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Updated: Jun 19, 2026

Monitoring the Assembly of a Secreted Bacterial Virulence Factor Using Site-specific Crosslinking
Published on: December 17, 2013
Periplasmic domains of Pseudomonas aeruginosa PilN and PilO form a stable heterodimeric complex
L M Sampaleanu1, J B Bonanno, M Ayers
1Program in Molecular Structure and Function, Hospital for Sick Children, 555 University Avenue, Toronto, Ontario, Canada M5G 1X8.
Abstract:
Type IV pili (T4P) are bacterial virulence factors responsible for attachment to surfaces and for twitching motility, a motion that involves a succession of pilus extension and retraction cycles. In the opportunistic pathogen Pseudomonas aeruginosa, the PilM/N/O/P proteins are essential for T4P biogenesis, and genetic and biochemical analyses strongly suggest that they form an inner-membrane complex. Here, we show through co-expression and biochemical analysis that the periplasmic domains of PilN and PilO interact to form a heterodimer. The structure of residues 69-201 of the periplasmic domain of PilO was determined to 2.2 A resolution and reveals the presence of a homodimer in the asymmetric unit. Each monomer consists of two N-terminal coiled coils and a C-terminal ferredoxin-like domain. This structure was used to generate homology models of PilN and the PilN/O heterodimer. Our structural analysis suggests that in vivo PilN/O heterodimerization would require changes in the orientation of the first N-terminal coiled coil, which leads to two alternative models for the role of the transmembrane domains in the PilN/O interaction. Analysis of PilN/O orthologues in the type II secretion system EpsL/M revealed significant similarities in their secondary structures and the tertiary structures of PilO and EpsM, although the way these proteins interact to form inner-membrane complexes appears to be different in T4P and type II secretion. Our analysis suggests that PilN interacts directly, via its N-terminal tail, with the cytoplasmic protein PilM. This work shows a direct interaction between the periplasmic domains of PilN and PilO, with PilO playing a key role in the proper folding of PilN. Our results suggest that PilN/O heterodimers form the foundation of the inner-membrane PilM/N/O/P complex, which is critical for the assembly of a functional T4P complex.
Insights
Type IV pili (T4P) biogenesis in Pseudomonas aeruginosa relies on the PilM/N/O/P complex. This study reveals PilN and PilO proteins directly interact, forming a heterodimer essential for T4P assembly.
Area of Science:
- Microbiology
- Structural Biology
- Molecular Biology
Background:
- Type IV pili (T4P) are crucial bacterial virulence factors enabling surface attachment and twitching motility.
- The PilM/N/O/P protein complex is essential for T4P biogenesis in Pseudomonas aeruginosa, likely forming an inner-membrane structure.
Purpose of the Study:
- To elucidate the structural and interaction mechanisms of the PilN/O complex within the T4P biogenesis machinery.
- To investigate the role of PilO in the proper folding and interaction of PilN.
Main Methods:
- Co-expression and biochemical analysis to study protein interactions.
- X-ray crystallography to determine the structure of the PilO periplasmic domain.
- Homology modeling to predict structures of PilN and the PilN/O heterodimer.
Main Results:
- The periplasmic domains of PilN and PilO form a heterodimer.
- The crystal structure of the PilO periplasmic domain revealed a homodimer with coiled-coil and ferredoxin-like domains.
- Structural analysis proposed models for PilN/O heterodimerization and interaction with PilM.
Conclusions:
- PilN/O heterodimers are foundational to the inner-membrane PilM/N/O/P complex, crucial for T4P assembly.
- PilO plays a critical role in the correct folding of PilN.
- Structural insights into PilN/O interactions offer a basis for understanding T4P biogenesis.
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