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February 28, 2026PLoS Pathogens0 citationsOpen Access

Baculoviruses exploit the mitotic kinase CDK1 to disrupt the nuclear lamina

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MMMei MoSYSilan YuYYYushan Yang

Key Points

  • This study investigates how baculoviruses affect the nuclear lamina and the role of CDK1 in this process.
  • Used in vitro phosphorylation assays to study CDK1 activity on lamin B
  • Applied phospho-specific reagents to examine phosphorylation effects
  • Employed site-directed mutagenesis for targeting specific phosphorylation sites
  • Conducted transmission electron microscopy for structural observations
  • Performed viral titer assays to assess effects on viral production
  • Baculovirus infection triggers disassembly of the endogenous nuclear lamina
  • Phosphorylation of lamin B at serine 47 by CDK1 is crucial for lamina disruption
  • This disruption is essential for effective nuclear egress of viral particles
  • Baculovirus-induced lamina disassembly is linked to increased production of infectious virions

Abstract

The nuclear lamina is disassembled during mitosis, and certain DNA viruses exploit this process to facilitate replication. While we previously showed that baculoviruses disrupt the exogenously integrated lamina, their impact on the endogenous structure, the underlying mechanism, and the functional consequences for viral replication remained unknown. Here, we demonstrate that baculovirus infection triggers endogenous nuclear lamina disassembly, and that phosphorylation of lamin B at the N-terminal “mitotic site” serine 47 (S47) is the key event driving this process. Using in vitro phosphorylation assays, phospho-specific reagents, and site-directed mutagenesis, we further show that baculoviruses exploit the mitotic kinase cyclin-dependent kinase 1 (CDK1) to directly phosphorylate S47, thereby disrupting the lamina. Critically, this baculovirus-induced lamina disruption is not an epiphenomenon; transmission electron microscopy and viral titer assays demonstrate it is essential for the efficient nuclear egress of nucleocapsids and the production of infectious budded virions. Our study thus defines a distinct mechanism of viral subversion, wherein a virus directly repurposes the core mitotic machinery to breach the nuclear lamina barrier, a finding that significantly advances our understanding of host‒pathogen conflict.

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Cite This Study

Mo et al. (2026) studied this question.

synapsesocial.com/papers/69a287130a974eb0d3c028c5https://doi.org/10.1371/journal.ppat.1013991
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