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Structure and assembly of an inner membrane platform for initiation of type IV pilus biogenesis
Vijaykumar Karuppiah1, Richard F Collins, Angela Thistlethwaite
1Faculty of Life Sciences, University of Manchester, Manchester M13 9PT, United Kingdom.
Abstract:
Type IV pili are long fibers that are assembled by polymerization of a major pilin protein in the periplasm of a wide range of bacteria and archaea. They play crucial roles in pathogenesis, DNA transformation, and motility, and are capable of rapid retraction, generating powerful motor forces. PilN and PilO are integral inner membrane proteins that are essential for type IV pilus formation. Here, we show that PilN and PilO from Thermus thermophilus can be isolated as a complex with PilM, a cytoplasmic protein with structural similarities to the cytoskeletal protein MreB. The crystal structure of the periplasmic portion of PilN forms a homodimer with an extensive, conserved interaction interface. We conducted serial 3D reconstructions by electron microscopy of PilMN, PilMNO, and PilMNO bound to the major pilin protein PilA4, to chart the assembly of the inner membrane pilus biogenesis platform. PilN drives the dimerization of the PilMN complex with a stoichiometry of 2:2; binding of two PilO monomers then causes the PilN periplasmic domains to dissociate. Finally, two PilA4 monomers bind to the periplasmic domains of PilN and PilO, to generate a T-shaped complex that is primed for addition of the pilin to the nascent pilus fiber. Docking of structures for PilM, PilN, PilO, and PilA4 into the electron density maps of the transmembrane complexes was used to generate a sequence of molecular structures that chart the initial events in type IV pilus formation, and provide structural information on the early events in this important secretion process.
Insights
Researchers elucidated the assembly of the type IV pilus biogenesis platform. PilN, PilO, and PilM proteins form a T-shaped complex with PilA4, detailing early events in pilus formation.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Type IV pili are essential bacterial appendages involved in pathogenesis, motility, and DNA transformation.
- Their assembly relies on integral inner membrane proteins PilN and PilO.
Purpose of the Study:
- To determine the structural basis of the type IV pilus biogenesis platform assembly.
- To elucidate the sequential molecular events in the initial stages of pilus formation.
Main Methods:
- Isolation of PilN, PilO, and PilM protein complexes from Thermus thermophilus.
- Cryo-electron microscopy (cryo-EM) for 3D reconstructions of intermediate complexes.
- X-ray crystallography to determine the structure of the PilN periplasmic domain.
- Molecular modeling and docking to generate sequential structures.
Main Results:
- PilN and PilO form a complex with cytoplasmic PilM.
- PilN drives a 2:2 dimerization of the PilMN complex; PilO binding induces PilN dissociation.
- A T-shaped complex of PilA4 monomers with PilN and PilO periplasmic domains is formed, ready for pilus extension.
Conclusions:
- The study provides a step-by-step molecular model for the assembly of the type IV pilus inner membrane platform.
- Structural insights reveal the mechanism of pilin recruitment and the initiation of pilus fiber biogenesis.
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