Summary information and primary citation
- PDB-id
-
11hr;
DSSR-derived features in text and
JSON formats; DNAproDB
- Class
- RNA binding protein-RNA-DNA
- Method
- cryo-EM (2.8 Å)
- Summary
- Engineered iscb and wrna bound to target ssDNA
- Reference
-
Xu C, Yang Q, Niu X, Ke A (2026): "Structure
basis for single-strand nucleic acid targeting by IscB
and variants." Nucleic Acids Res.,
54. doi: 10.1093/nar/gkag607.
- Abstract
- Transposon-encoded IscB was defined as the evolutionary
ancestor of CRISPR-Cas9. This compact RNA-guided
endonuclease has since been engineered for genome-editing
applications. We previously repurposed IscB and related
Cas9s as efficient RNA editors by removing their
double-stranded DNA (dsDNA) recognition module, the
target-adjacent motif (TAM)/protospacer adjacent
motif-interacting domain. Here, we report four
cryo-electron microscopy structures of IscB, with or
without TAM-interaction domain (TID), in complex with
single-stranded nucleic acid (ssNA) targets. Structures
reveal that, regardless of TID presence, IscB engages ssNA
using the same mechanism. IscB initially facilitates
formation of a 10-nt seed duplex with ssNA; further
base-pairing is blocked by an alternatively positioned HNH
nuclease that acts as a roadblock. In this intermediate
state, neither HNH nor RuvC is competent for target
cleavage. Only upon full duplex formation is the HNH
roadblock dislodged by the duplex extension between guide
RNA and ssNA. HNH and RuvC nuclease active sites become
exposed as the result. A similar set of conformational
rearrangements likely governs IscB activity during dsDNA
target interrogation. Guided by the structural and
mechanistic insights, we introduced mutations to either
improve ssNA binding or ease HNH dislodging. Both
approaches improved the RNA-targeting efficiency of
IscB in vitro and in human cells.