EMD-17794

Single-particle
3.0 Å
EMD-17794 Deposition: 05/07/2023
Map released: 09/08/2023
Last modified: 21/08/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links

EMD-17794

HK97 small terminase in complex with DNA after focused classification

EMD-17794

Single-particle
3.0 Å
EMD-17794 Deposition: 05/07/2023
Map released: 09/08/2023
Last modified: 21/08/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Sample Organism: Byrnievirus HK97, Hendrixvirus, Escherichia phage HK97
Sample: HK97 small terminase in complex with DNA
Fitted models: 8pop (Avg. Q-score: 0.561)
Raw data: EMPIAR-11620

Deposition Authors: Chechik M , Greive SJ , Antson AA , Jenkins HT
Structural basis for DNA recognition by a viral genome-packaging machine.
Chechik M , Greive SJ , Antson AA , Jenkins HT
(2024) PNAS , 121 , e2406138121 - e2406138121
PUBMED: 39116131
DOI: doi:10.1073/pnas.2406138121
ISSN: 1091-6490
ASTM: PNASA6
Abstract:
DNA recognition is critical for assembly of double-stranded DNA viruses, particularly for the initiation of packaging the viral genome into the capsid. The key component that recognizes viral DNA is the small terminase protein. Despite prior studies, the molecular mechanism for DNA recognition remained elusive. Here, we address this question by identifying the minimal site in the bacteriophage HK97 genome specifically recognized by the small terminase and determining the structure of this complex by cryoEM. The circular small terminase employs an entirely unexpected mechanism in which DNA transits through the central tunnel, and sequence-specific recognition takes place as it emerges. This recognition stems from a substructure formed by the N- and C-terminal segments of two adjacent protomers which are unstructured when DNA is absent. Such interaction ensures continuous engagement of the small terminase with DNA, enabling it to slide along the DNA while simultaneously monitoring its sequence. This mechanism allows locating and instigating packaging initiation and termination precisely at the specific cos sequence.