Structural modeling of the flagellum MS ring protein FliF reveals similarities to the type III secretion system and
1Department of Biochemistry, University of Washington , Seattle, WA , USA.
Abstract:
The flagellum is a large proteinaceous organelle found at the surface of many bacteria, whose primary role is to allow motility through the rotation of a long extracellular filament. It is an essential virulence factor in many pathogenic species, and is also a priming component in the formation of antibiotic-resistant biofilms. The flagellum consists of the export apparatus on the cytosolic side; the basal body and rotor, spanning the bacterial membrane(s) and periplasm; and the hook-filament, that protrudes away from the bacterial surface. Formation of the basal body MS ring region, constituted of multiple copies of the protein FliF, is one of the initial steps of flagellum assembly. However, the precise architecture of FliF is poorly understood. Here, I report a bioinformatics analysis of the FliF sequence from various bacterial species, suggesting that its periplasmic region is composed of three globular domains. The first two are homologous to that of the type III secretion system injectisome proteins SctJ, and the third possesses a similar fold to that of the sporulation complex component SpoIIIAG. I also describe that Chlamydia possesses an unusual FliF protein, lacking part of the SctJ homology domain and the SpoIIIAG-like domain, and fused to the rotor component FliG at its C-terminus. Finally, I have combined the sequence analysis of FliF with the EM map of the MS ring, to propose the first atomic model for the FliF oligomer, suggesting that FliF is structurally akin to a fusion of the two injectisome components SctJ and SctD. These results further define the relationship between the flagellum, injectisome and sporulation complex, and will facilitate future structural characterization of the flagellum basal body.
Insights
This study reveals the structural model of the bacterial flagellum MS ring protein FliF, identifying its domains and evolutionary links to secretion and sporulation systems. This advances understanding of flagellar assembly and related bacterial protein complexes.
Area of Science:
- Bacteriology
- Structural Biology
- Bioinformatics
Background:
- The bacterial flagellum is crucial for motility, virulence, and biofilm formation.
- The MS ring protein FliF is essential for flagellar basal body assembly.
- The precise architecture of FliF remains poorly understood.
Purpose of the Study:
- To elucidate the structural architecture of the bacterial flagellum MS ring protein FliF.
- To investigate the evolutionary relationships of FliF with other bacterial protein complexes.
- To propose an atomic model for the FliF oligomer.
Main Methods:
- Bioinformatic analysis of FliF sequences across diverse bacterial species.
- Comparative analysis of FliF domains with known protein structures.
- Integration of sequence data with cryo-electron microscopy (EM) maps of the MS ring.
Main Results:
- FliF's periplasmic region comprises three globular domains, with the first two homologous to type III secretion system SctJ and the third to SpoIIIAG.
- An unusual FliF variant in Chlamydia lacks parts of these domains and is fused to FliG.
- An atomic model for the FliF oligomer suggests structural similarity to a fusion of injectisome components SctJ and SctD.
Conclusions:
- FliF shares structural and evolutionary links with bacterial type III secretion systems and sporulation complexes.
- The proposed model provides insights into flagellar basal body assembly and function.
- This work facilitates future structural studies of the flagellar basal body.
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