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2 result(s) for "Waffenschmidt, Nils"
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Precise in vivo RNA base editing with a wobble-enhanced circular CLUSTER guide RNA
Recruiting the endogenous editing enzyme adenosine deaminase acting on RNA (ADAR) with tailored guide RNAs for adenosine-to-inosine (A-to-I) RNA base editing is promising for safely manipulating genetic information at the RNA level. However, the precision and efficiency of editing are often compromised by bystander off-target editing. Here, we find that in 5′-U A N triplets, which dominate bystander editing, G•U wobble base pairs effectively mitigate off-target events while maintaining high on-target efficiency. This strategy is universally applicable to existing A-to-I RNA base-editing systems and complements other suppression methods such as G•A mismatches and uridine (U) depletion. Combining wobble base pairing with a circularized format of the CLUSTER approach achieves highly precise and efficient editing (up to 87%) of a disease-relevant mutation in the Mecp2 transcript in cell culture. Virus-mediated delivery of the guide RNA alone realizes functional MeCP2 protein restoration in the central nervous system of a murine Rett syndrome model with editing yields of up to 19% and excellent bystander control in vivo. Using G•U wobble base pairs at specific loci increases RNA base-editing precision and efficiency.
Purine nucleotide limitation undermines antibiotic action in clinical Escherichia coli
Metabolic variation across pathogenic bacterial strains can impact their susceptibility to antibiotics1–4 and promote evolution of antimicrobial resistance (AMR)5,6. However, little is known about which metabolic pathways contribute to AMR, and the underlying mechanisms. Here, we measured antibiotic resistance of 15,120 Escherichia coli mutants, each with a single amino acid change in one of 346 essential proteins. Most of the mutant strains that showed resistance to either of the two tested antibiotics carried mutations in metabolic genes. Resistance mutations against a β-lactam antibiotic (carbenicillin) were associated with purine nucleotide biosynthesis and limited the supply of ATP. We show that ATP limitation confers both resistance and tolerance against β-lactam antibiotics by upregulating the purine nucleoside transporter PunC. These results are clinically relevant, because an E. coli strain isolated from a clinical specimen had a purine nucleotide limitation, which reduced its susceptibility to antibiotics.