Exapted CRISPR-Cas12f homologues drive RNA-guided transcription.

Hoffmann, Florian T; Wiegand, Tanner; Palmieri, Adriana I; Glass-Klaiber, Juniper; Xiao, Renjian; Tang, Stephen; Le, Hoang C; Meers, Chance et al. · Nature · 2026

basic_science · Level V

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Abstract

Bacterial transcription initiation is a tightly regulated process that canonically relies on sequence-specific promoter recognition by dedicated sigma (σ) factors, leading to functional DNA engagement by RNA polymerase (RNAP)<sup>1</sup>. Although the seven σ factors in Escherichia coli have been extensively characterized<sup>2</sup>, Bacteroidetes species encode dozens of specialized, extracytoplasmic function σ factors (σ<sup>E</sup>) whose precise roles are unknown, pointing to additional layers of regulatory potential<sup>3</sup>. Here we uncover a mechanism of RNA-guided gene activation involving the coordinated action of σ<sup>E</sup> factor in complex with nuclease-dead Cas12f (dCas12f). We screened a large set of genetically linked dCas12f and σ<sup>E</sup> homologues in E. coli using RNA and chromatin immunoprecipitation experiments, revealing systems that exhibit robust guide RNA enrichment and DNA target binding with a minimal 5'-G target-adjacent motif. Recruitment of σ<sup>E</sup> was dependent on dCas12f and guide RNA, suggesting direct protein-protein interactions, and co-expression experiments demonstrated that the dCas12f-gRNA-σ<sup>E</sup> ternary complex was competent for programmable recruitment of the RNAP holoenzyme. Remarkably, dCas12f-RNA-σ<sup>E</sup> complexes drove potent gene expression in the absence of any requisite promoter motifs, with de novo transcription start sites defined exclusively by the relative distance from the dCas12f-mediated R-loop. Our findings highlight a new paradigm of RNA-guided transcription that embodies natural features reminiscent of CRISPR activation (CRISPRa) technology<sup>4,5</sup>.