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Native flagellar MS ring is formed by 34 subunits with 23-fold and 11-fold  subsymmetries | Nature Communications
Native flagellar MS ring is formed by 34 subunits with 23-fold and 11-fold subsymmetries | Nature Communications

Symmetry mismatch in the MS-ring of the bacterial flagellar rotor explains  the structural coordination of secretion and rotation | Nature Microbiology
Symmetry mismatch in the MS-ring of the bacterial flagellar rotor explains the structural coordination of secretion and rotation | Nature Microbiology

Structure of the molecular bushing of the bacterial flagellar motor |  Nature Communications
Structure of the molecular bushing of the bacterial flagellar motor | Nature Communications

In Situ Structure of the Vibrio Polar Flagellum Reveals a Distinct Outer  Membrane Complex and Its Specific Interaction with the Stator | Journal of  Bacteriology
In Situ Structure of the Vibrio Polar Flagellum Reveals a Distinct Outer Membrane Complex and Its Specific Interaction with the Stator | Journal of Bacteriology

Two Distinct Conformations in 34 FliF Subunits Generate Three Different  Symmetries within the Flagellar MS-Ring | mBio
Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring | mBio

Structural modeling of the flagellum MS ring protein FliF reveals  similarities to the type III secretion system and sporulation complex |  bioRxiv
Structural modeling of the flagellum MS ring protein FliF reveals similarities to the type III secretion system and sporulation complex | bioRxiv

In Situ Structure of the Vibrio Polar Flagellum Reveals a Distinct Outer  Membrane Complex and Its Specific Interaction with the Stator | Journal of  Bacteriology
In Situ Structure of the Vibrio Polar Flagellum Reveals a Distinct Outer Membrane Complex and Its Specific Interaction with the Stator | Journal of Bacteriology

L ring - Wikipedia
L ring - Wikipedia

Symmetry mismatch in the MS-ring of the bacterial flagellar rotor explains  the structural coordination of secretion and rotation | Nature Microbiology
Symmetry mismatch in the MS-ring of the bacterial flagellar rotor explains the structural coordination of secretion and rotation | Nature Microbiology

Two Distinct Conformations in 34 FliF Subunits Generate Three Different  Symmetries within the Flagellar MS-Ring | mBio
Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring | mBio

Symmetry mismatch in the MS-ring of the bacterial flagellar rotor explains  the structural coordination of secretion and rotation | Nature Microbiology
Symmetry mismatch in the MS-ring of the bacterial flagellar rotor explains the structural coordination of secretion and rotation | Nature Microbiology

Co-folding of a FliF-FliG split domain forms the basis of the MS:C ring  interface within the bacterial flagellar motor
Co-folding of a FliF-FliG split domain forms the basis of the MS:C ring interface within the bacterial flagellar motor

Native flagellar MS ring is formed by 34 subunits with 23-fold and 11-fold  subsymmetries | Nature Communications
Native flagellar MS ring is formed by 34 subunits with 23-fold and 11-fold subsymmetries | Nature Communications

Structure of the molecular bushing of the bacterial flagellar motor |  Nature Communications
Structure of the molecular bushing of the bacterial flagellar motor | Nature Communications

Native flagellar MS ring is formed by 34 subunits with 23-fold and 11-fold  subsymmetries | Nature Communications
Native flagellar MS ring is formed by 34 subunits with 23-fold and 11-fold subsymmetries | Nature Communications

Structural modeling of the flagellum MS ring protein FliF reveals  similarities to the type III secretion system and sporulation complex |  bioRxiv
Structural modeling of the flagellum MS ring protein FliF reveals similarities to the type III secretion system and sporulation complex | bioRxiv

The Vibrio H-Ring Facilitates the Outer Membrane Penetration of the Polar  Sheathed Flagellum | Journal of Bacteriology
The Vibrio H-Ring Facilitates the Outer Membrane Penetration of the Polar Sheathed Flagellum | Journal of Bacteriology

The MS-ring as a structural adaptor a, A model of the 34-mer MS-ring,... |  Download Scientific Diagram
The MS-ring as a structural adaptor a, A model of the 34-mer MS-ring,... | Download Scientific Diagram

Structural modeling of the flagellum MS ring protein FliF reveals  similarities to the type III secretion system and sporulation complex |  bioRxiv
Structural modeling of the flagellum MS ring protein FliF reveals similarities to the type III secretion system and sporulation complex | bioRxiv

FliG Subunit Arrangement in the Flagellar Rotor Probed by Targeted  Cross-Linking | Journal of Bacteriology
FliG Subunit Arrangement in the Flagellar Rotor Probed by Targeted Cross-Linking | Journal of Bacteriology

Structure of the molecular bushing of the bacterial flagellar motor |  Nature Communications
Structure of the molecular bushing of the bacterial flagellar motor | Nature Communications

In Situ Structure of the Vibrio Polar Flagellum Reveals a Distinct Outer  Membrane Complex and Its Specific Interaction with the Stator | Journal of  Bacteriology
In Situ Structure of the Vibrio Polar Flagellum Reveals a Distinct Outer Membrane Complex and Its Specific Interaction with the Stator | Journal of Bacteriology

Role of the N- and C-Terminal Regions of FliF, the MS Ring Component in the  Vibrio Flagellar Basal Body | Journal of Bacteriology
Role of the N- and C-Terminal Regions of FliF, the MS Ring Component in the Vibrio Flagellar Basal Body | Journal of Bacteriology

Native structure of flagellar MS ring is formed by 34 subunits with 23-fold  and 11-fold subsymmetries | bioRxiv
Native structure of flagellar MS ring is formed by 34 subunits with 23-fold and 11-fold subsymmetries | bioRxiv

Structure of the bacterial flagellar rotor MS-ring: a minimum  inventory/maximum diversity system | bioRxiv
Structure of the bacterial flagellar rotor MS-ring: a minimum inventory/maximum diversity system | bioRxiv

Two Distinct Conformations in 34 FliF Subunits Generate Three Different  Symmetries within the Flagellar MS-Ring | mBio
Two Distinct Conformations in 34 FliF Subunits Generate Three Different Symmetries within the Flagellar MS-Ring | mBio