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.

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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