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Structural and functional significance of Aedes aegypti AgBR1 flavivirus immunomodulator
Ane Martinez-Castillo1, Diego Barriales2, Mikel Azkargorta3
1Structure and Cell Biology of Viruses Lab, Center for Cooperative Research in Biosciences (CIC bioGUNE) - Basque Research and Technology Alliance (BRTA), Derio, Spain.
Abstract:
Zika virus (ZIKV), an arbovirus, relies on mosquitoes as vectors for its transmission. During blood feeding, mosquitoes inoculate saliva containing various proteins. Recently, AgBR1, an Aedes aegypti salivary gland protein, has gained attention for its immunomodulatory potential, along with another protein, called NeSt1. We have determined the crystal structure of AgBR1 at 1.2 Å resolution. Despite its chitinase-like fold, we demonstrated that AgBR1 does not bind to chitobiose or chitinhexaose, while a key mutation in the catalytic site abrogates enzymatic activity, suggesting that the protein's function has been repurposed. Our study also shows that AgBR1 and NeSt1, when presented to murine primary macrophages, alter cellular pathways related to virus entry by endocytosis, immune response, and cell proliferation. AgBR1 (and NeSt1) do not directly bind to the Zika virus or modulate its replication. We propose that their immunomodulatory effects on Zika virus transmission are through regulation of host-cell response, a consequence of evolutionary cross talk and virus opportunism. These structural and functional insights are prerequisites for developing strategies to halt the spread of mosquito-borne disease.IMPORTANCEOur study informs on the structural and functional significance of a mosquito salivary gland protein, AgBR1 (along with another protein called NeSt1), in the transmission of the Zika virus (ZIKV), a mosquito-borne virus that has caused global health concerns. By analyzing AgBR1's three-dimensional structure in combination with cellular and interaction studies, we discovered that AgBR1 does not function like typical proteins in its family-it does not degrade sugars. However, we show that it primes immune cells in a way that could help the virus enter cells more easily but not by interacting with the virus or altering viral replication. This finding is significant because it reveals how mosquito proteins, repurposed by evolution, can influence virus transmission without the virus's direct presence. Understanding how proteins like AgBR1 work could guide the development of new strategies to prevent Zika virus spread, with potential relevance for other mosquito-borne viruses.
Insights
Mosquito salivary protein AgBR1 influences Zika virus transmission by altering host cell pathways, not by direct viral interaction. This repurposed protein
Area of Science:
- Structural biology and virology
- Immunology and host-pathogen interactions
Background:
- Zika virus (ZIKV) is a mosquito-borne arbovirus transmitted by vectors like *Aedes aegypti*.
- Mosquito saliva contains proteins, such as AgBR1 and NeSt1, with potential immunomodulatory roles in disease transmission.
- Understanding these salivary proteins is crucial for developing strategies against mosquito-borne diseases.
Purpose of the Study:
- To determine the crystal structure of the *Aedes aegypti* salivary protein AgBR1.
- To investigate the functional role of AgBR1 and NeSt1 in Zika virus transmission.
- To elucidate the mechanisms by which these proteins influence host cellular responses.
Main Methods:
- X-ray crystallography to determine the 3D structure of AgBR1 at 1.2 Å resolution.
- Biochemical assays to assess AgBR1's binding to chitin and its enzymatic activity.
- Cellular studies using murine primary macrophages to evaluate the effects of AgBR1 and NeSt1 on virus entry, immune response, and proliferation pathways.
Main Results:
- AgBR1 possesses a chitinase-like fold but lacks chitin-binding and enzymatic activity, indicating functional repurposing.
- AgBR1 and NeSt1 alter host macrophage pathways involved in endocytosis, immune response, and cell proliferation.
- These proteins do not directly bind to ZIKV or affect its replication, suggesting indirect modulation of transmission.
Conclusions:
- AgBR1's function has been repurposed beyond typical chitinase activity.
- Mosquito salivary proteins like AgBR1 and NeSt1 modulate host cellular responses to facilitate ZIKV transmission.
- These findings provide structural and functional insights essential for developing novel interventions against mosquito-borne viral diseases.
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