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Published on: July 9, 2011
Engineered Dengue Virus Domain III Proteins Elicit Cross-Neutralizing Antibody Responses in Mice
Julia C Frei1, Ariel S Wirchnianski1, Jennifer Govero2
1Department of Biochemistry, Albert Einstein College of Medicine, Bronx, New York, USA.
Abstract:
Dengue virus is the most globally prevalent mosquito-transmitted virus. Primary infection with one of four cocirculating serotypes (DENV-1 to -4) causes a febrile illness, but secondary infection with a heterologous serotype can result in severe disease, due in part to antibody-dependent enhancement of infection (ADE). In ADE, cross-reactive but nonneutralizing antibodies, or subprotective levels of neutralizing antibodies, promote uptake of antibody-opsonized virus in Fc-γ receptor-positive cells. Thus, elicitation of broadly neutralizing antibodies (bNAbs), but not nonneutralizing antibodies, is desirable for dengue vaccine development. Domain III of the envelope glycoprotein (EDIII) is targeted by bNAbs and thus is an attractive immunogen. However, immunization with EDIII results in sera with limited neutralization breadth. We developed "resurfaced" EDIII immunogens (rsDIIIs) in which the A/G strand epitope that is targeted by bNAb 4E11 is maintained but less desirable epitopes are masked. RsDIIIs bound 4E11, but not serotype-specific or nonneutralizing antibodies. One rsDIII and, unexpectedly, wild-type (WT) DENV-2 EDIII elicited cross-neutralizing antibody responses against DENV-1 to -3 in mice. While these sera were cross-neutralizing, they were not sufficiently potent to protect AG129 immunocompromised mice at a dose of 200 μl (50% focus reduction neutralization titer [FRNT50], ∼1:60 to 1:130) against mouse-adapted DENV-2. Our results provide insight into immunogen design strategies based on EDIII.IMPORTANCE Dengue virus causes approximately 390 million infections per year. Primary infection by one serotype causes a self-limiting febrile illness, but secondary infection by a heterologous serotype can result in severe dengue syndrome, which is characterized by hemorrhagic fever and shock syndrome. This severe disease is thought to arise because of cross-reactive, non- or poorly neutralizing antibodies from the primary infection that are present in serum at the time of secondary infection. These cross-reactive antibodies enhance the infection rather than controlling it. Therefore, induction of a broadly and potently neutralizing antibody response is desirable for dengue vaccine development. Here, we explore a novel strategy for developing immunogens based on domain III of the E glycoprotein, where undesirable epitopes (nonneutralizing or nonconserved) are masked by mutation. This work provides fundamental insight into the immune response to domain III that can be leveraged for future immunogen design.
Insights
Developing novel dengue virus (DENV) vaccine immunogens, researchers created "resurfaced" domain III (rsDIII) constructs. These rsDIIIs aim to elicit broadly neutralizing antibodies (bNAbs) crucial for preventing severe dengue disease, offering insights into effective immunogen design.
Area of Science:
- Virology and Immunology
- Vaccine Development
- Molecular Biology
Background:
- Dengue virus (DENV) poses a significant global health threat, causing millions of infections annually.
- Secondary DENV infections can lead to severe disease due to antibody-dependent enhancement (ADE), where non-neutralizing antibodies promote viral entry.
- Developing a dengue vaccine requires eliciting broadly neutralizing antibodies (bNAbs) to overcome ADE and provide cross-serotype protection.
Purpose of the Study:
- To design and evaluate novel immunogens based on DENV envelope glycoprotein domain III (EDIII) for improved vaccine strategies.
- To investigate if masking undesirable epitopes on EDIII can enhance the generation of broadly neutralizing antibodies.
- To assess the immunogenicity and neutralization breadth of 'resurfaced' EDIII (rsDIII) immunogens.
Main Methods:
- Engineered 'resurfaced' EDIII (rsDIII) immunogens by masking specific epitopes while preserving the target of a known bNAb (4E11).
- Tested rsDIII immunogens for binding to specific antibodies, including bNAb 4E11 and serotype-specific antibodies.
- Immunized mice with rsDIII and wild-type (WT) DENV-2 EDIII, then analyzed the resulting sera for cross-neutralizing activity against DENV serotypes 1-3.
Main Results:
- RsDIIIs successfully bound the target bNAb 4E11 and did not bind to serotype-specific or nonneutralizing antibodies.
- Both one rsDIII construct and WT DENV-2 EDIII unexpectedly induced cross-neutralizing antibody responses against DENV-1, DENV-2, and DENV-3 in mice.
- The induced cross-neutralizing antibodies, while broad, were not potent enough to protect immunocompromised mice from a DENV-2 challenge.
Conclusions:
- Strategies involving modifying EDIII immunogens, such as resurfacing, can influence the breadth of antibody responses.
- EDIII-based immunogens hold potential for dengue vaccine development, but further optimization is needed to achieve potent neutralizing activity.
- This study provides valuable insights into immunogen design principles for eliciting protective immunity against dengue virus.
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