Flexible RSV Prefusogenic Fusion Glycoprotein Exposes Multiple Neutralizing Epitopes that May Collectively Contribute

Nita Patel1, Jing-Hui Tian1, Rhonda Flores1

  • 1Novavax, Inc. 21 Firstfield Road, Gaithersburg, MD 20878, USA.

Vaccines
|October 17, 2020
PubMed

Insights

Developing a more effective respiratory syncytial virus (RSV) vaccine requires mimicking the natural prefusion F protein structure. Vaccines that maintain a "breathable" structure elicit broader, more potent neutralizing antibodies against RSV subtypes.

Area of Science:

  • Virology
  • Immunology
  • Vaccine Development

Background:

  • Human respiratory syncytial virus (RSV) causes significant lower respiratory tract infections, with limited vaccine and treatment options.
  • The RSV fusion (F) glycoprotein is a key target for vaccine development due to its role in viral entry.
  • F-trimers exist in metastable prefusion and stable postfusion states, with neutralizing epitopes present on intermediate structures.

Purpose of the Study:

  • To investigate the immunogenicity of prefusogenic F protein variants compared to native prefusogenic F.
  • To determine if vaccine strategies mimicking breathable F structures enhance protective immunity against RSV.

Main Methods:

  • Constructed three prefusion F variants (DS, Cav1, DS-Cav1) based on a prefusogenic F backbone.
  • Compared the immunogenicity of these variants against native prefusogenic F in two animal models.
  • Assessed antibody titers, epitope targeting, and cross-neutralization of RSV subtypes.

Main Results:

  • Native prefusogenic F was significantly more immunogenic, inducing broad antibody responses to multiple F structures.
  • Prefusogenic F elicited antibodies targeting key neutralizing epitopes, including prefusion-specific and conformation-independent sites.
  • Animals immunized with prefusogenic F showed enhanced cross-neutralization of RSV A and B subtypes compared to variants.

Conclusions:

  • Breathable trimeric vaccines mimicking native F-structure are crucial for broad RSV protection.
  • Locking F structures in a single conformation restricts access to critical neutralizing epitopes.
  • Findings have implications for designing vaccines against RSV and other viral fusion proteins.

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