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Updated: Jul 25, 2025

Cultivation Methods of Spirochetes from Borrelia burgdorferi Sensu Lato Complex and Relapsing Fever Borrelia
Published on: November 25, 2022
Conformational dynamics of complement protease C1r inhibitor proteins from Lyme disease- and relapsing fever-causing
Sourav Roy1, Charles E Booth1, Alexandra D Powell-Pierce2
1Department of Microbiology and Immunology, Brody School of Medicine, East Carolina University, Greenville, North Carolina, USA.
Abstract:
Borrelial pathogens are vector-borne etiological agents known to cause Lyme disease, relapsing fever, and Borrelia miyamotoi disease. These spirochetes each encode several surface-localized lipoproteins that bind components of the human complement system to evade host immunity. One borrelial lipoprotein, BBK32, protects the Lyme disease spirochete from complement-mediated attack via an alpha helical C-terminal domain that interacts directly with the initiating protease of the classical complement pathway, C1r. In addition, the B. miyamotoi BBK32 orthologs FbpA and FbpB also inhibit C1r, albeit via distinct recognition mechanisms. The C1r-inhibitory activities of a third ortholog termed FbpC, which is found exclusively in relapsing fever-causing spirochetes, remains unknown. Here, we report the crystal structure of the C-terminal domain of Borrelia hermsii FbpC to a limiting resolution of 1.5 Å. We used surface plasmon resonance and assays of complement function to demonstrate that FbpC retains potent BBK32-like anticomplement activities. Based on the structure of FbpC, we hypothesized that conformational dynamics of the complement inhibitory domains of borrelial C1r inhibitors may differ. To test this, we utilized the crystal structures of the C-terminal domains of BBK32, FbpA, FbpB, and FbpC to carry out molecular dynamics simulations, which revealed borrelial C1r inhibitors adopt energetically favored open and closed states defined by two functionally critical regions. Taken together, these results advance our understanding of how protein dynamics contribute to the function of bacterial immune evasion proteins and reveal a surprising plasticity in the structures of borrelial C1r inhibitors.
Insights
Borrelial pathogens evade host immunity by inhibiting the complement system. This study reveals the structure and dynamics of FbpC, a novel inhibitor, advancing understanding of bacterial immune evasion strategies.
Area of Science:
- Microbiology
- Structural Biology
- Immunology
Background:
- Borrelial pathogens cause Lyme disease and relapsing fever, evading host immunity by targeting the complement system.
- Surface lipoproteins like BBK32 inhibit complement component C1r, crucial for host defense.
- The anticomplement function of FbpC from relapsing fever spirochetes was previously unknown.
Purpose of the Study:
- To determine the structure and anticomplement activity of Borrelia hermsii FbpC.
- To investigate the conformational dynamics of borrelial C1r inhibitors, including FbpC, BBK32, FbpA, and FbpB.
- To understand how protein dynamics contribute to bacterial immune evasion.
Main Methods:
- X-ray crystallography to determine the structure of Borrelia hermsii FbpC.
- Surface plasmon resonance and complement function assays to assess FbpC's anticomplement activity.
- Molecular dynamics simulations using crystal structures to analyze conformational dynamics of C1r inhibitors.
Main Results:
- The crystal structure of Borrelia hermsii FbpC's C-terminal domain was determined to 1.5 Å resolution.
- FbpC demonstrated potent anticomplement activity, similar to BBK32.
- Molecular dynamics simulations revealed that borrelial C1r inhibitors exist in distinct open and closed conformational states.
Conclusions:
- FbpC effectively inhibits the complement system, contributing to immune evasion in relapsing fever borreliae.
- Conformational dynamics play a significant role in the function of borrelial C1r inhibitors.
- The plasticity of these inhibitor structures offers insights into bacterial strategies for evading host immunity.
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