Revisiting the NMR structure of the ultrafast downhill folding protein gpW from bacteriophage λ
Lorenzo Sborgi1, Abhinav Verma, Victor Muñoz
1Centro de Investigaciones Biológicas, Consejo Superior de Investigaciones Científicas, Madrid, Spain.
Abstract:
GpW is a 68-residue protein from bacteriophage λ that participates in virus head morphogenesis. Previous NMR studies revealed a novel α+β fold for this protein. Recent experiments have shown that gpW folds in microseconds by crossing a marginal free energy barrier (i.e., downhill folding). These features make gpW a highly desirable target for further experimental and computational folding studies. As a step in that direction, we have re-determined the high-resolution structure of gpW by multidimensional NMR on a construct that eliminates the purification tags and unstructured C-terminal tail present in the prior study. In contrast to the previous work, we have obtained a full manual assignment and calculated the structure using only unambiguous distance restraints. This new structure confirms the α+β topology, but reveals important differences in tertiary packing. Namely, the two α-helices are rotated along their main axis to form a leucine zipper. The β-hairpin is orthogonal to the helical interface rather than parallel, displaying most tertiary contacts through strand 1. There also are differences in secondary structure: longer and less curved helices and a hairpin that now shows the typical right-hand twist. Molecular dynamics simulations starting from both gpW structures, and calculations with CS-Rosetta, all converge to our gpW structure. This confirms that the original structure has strange tertiary packing and strained secondary structure. A comparison of NMR datasets suggests that the problems were mainly caused by incomplete chemical shift assignments, mistakes in NOE assignment and the inclusion of ambiguous distance restraints during the automated procedure used in the original study. The new gpW corrects these problems, providing the appropriate structural reference for future work. Furthermore, our results are a cautionary tale against the inclusion of ambiguous experimental information in the determination of protein structures.
Insights
This study revises the structure of bacteriophage λ protein gpW, revealing corrected tertiary packing and secondary structure. The findings highlight the importance of accurate NMR assignments for reliable protein structure determination.
Area of Science:
- Structural biology
- Biophysics
- Molecular biology
Background:
- Bacteriophage lambda protein gpW (68 residues) is crucial for virus head morphogenesis.
- Previous studies indicated gpW exhibits a novel alpha+beta fold and undergoes rapid downhill folding.
- These characteristics make gpW an attractive model for protein folding research.
Purpose of the Study:
- To re-determine the high-resolution structure of gpW using multidimensional NMR.
- To address discrepancies and inaccuracies identified in previous structural studies.
- To provide a reliable structural reference for future investigations of gpW folding.
Main Methods:
- High-resolution structure determination of gpW via multidimensional NMR spectroscopy.
- Utilized a modified protein construct lacking purification tags and C-terminal tail.
- Employed full manual assignment and exclusively unambiguous distance restraints.
Main Results:
- Confirmed the alpha+beta topology but revealed significant differences in tertiary packing and secondary structure.
- Identified a leucine zipper formation in the alpha-helices and an orthogonal beta-hairpin orientation.
- Molecular dynamics simulations and CS-Rosetta calculations converged to the newly determined structure.
- Identified issues in the prior study related to incomplete assignments and ambiguous restraints.
Conclusions:
- The revised gpW structure provides an accurate structural reference, correcting issues of strained secondary structure and unusual tertiary packing.
- The findings underscore the critical impact of accurate NMR assignments and the exclusion of ambiguous restraints in protein structure determination.
- This work serves as a cautionary example regarding the use of ambiguous experimental data in structural studies.
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