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Biology subjects

Macrae, R.

Publications and source records attributed to Macrae, R..

2 recordsLinked to original sources

RNA-guided transcriptional repression by TIGR-Tas systems

Tandem interspaced guide RNA (TIGR)-TIGR-associated protein (Tas) systems are a widespread family of RNA-guided DNA-targeting proteins whose diversity has remained uncharacterized because their arrays, unlike CRISPR arrays, lack the sequence conservation required by existing annotation tools. We developed TIGRFinder, a motif-based pipeline that identified 6,685 TIGR arrays from genomic and metagenomic data. Phylogenetic and structural analysis of Tas proteins revealed clade-specific insertions in stem-loop binding Tas proteins that co-vary with features of their cognate tigRNAs. Cryo-electron microscopy structures of two stem-loop binding TasR ribonucleoprotein complexes demonstrate how these protein insertions directly accommodate extended tigRNA stems while maintaining DNA binding through catalytically inactive RuvC domains. We also show that these catalytically dead TasR proteins, along with the nuclease-lacking TasA, function as RNA-guided transcriptional repressors. These findings establish TIGR-Tas as a functionally diverse family of RNA-guided effectors, with comprehensive annotations available through TIGRSafari (https://tigr.bio) to support further exploration and engineering.

molecular biology↗

In vitro-reconstituted Drosophila Arc capsids deliver gene editors to dystrophic muscle

The intracellular delivery of therapeutic macromolecules remains a major challenge in biomedicine. Here we reconstitute the Drosophila melanogaster Arc1 (dArc1) retroelement-derived capsid entirely from purified recombinant protein components and in vitro transcribed RNA, creating a fully defined, cell-free assembled protein nanoparticle system. Through affinity engineering of the dArc1 RNA-binding domain, we enable efficient encapsulation of mRNA payloads and Cas9 ribonucleoproteins. Unexpectedly, we discover that dArc1 capsids bind mammalian cells through a direct interaction with the surface receptor SORCS2. Leveraging this interaction, we show that intramuscular injection of dArc1 capsids carrying Cas9 gene editors achieves up to 18% exon skipping and restores dystrophin expression in muscle fibers of mdx mice, a model of Duchenne muscular dystrophy. Enhanced delivery efficiency in regenerating and dystrophic muscle correlates with upregulated SORCS2 expression, supporting our finding that SORCS2 facilitates cellular uptake of dArc1 capsids. This work demonstrates the potential of in vitro-assembled protein nanoparticles for delivery of molecular cargoes.

molecular biology↗