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Updated: Mar 23, 2026

Essential Components of Borreliella Borrelia burgdorferi In Vitro Transcription Assays
Published on: July 22, 2022
Borrelia burgdorferi CheD Promotes Various Functions in Chemotaxis and the Pathogenic Life Cycle of the Spirochete
Ki Hwan Moon1, Gerry Hobbs2, M A Motaleb3
1Department of Microbiology and Immunology, Brody School of Medicine, East Carolina University, Greenville, North Carolina, USA.
Insights
The study reveals that Borrelia burgdorferi CheD protein is crucial for chemotaxis and host colonization. A mutant lacking CheD showed reduced infectivity in mice, highlighting its role in Lyme disease pathogenesis.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Borrelia burgdorferi, the causative agent of Lyme disease, has a complex chemotaxis system.
- The specific functions of many chemotaxis proteins, including CheD, during infection remain largely unknown.
- CheD in other bacteria regulates methyl-accepting chemotaxis protein receptors (MCPs) and downstream signaling.
Purpose of the Study:
- To characterize the function of the Borrelia burgdorferi CheD protein.
- To investigate the role of CheD in bacterial chemotaxis, host colonization, and the infectious life cycle.
- To elucidate the molecular interactions of CheD with other chemotaxis proteins and MCPs.
Main Methods:
- Genetic manipulation to create a cheD mutant strain of B. burgdorferi.
- Biochemical assays to determine CheD's enzymatic activity and protein interactions.
- In vivo studies using mouse models and mouse-tick-mouse infection cycles.
Main Results:
- B. burgdorferi CheD enhances CheX phosphatase activity and binds to specific MCPs.
- Motility was unaffected, but cheD mutant cells showed impaired chemotaxis.
- The cheD mutant exhibited significantly reduced infectivity in mice.
- CheD was dispensable for transmission but showed marginally reduced viability in ticks.
Conclusions:
- CheD plays a critical role in B. burgdorferi chemotaxis and pathogenesis, particularly during host colonization.
- Interactions between CheD, CheX, and MCPs are vital for the spirochete's infectious life cycle.
- Targeting CheD could be a strategy to combat Lyme disease.
Abstract:
Borrelia burgdorferi possesses a sophisticated chemotaxis signaling system; however, the roles of the majority of the chemotaxis proteins in the infectious life cycle have not yet been demonstrated. Specifically, the role of CheD during host colonization has not been demonstrated in any bacterium. Here, we systematically characterized the B. burgdorferi CheD homolog using genetics and biochemical and mouse-tick-mouse infection cycle studies. Bacillus subtilis CheD plays an important role in chemotaxis by deamidation of methyl-accepting chemotaxis protein receptors (MCPs) and by increasing the receptor kinase activity or enhancing CheC phosphatase activity, thereby regulating the levels of the CheY response regulator. Our biochemical analysis indicates that B. burgdorferi CheD significantly enhances CheX phosphatase activity by specifically interacting with the phosphatase. Moreover, CheD specifically binds two of the six MCPs, indicating that CheD may also modulate the receptor proteins. Although the motility of the cheD mutant cells was indistinguishable from that of the wild-type cells, the mutant did exhibit reduced chemotaxis. Importantly, the mutant showed significantly reduced infectivity in C3H/HeN mice via needle inoculation. Mouse-tick-mouse infection assays indicated that CheD is dispensable for acquisition or transmission of spirochetes; however, the viability of cheD mutants in ticks is marginally reduced compared to that of the wild-type or complemented cheD spirochetes. These data suggest that CheD plays an important role in the chemotaxis and pathogenesis of B. burgdorferi We propose potential connections between CheD, CheX, and MCPs and discuss how these interactions play critical roles during the infectious life cycle of the spirochete.
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