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April 3, 2026The EMBO Journal0 citationsOpen Access

A leader-repeat hairpin blocks extraneous CRISPR RNA production in diverse CRISPR-Cas13 systems

AMAngela MigurMFMaximilian FeussnerCLCan Liao

Key Points

  • The aim is to understand how leader RNAs influence crRNA production in type VI CRISPR-Cas systems.
  • Examined diverse type VI CRISPR-Cas systems
  • Utilized the VI-B2 system from Porphyromonas gingivalis
  • Investigated leader RNA and repeat interactions
  • Performed structure prediction for leader-repeat hairpins
  • Leader RNA prevents formation of extraneous crRNA by blocking the first repeat processing
  • Disruption of the hairpin allows ecrRNA production, diminishing crRNA needed for phage defense
  • Leader-repeat hairpins are conserved across multiple type VI CRISPR-Cas subtypes

Abstract

Abstract CRISPR RNAs (crRNAs) guide recognition and targeting of intracellular invaders as part of adaptive immunity by CRISPR-Cas systems. crRNAs are transcribed from CRISPR arrays of conserved repeats interlaced with invader-derived spacers. While crRNA production is essential for immunity, its optimization for defense remains poorly understood. Here, we show that, in diverse RNA-targeting type VI CRISPR-Cas systems, the leader RNA encoded upstream of the CRISPR array prevents formation of an invader-independent extraneous crRNA (ecrRNA) by blocking processing of the first repeat. Using the VI-B2 system from Porphyromonas gingivalis as a model, we demonstrate that the leader RNA and first repeat form a conserved inhibitory hairpin that precludes binding and processing by the system’s Cas13b nuclease. Disrupting this hairpin enables ecrRNA production, which in turn can deplete invader-derived crRNAs and reduce Cas13b-mediated phage defense. Structure prediction indicates that these leader-repeat hairpins are widespread across diverse type VI subtypes, highlighting a conserved regulatory mechanism. Our findings reveal how a prevalent branch of CRISPR-Cas systems suppresses ecrRNA formation to promote RNA-guided immunity.

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Cite This Study

Migur et al. (2026) studied this question.

synapsesocial.com/papers/69cf5ebc5a333a821460d463https://doi.org/10.1038/s44318-026-00769-1
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