8YWH image
Deposition Date 2024-03-31
Release Date 2025-04-02
Last Version Date 2025-07-16
Entry Detail
PDB ID:
8YWH
Title:
Cryo-EM structure of small and dead form SaCas9-RNA-DNA ternary complex (sdCas9)
Biological Source:
Source Organism:
Host Organism:
Method Details:
Experimental Method:
Resolution:
2.97 Å
Aggregation State:
PARTICLE
Reconstruction Method:
SINGLE PARTICLE
Macromolecular Entities
Structures with similar UniProt ID
Protein Blast
Polymer Type:polypeptide(L)
Molecule:sCas9 (Compact SaCas9)
Chain IDs:A
Chain Length:886
Number of Molecules:1
Biological Source:Staphylococcus aureus
Polymer Type:polyribonucleotide
Molecule:sgRNA
Chain IDs:B
Chain Length:98
Number of Molecules:1
Biological Source:synthetic construct
Polymer Type:polydeoxyribonucleotide
Molecule:Target DNA
Chain IDs:C
Chain Length:59
Number of Molecules:1
Biological Source:synthetic construct
Polymer Type:polydeoxyribonucleotide
Molecule:Non-target DNA
Chain IDs:D
Chain Length:59
Number of Molecules:1
Biological Source:synthetic construct
Ligand Molecules
Primary Citation
Structure-Guided Engineering of Thermodynamically Enhanced SaCas9 for Improved Gene Suppression.
Adv Mater 37 e2404680 e2404680 (2025)
PMID: 38944889 DOI: 10.1002/adma.202404680

Abstact

Proteins with multiple domains play pivotal roles in various biological processes, necessitating a thorough understanding of their structural stability and functional interplay. Here, a structure-guided protein engineering approach is proposed to develop thermostable Cas9 (CRISPR-associated protein 9) variant for CRISPR (Clustered Regularly Interspaced Short Palindromic Repeats) interference applications. By employing thermodynamic analysis, combining distance mapping and molecular dynamics simulations, deletable domains are identified to enhance stability while preserving the DNA recognition function of Cas9. The resulting engineered Cas9, termed small and dead form Cas9, exhibits improved thermostability and maintains target DNA recognition function. Cryo-electron microscopy analysis reveals structural integrity with reduced atomic density in the deleted domain. Fusion with functional elements enables intracellular delivery and nuclear localization, demonstrating efficient gene suppression in diverse cell types. Direct delivery in the mouse brain shows enhanced knockdown efficiency, highlighting the potential of structure-guided engineering to develop functional CRISPR systems tailored for specific applications. This study underscores the significance of integrating computational and experimental approaches for protein engineering, offering insights into designing tailored molecular tools for precise biological interventions.

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Primary Citation of related structures
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