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Application of Biolayer Interferometry BLI for Studying Protein-Protein Interactions in Transcription
Published on: July 26, 2019
Chlamydia plasmid-encoded protein Pgp2 is a replication initiator with a unique β-hairpin necessary for
Danny Wan1, Matthew Pan1, Guangming Zhong2
1Department of Pharmacology, Robert Wood Johnson Medical School, Rutgers, The State University of New Jersey, Piscataway, New Jersey 08854, USA.
Abstract:
The virulence plasmid of the obligate intracellular bacterium Chlamydia encodes eight proteins. Among these, Pgp3 is crucial for pathogenicity, and Pgp4 functions as a transcriptional regulator of both plasmid and chromosomal genes. The remaining proteins, Pgp1, Pgp5, Pgp6, Pgp7, and Pgp8, are predicted to play various roles in plasmid replication or maintenance based on their amino acid sequences. However, the function of Pgp2 remains unknown, even though it is required for transformation. In this study, we utilized AlphaFold to predict the 3-dimensional (3-D) structure of C. trachomatis Pgp2. Despite a lack of apparent sequence homology, the AlphaFold structure exhibited high similarity to experimentally determined structures of several plasmid replication initiators. Notably, Pgp2 features a unique β-hairpin motif near the DNA-binding domain, absent in other plasmid replication initiators with overall 3-D structures similar to Pgp2. This β-hairpin motif was also present in AlphaFold models of Pgp2s across all 13 Chlamydia species. To assess its significance, we engineered a plasmid lacking the 11 amino acids constituting the β-hairpin motif in C. trachomatis Pgp2. Although this deletion did not alter the overall structure of Pgp2, the mutated plasmid failed to transform plasmid-free C. trachomatis. These findings reveal that Pgp2 is a plasmid replication initiator, with the β-hairpin motif playing a critical role in binding to its cognate iteron sequences in the replication origin of the chlamydial plasmid.
Insights
The study identifies Chlamydia Pgp2 as a plasmid replication initiator essential for bacterial transformation. A unique beta-hairpin motif in Pgp2 is critical for its function, binding to the chlamydial plasmid origin.
Area of Science:
- Microbiology
- Molecular Biology
- Structural Biology
Background:
- The Chlamydia virulence plasmid encodes eight proteins, with functions for most, except Pgp2, being predicted or known.
- Pgp2 is essential for plasmid transformation in Chlamydia, but its function and structural characteristics were previously unknown.
Purpose of the Study:
- To determine the function of Chlamydia trachomatis Pgp2.
- To elucidate the structural features of Pgp2 and their role in plasmid maintenance.
Main Methods:
- Utilized AlphaFold for 3-D structure prediction of C. trachomatis Pgp2.
- Engineered a mutant C. trachomatis Pgp2 lacking a specific beta-hairpin motif.
- Assessed the transformation efficiency of the engineered plasmid.
Main Results:
- AlphaFold predicted a 3-D structure for Pgp2, revealing similarity to plasmid replication initiators.
- A unique beta-hairpin motif was identified in Pgp2, conserved across Chlamydia species.
- Deletion of the beta-hairpin motif abolished the plasmid's ability to transform C. trachomatis.
Conclusions:
- Pgp2 functions as a plasmid replication initiator in Chlamydia.
- The identified beta-hairpin motif is crucial for Pgp2's DNA-binding activity and plasmid replication initiation.
- This finding provides insight into the molecular mechanisms of chlamydial plasmid maintenance.
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