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Updated: Jan 18, 2026

Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
The Structural Proteins of Thermophilic Bacteriophage P23-77: Expression and Characterization
Milad Kheirvari1, Ebenezer Tumban1
1Graduate Program in One Health Sciences, School of Veterinary Medicine, Texas Tech University, Amarillo, TX 79106, USA.
Abstract:
P23-77 is a thermophilic bacteriophage that infects Thermus thermophilus bacteria. The genome of the virus is enclosed in an icosahedral capsid. This capsid is made of the small major capsid protein (VP16), the large major capsid protein (VP17), and the minor capsid protein (VP11). In addition to these three structural proteins, membrane-associated proteins (VP15, VP19, VP20, VP22, and VP23) have been identified in the virus and may serve as scaffold proteins to help with viral assembly. Previous studies have expressed VP11, VP16, and VP17 in E. coli. A mixture of these proteins can lead to the formation of complexes. However, the potential to express membrane-associated proteins has never been explored. Here, we demonstrated, for the first time, the expression and co-expression of some membrane-associated proteins with capsid (coat) proteins, both in the natural host and in E. coli. Co-expression of these proteins did not result in the assembly of virus-like particles. We explored further strategies to express and purify some of the proteins for future studies. We observed that the insertion of a purification tag (Strep-II tag, but not a histidine tag) significantly reduced the expression levels of some of the proteins. Six of the eight structural proteins were successfully purified to homogeneity using different approaches. We showed that VP20 and VP22 migrated on SDS PAGE gel at sizes larger than their predicted molecular weights. Predicted 3D structures of the proteins show that most of them are helical in nature with disordered regions. The work presented here will help pave the way for the expression and purification of these proteins. This will help determine their 3D structures and may shed light on the requirements for viral assembly.
Insights
Researchers explored expressing and purifying structural proteins from the thermophilic bacteriophage P23-77. While virus-like particles did not form, six key proteins were successfully purified, advancing structural studies of this phage.
Area of Science:
- Virology
- Structural Biology
- Molecular Biology
Background:
- P23-77 is a thermophilic bacteriophage infecting Thermus thermophilus.
- Its icosahedral capsid is composed of major capsid proteins (VP11, VP16, VP17) and membrane-associated proteins (VP15, VP19, VP20, VP22, VP23).
- Previous work focused on expressing capsid proteins, but membrane-associated proteins remained uncharacterized.
Purpose of the Study:
- To express and co-express P23-77 bacteriophage structural proteins, including membrane-associated ones.
- To investigate strategies for protein expression, purification, and potential virus-like particle assembly.
- To lay the groundwork for future 3D structure determination and understanding viral assembly.
Main Methods:
- Expression and co-expression of P23-77 proteins in the natural host and E. coli.
- Purification of structural proteins using various biochemical approaches.
- Analysis of protein expression levels with and without purification tags (Strep-II, histidine).
- SDS-PAGE analysis and prediction of 3D protein structures.
Main Results:
- Co-expression did not yield virus-like particles.
- Purification tag insertion (Strep-II) negatively impacted expression levels of some proteins.
- Six of eight structural proteins were purified to homogeneity.
- VP20 and VP22 exhibited anomalous migration on SDS-PAGE.
- Predicted structures revealed predominantly helical proteins with disordered regions.
Conclusions:
- The study successfully demonstrated expression and purification of key P23-77 structural proteins.
- Challenges in expression and purification strategies were identified.
- This work provides a foundation for future structural and assembly studies of the bacteriophage.
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