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Updated: Feb 1, 2026

In vitro Uncoating of HIV-1 Cores
Published on: November 8, 2011
Seneca Valley virus attachment and uncoating mediated by its receptor anthrax toxin receptor 1
Lin Cao1,2,3,4,5, Ran Zhang5, Tingting Liu2
1Drug Discovery Center for Infectious Disease, College of Pharmacy, Nankai University, 300071 Tianjin, China.
Abstract:
Seneca Valley virus (SVV) is an oncolytic picornavirus with selective tropism for neuroendocrine cancers. SVV mediates cell entry by attachment to the receptor anthrax toxin receptor 1 (ANTXR1). Here we determine atomic structures of mature SVV particles alone and in complex with ANTXR1 in both neutral and acidic conditions, as well as empty "spent" particles in complex with ANTXR1 in acidic conditions by cryoelectron microscopy. SVV engages ANTXR1 mainly by the VP2 DF and VP1 CD loops, leading to structural changes in the VP1 GH loop and VP3 GH loop, which attenuate interprotomer interactions and destabilize the capsid assembly. Despite lying on the edge of the attachment site, VP2 D146 interacts with the metal ion in ANTXR1 and is required for cell entry. Though the individual substitution of most interacting residues abolishes receptor binding and virus propagation, a serine-to-alanine mutation at VP2 S177 significantly increases SVV proliferation. Acidification of the SVV-ANTXR1 complex results in a major reconfiguration of the pentameric capsid assemblies, which rotate ∼20° around the icosahedral fivefold axes to form a previously uncharacterized spent particle resembling a potential uncoating intermediate with remarkable perforations at both two- and threefold axes. These structures provide high-resolution snapshots of SVV entry, highlighting opportunities for anticancer therapeutic optimization.
Insights
Seneca Valley virus (SVV) uses anthrax toxin receptor 1 (ANTXR1) for cell entry. Structural analysis reveals key interactions and a novel spent particle, offering insights for optimizing SVV-based cancer therapies.
Area of Science:
- Virology
- Structural Biology
- Oncology
Background:
- Seneca Valley virus (SVV) is an oncolytic picornavirus targeting neuroendocrine cancers.
- SVV infection initiates via binding to the anthrax toxin receptor 1 (ANTXR1).
Purpose of the Study:
- To determine the atomic structures of SVV particles interacting with ANTXR1.
- To elucidate the structural mechanisms of SVV cell entry and capsid destabilization.
- To identify potential targets for enhancing SVV's anticancer therapeutic efficacy.
Main Methods:
- Cryoelectron microscopy (cryo-EM) was employed to resolve structures.
- Atomic structures of mature SVV, SVV-ANTXR1 complexes (neutral and acidic), and empty particles were determined.
- Mutational analysis was performed to assess residue function in receptor binding and viral propagation.
Main Results:
- SVV engages ANTXR1 via VP2 DF and VP1 CD loops, inducing capsid destabilization.
- VP2 D146 interaction with ANTXR1 is crucial for cell entry.
- A VP2 S177A mutation significantly enhances SVV proliferation.
- Acidification triggers capsid reconfiguration into a novel spent particle with perforations.
Conclusions:
- High-resolution structures reveal the molecular details of SVV-ANTXR1 interaction and entry.
- Structural insights highlight VP2 S177 as a key residue for viral proliferation.
- The identified spent particle may represent an uncoating intermediate, informing therapeutic strategies.
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