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Updated: Mar 29, 2026

Substrate Generation for Endonucleases of CRISPR/Cas Systems
Published on: September 8, 2012
The CRISPR-associated Csx1 protein of Pyrococcus furiosus is an adenosine-specific endoribonuclease
Nolan F Sheppard1, Claiborne V C Glover1, Rebecca M Terns1
1Department of Biochemistry and Molecular Biology, University of Georgia, Athens, Georgia 30602, USA.
Abstract:
Prokaryotes are frequently exposed to potentially harmful invasive nucleic acids from phages, plasmids, and transposons. One method of defense is the CRISPR-Cas adaptive immune system. Diverse CRISPR-Cas systems form distinct ribonucleoprotein effector complexes that target and cleave invasive nucleic acids to provide immunity. The Type III-B Cmr effector complex has been found to target the RNA and DNA of the invader in the various bacterial and archaeal organisms where it has been characterized. Interestingly, the gene encoding the Csx1 protein is frequently located in close proximity to the Cmr1-6 genes in many genomes, implicating a role for Csx1 in Cmr function. However, evidence suggests that Csx1 is not a stably associated component of the Cmr effector complex, but is necessary for DNA silencing by the Cmr system in Sulfolobus islandicus. To investigate the function of the Csx1 protein, we characterized the activity of recombinant Pyrococcus furiosus Csx1 against various nucleic acid substrates. We show that Csx1 is a metal-independent, endoribonuclease that acts selectively on single-stranded RNA and cleaves specifically after adenosines. The RNA cleavage activity of Csx1 is dependent upon a conserved HEPN motif located within the C-terminal domain of the protein. This motif is also key for activity in other known ribonucleases. Collectively, the findings indicate that invader silencing by Type III-B CRISPR-Cas systems relies both on RNA and DNA nuclease activities from the Cmr effector complex as well as on the affiliated, trans-acting Csx1 endoribonuclease.
Insights
The CRISPR-Cas immune system uses Csx1 protein as an endoribonuclease to degrade invading RNA. This enzyme, essential for prokaryotic defense, cleaves single-stranded RNA after specific adenosine bases.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Prokaryotes possess CRISPR-Cas adaptive immune systems to defend against invasive nucleic acids like phages and plasmids.
- Type III-B CRISPR-Cas systems utilize Cmr effector complexes to target and degrade foreign RNA and DNA.
- The Csx1 protein, often found near Cmr genes, is implicated in Cmr system function but not as a stable complex component.
Purpose of the Study:
- To investigate the biochemical activity and function of the Csx1 protein.
- To elucidate the role of Csx1 in the defense mechanisms of Type III-B CRISPR-Cas systems.
Main Methods:
- Recombinant Pyrococcus furiosus Csx1 protein was purified and characterized.
- Enzymatic assays were performed using various nucleic acid substrates to determine Csx1 activity.
- Mutational analysis focused on the conserved HEPN motif to assess its role in RNA cleavage.
Main Results:
- Csx1 functions as a metal-independent endoribonuclease.
- Csx1 exhibits selective cleavage of single-stranded RNA, specifically after adenosine residues.
- The conserved HEPN motif in Csx1's C-terminal domain is crucial for its RNA cleavage activity.
Conclusions:
- The Csx1 protein is a trans-acting endoribonuclease that contributes to invader silencing in Type III-B CRISPR-Cas systems.
- CRISPR-Cas mediated immunity involves both the Cmr effector complex's nuclease activities and the auxiliary Csx1 enzyme.
- Understanding Csx1's function provides insights into the multifaceted defense strategies of prokaryotes against foreign genetic elements.
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