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CryoEM structure at 9A resolution of an adenovirus vector targeted to hematopoietic cells
Susan D Saban1, Ronald R Nepomuceno, Lance D Gritton
1Department of Molecular Physiology and Biophysics, Center for Structural Biology, Vanderbilt University Medical Center, Nashville, TN 37232, USA.
Abstract:
We report a sub-nanometer resolution cryo-electron microscopy (cryoEM) structural analysis of an adenoviral vector, Ad35F, comprised of an adenovirus type 5 (Ad5) capsid pseudo-typed with an Ad35 fiber. This vector transduces human hematopoietic cells via association of its fiber protein with CD46, a member of the complement regulatory protein family. Major advances in data acquisition and image processing allowed a significant improvement in resolution compared to earlier structures. Analysis of the cryoEM density was enhanced by docking the crystal structures of both the hexon and penton base capsid proteins. CryoEM density was observed for hexon residues missing from the crystal structure that include hypervariable regions and the epitope of a neutralizing monoclonal antibody. Within the penton base, density was observed for the integrin-binding RGD loop missing from the crystal structure and for the flexible beta ribbon of the variable loop on the side of the penton base. The Ad35 fiber is flexible, consistent with the sequence insert in the third beta-spiral repeat. On the inner capsid surface density is revealed at the base of the hexons and below the penton base. A revised model is presented for protein IX within the virion. Well-defined density was assigned to a conserved domain in the N terminus of protein IX required for incorporation into the virion. For the C-terminal domain of protein IX two alternate conformations are proposed, either binding on the capsid surface or extending away from the capsid. This model is consistent with the tolerance of the C terminus for inserted ligands and its potential use in vector retargeting. This structural study increases our knowledge of Ad capsid assembly, antibody neutralization mechanisms, and may aid further improvements in gene delivery to important human cell types.
Insights
High-resolution cryo-electron microscopy reveals the detailed structure of Ad35F adenoviral vectors. This provides new insights into adenovirus capsid assembly and antibody neutralization for improved gene delivery.
Area of Science:
- Structural biology
- Virology
- Gene therapy
Background:
- Adenoviral vectors are crucial for gene therapy, but their structure-function relationships require detailed understanding.
- Adenovirus type 5 (Ad5) capsids pseudo-typed with Ad35 fibers (Ad35F) target human hematopoietic cells via CD46 interaction.
- Previous structural analyses had limitations in resolution and completeness.
Purpose of the Study:
- To determine the sub-nanometer resolution cryo-electron microscopy (cryoEM) structure of the Ad35F adenoviral vector.
- To elucidate the structural details of capsid proteins, including regions not resolved in crystal structures.
- To provide a revised model for protein IX and understand its role in capsid assembly and potential for vector retargeting.
Main Methods:
- Sub-nanometer resolution cryo-electron microscopy (cryoEM) data acquisition and image processing.
- Docking of crystal structures of hexon and penton base capsid proteins into cryoEM density.
- Analysis of cryoEM density to identify and model previously unresolved regions and protein IX.
Main Results:
- Achieved significant improvement in resolution compared to earlier structures.
- Identified density for hypervariable regions and a neutralizing antibody epitope on hexon.
- Resolved the integrin-binding RGD loop and flexible beta ribbon on the penton base.
- Observed density for a conserved N-terminal domain of protein IX required for virion incorporation.
- Proposed two alternate conformations for the C-terminal domain of protein IX.
Conclusions:
- The high-resolution structure reveals previously uncharacterized details of the Ad35F adenoviral vector.
- Structural insights enhance understanding of adenovirus capsid assembly and antibody neutralization mechanisms.
- The findings support the potential use of protein IX modifications for vector retargeting and improved gene delivery.
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