Creating and characterizing individual genetic variants remains limited in scale, compared to the tremendous variation both existing in nature and envisioned by genome engineers. Here we introduce retron library recombineering (RLR), a methodology for high-throughput functional screens that surpasses the scale and specificity of CRISPR-Cas methods. We use the targeted reverse-transcription activity of retrons to produce single-stranded DNA (ssDNA) in vivo, incorporating edits at >90% efficiency and enabling multiplexed applications. RLR simultaneously introduces many genomic variants, producing pooled and barcoded variant libraries addressable by targeted deep sequencing. We use RLR for pooled phenotyping of synthesized antibiotic resistanc...
Simultaneously detecting CRISPR-based perturbations and induced transcriptional changes in the same ...
<div><p>Simultaneously detecting CRISPR-based perturbations and induced transcriptional changes in t...
Reverse genetic screens have driven gene annotation and target discovery in model organisms. However...
Exogenous DNA can be a template to precisely edit a cell's genome. However, the delivery of in vitro...
The capacity to diversify genetic codes advances our ability to understand and engineer biological s...
RNAi screening using pooled shRNA libraries is a valuable tool for identifying genetic regulators of...
Abstract Deep mutational scanning can provide significant insights into the function of essential ge...
DNA sequence information underpins genetic research, enabling discoveries of important biological or...
<p>Optimal combinations of mutations were identified by the recombination-based technique of synthet...
Staphylococcus aureus is an important human pathogen, but studies of the organism have suffered from...
<div><p>Understanding the functional relevance of DNA variants is essential for all exome and genome...
Pathogens such as fungi, bacteria and especially viruses, are highly variable even within an individ...
A central goal of genetics is to define the phenotypic consequences of genetic perturbations. Single...
Genetic screening based on loss-of-function phenotypes is a powerful discovery tool in biology. Alth...
The systematic perturbation of genomes using CRISPR/Cas9 deciphers gene function at an unprecedented...
Simultaneously detecting CRISPR-based perturbations and induced transcriptional changes in the same ...
<div><p>Simultaneously detecting CRISPR-based perturbations and induced transcriptional changes in t...
Reverse genetic screens have driven gene annotation and target discovery in model organisms. However...
Exogenous DNA can be a template to precisely edit a cell's genome. However, the delivery of in vitro...
The capacity to diversify genetic codes advances our ability to understand and engineer biological s...
RNAi screening using pooled shRNA libraries is a valuable tool for identifying genetic regulators of...
Abstract Deep mutational scanning can provide significant insights into the function of essential ge...
DNA sequence information underpins genetic research, enabling discoveries of important biological or...
<p>Optimal combinations of mutations were identified by the recombination-based technique of synthet...
Staphylococcus aureus is an important human pathogen, but studies of the organism have suffered from...
<div><p>Understanding the functional relevance of DNA variants is essential for all exome and genome...
Pathogens such as fungi, bacteria and especially viruses, are highly variable even within an individ...
A central goal of genetics is to define the phenotypic consequences of genetic perturbations. Single...
Genetic screening based on loss-of-function phenotypes is a powerful discovery tool in biology. Alth...
The systematic perturbation of genomes using CRISPR/Cas9 deciphers gene function at an unprecedented...
Simultaneously detecting CRISPR-based perturbations and induced transcriptional changes in the same ...
<div><p>Simultaneously detecting CRISPR-based perturbations and induced transcriptional changes in t...
Reverse genetic screens have driven gene annotation and target discovery in model organisms. However...