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Cabrera, M.

Publications and source records attributed to Cabrera, M..

2 recordsLinked to original sources

Ribosome rescue inhibitors clear Neisseria gonorrhoeae in vivo using a new mechanism

The trans-translation pathway for rescuing stalled ribosomes is conserved and essential in bacterial pathogens but has no mammalian homolog, making it an ideal target for new antibiotics. We previously reported the discovery of a family of acylaminooxadiazoles that selectively inhibit trans-translation, resulting in broad-spectrum antibiotic activity. Optimization of the pharmacokinetic and antibiotic properties of the acylaminooxadiazoles produced MBX-4132, which cleared multiple-drug resistant Neisseria gonorrhoeae infection in mice after a single oral dose. Cryo-EM studies of non-stop ribosomes showed that acylaminooxadiazoles bind to a unique site near the peptidyl-transfer center and significantly alter the conformation of ribosomal protein L27, suggesting a novel mechanism for specific inhibition of trans-translation by these molecules. One Sentence SummaryRibosome rescue inhibitors reveal a new conformation of the ribosome and kill drug-resistant Neisseria gonorrhoeae in vivo.

microbiology

Imaging cell lineage with a synthetic digital recording system

Multicellular development depends on the differentiation of cells into specific fates with precise spatial organization. Lineage history plays a pivotal role in cell fate decisions, but is inaccessible in most contexts. Engineering cells to actively record lineage information in a format readable in situ would provide a spatially resolved view of lineage in diverse developmental processes. Here, we introduce a serine integrase-based recording system that allows in situ readout, and demonstrate its ability to reconstruct lineage relationships in cultured stem cells and flies. The system, termed intMEMOIR, employs an array of independent three-state genetic memory elements that can recombine stochastically and irreversibly, allowing up to 59,049 distinct digital states. intMEMOIR accurately reconstructed lineage trees in stem cells and enabled simultaneous analysis of single cell clonal history, spatial position, and gene expression in Drosophila brain sections. These results establish a foundation for microscopy-readable clonal analysis and recording in diverse systems. One sentence summaryA new genetic editing system termed intMEMOIR reveals the lineage histories of individual cells directly within their native tissue context.

synthetic biology