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Published on: March 8, 2012
Refolding and in vitro characterization of human papillomavirus 16 minor capsid protein L2
Bastian Breiner1, Laura Preuss1, Nora Roos1
1Institute of Medical Virology, University of Tübingen, Elfriede-Aulhorn-Str. 06, D-72076 Tuebingen, Germany.
Abstract:
The minor capsid protein L2 of papillomaviruses exhibits multiple functions during viral entry including membrane interaction. Information on the protein is scarce, because of its high tendency of aggregation. We determined suitable conditions to produce a functional human papillomavirus (HPV) 16 L2 protein and thereby provide the opportunity for extensive in vitro analysis with respect to structural and biochemical information on L2 proteins and mechanistic details in viral entry. We produced the L2 protein of high-risk HPV 16 in Escherichia coli as inclusion bodies and purified the protein under denaturing conditions. A successive buffer screen resulted in suitable conditions for the biophysical characterization of 16L2. Analytical ultracentrifugation of the refolded protein showed a homogenous monomeric species. Furthermore, refolded 16L2 shows secondary structure elements. The N-terminal region including the proposed transmembrane region of 16L2 shows alpha-helical characteristics. However, overall 16L2 appears largely unstructured. Refolded 16L2 is capable of binding to DNA indicating that the putative DNA-binding regions are accessible in refolded 16L2. Further the refolded protein interacts with liposomal membranes presumably via the proposed transmembrane region at neutral pH without structural changes. This indicates that 16L2 can initially interact with membranes via pre-existing structural features.
Insights
Researchers produced functional human papillomavirus (HPV) 16 L2 protein, enabling detailed in vitro studies of its structure, DNA binding, and membrane interactions crucial for viral entry.
Area of Science:
- Virology
- Structural Biology
- Biochemistry
Background:
- The minor capsid protein L2 of papillomaviruses is crucial for viral entry, particularly membrane interaction.
- Information on L2 protein is limited due to its aggregation tendency.
Purpose of the Study:
- To establish conditions for producing functional human papillomavirus (HPV) 16 L2 protein for in vitro analysis.
- To investigate the structural, biochemical, and mechanistic properties of L2 protein during viral entry.
Main Methods:
- Production of HPV 16 L2 protein in Escherichia coli as inclusion bodies.
- Purification under denaturing conditions followed by buffer screening for refolding.
- Biophysical characterization including analytical ultracentrifugation and secondary structure analysis.
Main Results:
- Successfully produced and refolded a homogenous monomeric HPV 16 L2 protein.
- Refolded L2 protein exhibits secondary structure, including alpha-helical characteristics in the N-terminal region.
- Refolded L2 protein binds DNA and interacts with liposomal membranes at neutral pH, indicating functional accessibility of key regions.
Conclusions:
- Established suitable conditions for producing and characterizing functional HPV 16 L2 protein.
- Demonstrated that refolded L2 protein retains DNA-binding and membrane-interaction capabilities.
- Suggests L2 protein interacts with membranes via pre-existing structural features, providing insights into viral entry mechanisms.
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