are active mobile elements with cargo comprising various anti-phage defense systems, in addition to antibacterial type VI secretion system (T6SS) effectors and antibiotic resistance genes. We identify four new anti-phage defense systems encoded within GMT islands. A thorough investigation of one system reveals that it is triggered by a phage capsid protein to induce cell dormancy. Our findings underscore the need to broaden the concept of defense islands to include also antibacterial offensive tools, such as T6SS effectors, as they share the same mobile elements as defensive tools for dissemination.

microbiology↗

An efficient, scarless, selection-free technology for phage engineering

Many phage engineering technologies, mainly based on the CRISPR-Cas system, have been recently developed. Here we present a method to genetically engineer the Escherichia coli phages T5, T7, and P1 by adapting a technology, called pORTMAGE, developed for engineering bacterial genomes. The technology comprises of E. coli harboring a plasmid encoding a potent recombinase and a gene transiently silencing a repair system. Oligonucleotides with the desired phage mutation are electroporated into E. coli followed by infection of the target bacteriophage. The high efficiency of this technology, ranging from 1-14% of desired recombinants, allows low-throughput screening for the desired mutant. We demonstrated the use of this technology for single-base substitutions, for deletions of 50 bases, for insertions of 20 bases, and for three different phages. The technology may be adjusted for use across many bacterial and phage strains.

molecular biology↗