Characterization of virus-like particles assembled by co-expression of BmCPV capsid shell protein and large

Feifei Ren1, Jiming Yan1, Dimitrios Kontogiannatos2

  • 1Guangdong Provincial Key Laboratory of Agro-animal Genomics and Molecular Breeding, College of Animal Science, South China Agricultural University, Guangzhou 510642, China.

Insights

Bombyx mori cytoplasmic polyhedrosis virus (BmCPV) major capsid shell protein (CSP) and Large Protrusion Protein (LPP) co-assembled virus-like particles (VLPs) mimic native virions. CSP-LPP VLPs, unlike CSP-only VLPs, activate innate immunity and RNAi pathways in silkworms.

Area of Science:

  • Virology
  • Structural Biology
  • Biotechnology

Background:

  • Bombyx mori cytoplasmic polyhedrosis virus (BmCPV) is a dsRNA virus in the Reoviridae family.
  • The major capsid shell protein (CSP) self-assembles into virus-like particles (VLPs).
  • The Large Protrusion Protein (LPP) interacts with CSP to stabilize the native BmCPV capsid.

Purpose of the Study:

  • To investigate the co-assembly of CSP and LPP into BmCPV VLPs.
  • To compare the biological activity of CSP-only VLPs with CSP-LPP co-assembled VLPs and native BmCPV.

Main Methods:

  • Utilized the Ac-MultiBac system for producing CSP-based and CSP-LPP co-assembled VLPs.
  • Employed transmission electron microscopy (TEM) to analyze VLP structure.
  • Administered VLPs ex vivo to silkworm midgut tissue to assess immune responses.

Main Results:

  • TEM revealed that LPP co-assembly did not alter VLP structure compared to CSP-only VLPs.
  • CSP-LPP VLPs and native BmCPV induced significant transcriptional responses in innate immunity and RNAi pathways.
  • CSP-only VLPs showed minimal transcriptional response, indicating LPP's crucial role in immune activation.

Conclusions:

  • CSP and LPP form stable VLPs with a structure similar to native BmCPV virions via a "Plug and Display" mechanism.
  • Co-assembly of CSP and LPP is essential for BmCPV VLPs to elicit innate immune and RNAi responses.
  • BmCPV-derived VLPs, particularly CSP-LPP co-assembled ones, represent a viable platform for displaying exogenous proteins and potential biotechnological applications.

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