TechnologiesDeep sequencing of viral populations
sequence and population analysis
Recorded terms: deep sequencing; deep sequencing of barcodes; deep sequencing of virus populations; escape mutant sequencing; whole-genome consensus sequencing
2020 · Journal of Virology · collaborative
A library of 135 barcoded coxsackievirus B3 clones shows that orally inoculated virus reaches systemic tissues within 20 minutes and replicates as a diverse population, after which fewer than three variants come to dominate every tissue in the animal without any detectable adaptive mutation.
2019 · Cold Spring Harbor Perspectives in Medicine · lab-led
Frames influenza A virus as a compact genetic circuit whose modules can be disrupted, tagged or replaced, and organizes two decades of virus engineering into a design vocabulary of tracking, override, positioning and silencing modules that turns virus construction into a method of inquiry.
2018 · Cell Reports · collaborative
A survival-based genome-wide CRISPR knockout screen in human lung epithelial cells selected with an avian H5N1 isolate recovers sialic acid biosynthesis and transport as the dominant requirement for influenza entry, with the CMP-sialic acid transporter SLC35A1 as the top hit, and identifies the transcriptional repressor capicua as a negative regulator of cell-intrinsic immunity.
2018 · Proceedings of the National Academy of Sciences · lab-led
Applying one uniform small RNA-based selective pressure to four virus families in vertebrate cells shows that the ability to escape it tracks with the capacity for polymerase template switching rather than with genome polarity as such, since positive-strand viruses excise the targeted sequence while negative-strand viruses are cleared and a recombination-defective poliovirus cannot escape.
2014 · Cell Host & Microbe · lab-led
Genetically barcoded influenza A virus libraries tracked through cell culture, embryonated eggs, guinea pigs, ferrets and mice show that transmission bottlenecks differ by route and recipient, with airborne transmission reducing a diverse inoculum to as few as two founder clones.
2012 · PLoS Pathogens · lab-led
Inserting hematopoietic-specific miR-142 target sites into the dengue virus 3-prime untranslated region excludes replication from macrophages and dendritic cells in vivo and abolishes spread to other tissues, identifying hematopoietic cells as the dominant amplification compartment.