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Methodology for the Efficient Generation of Fluorescently Tagged Vaccinia Virus Proteins
Published on: January 17, 2014
Modification of vaccinia virus penetration proteins analyzed by monoclonal antibodies
Abstract:
Modifications induced in structural vaccinia virus proteins that elicit the high infectious state by virus activating treatments involving trypsin and phosphatidylserine were analyzed using antivaccinia monoclonal antibodies (MABs). MABs reactive against each of the five outer layer proteins (VP54K, 34K, 32K, 29K, and 17K-25K) neutralized infectivity. VP54K possesses at least two neutralizing epitopes. Treatment with trypsin or with isolated plasma membrane cleaved VP54K into TVP41K carrying epitope A and removed a fragment containing epitope B from the virus. MABs against either of the epitopes could neutralize the virus. The exposure of epitope A concomitantly activated virus infectivity, and it was an essential step of penetration. MABs against VP17K-25K reacted more efficiently with trypsin-treated virus than with untreated virus, but the size of VP17K-25K was not affected by trypsin; this finding indicated that trypsin treatment rendered the VP17K-25K epitopes more accessible to antibody and hence to neutralization. MABs against VP32K and VP29K neutralized infectivity to the same extent irrespective of the state of activation. Virus treated with phosphatidylserine (PS) was neutralized more efficiently by MAB against VP34K than untreated virus, but the amount of antibody that reacted with the virus was the same before and after treatment with PS. Phosphatidylserine did not modify epitope structure itself, but it activated the function of VP34K. It was concluded that blocking of the functions attributed to any of the five proteins resulted in neutralization of virus infectivity, and treatment with trypsin and phosphatidylserine activates infectivity of vaccinia virus by modifying three of them (VP54K, VP34K, VP17K-25K) with characteristic behavior for each protein.
Insights
Treatments activating vaccinia virus infectivity, like trypsin and phosphatidylserine, modify outer viral proteins. Blocking these proteins with monoclonal antibodies neutralizes virus infectivity, revealing key viral entry mechanisms.
Area of Science:
- Virology
- Molecular Biology
- Immunology
Background:
- Vaccinia virus (VACV) infectivity is a complex process involving multiple viral proteins.
- Understanding the mechanisms of VACV entry and activation is crucial for developing antiviral strategies.
Purpose of the Study:
- To analyze modifications in vaccinia virus structural proteins induced by activating treatments (trypsin, phosphatidylserine).
- To investigate the role of these modified proteins in viral infectivity and neutralization using monoclonal antibodies (mAbs).
Main Methods:
- Analysis of vaccinia virus structural proteins using antivaccinia monoclonal antibodies (mAbs).
- Treatment of virus with trypsin and phosphatidylserine (PS) to induce activation.
- Neutralization assays using mAbs against specific viral proteins (VP54K, 34K, 32K, 29K, 17K-25K).
Main Results:
- Monoclonal antibodies against five outer layer proteins (VP54K, 34K, 32K, 29K, 17K-25K) neutralized infectivity.
- Trypsin treatment cleaved VP54K, exposing a neutralizing epitope (A) and activating infectivity.
- Trypsin increased mAb accessibility to VP17K-25K, enhancing neutralization.
- Phosphatidylserine activated VP34K function, increasing neutralization efficiency by specific mAbs.
Conclusions:
- Blocking the function of any of the five analyzed outer viral proteins neutralizes vaccinia virus infectivity.
- Trypsin and phosphatidylserine activate vaccinia virus infectivity by modifying VP54K, VP34K, and VP17K-25K through distinct mechanisms.
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