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Updated: Aug 16, 2026

Immuno-fluorescence Assay of Leptospiral Surface-exposed Proteins
Published on: July 1, 2011
Further characterization of complement regulator-acquiring surface proteins of Borrelia burgdorferi
1Institute of Medical Microbiology, University Hospital of Frankfurt, D-60596 Frankfurt, Germany. Kraiczy@em.uni-frankfurt.de
Insights
Borrelia bacteria causing Lyme disease evade human immune attack by binding complement regulators using unique proteins called CRASPs. Characterizing these CRASPs may reveal new virulence factors and vaccine targets.
Area of Science:
- Immunology
- Microbiology
- Molecular Biology
Background:
- Lyme disease is caused by Borrelia burgdorferi, Borrelia garinii, and Borrelia afzelii.
- These bacteria exhibit varying resistance to human complement-mediated lysis.
- Serum resistance in Borrelia correlates with binding human complement regulators like FHL-1/reconectin and factor H.
Purpose of the Study:
- To comprehensively study complement regulator-acquiring proteins (CRASPs) in different Borrelia genospecies.
- To characterize the binding profiles of these CRASPs to human complement regulators.
- To investigate the expression and potential role of CRASPs in Borrelia virulence and immune evasion.
Main Methods:
- Analysis of CRASPs in serum-resistant and intermediate serum-sensitive Borrelia isolates (B. afzelii and B. burgdorferi).
- Designation of CRASPs as BaCRASPs (from B. afzelii) and BbCRASPs (from B. burgdorferi).
- Characterization of CRASP mobility, binding phenotypes to FHL-1/reconectin and factor H, and C-terminal binding.
Main Results:
- Distinct CRASPs were identified in different Borrelia isolates, with varying mobility and binding characteristics.
- Several CRASPs showed overlapping or identical binding profiles to FHL-1/reconectin and factor H.
- Temperature-dependent upregulation of specific CRASPs was observed at higher culture temperatures (33-37°C).
Conclusions:
- Borrelia species utilize a diverse set of CRASPs to bind human complement regulators, contributing to immune evasion.
- The identified CRASPs represent potential virulence factors and novel targets for vaccine development.
- Further molecular characterization of CRASPs is crucial for understanding Lyme disease pathogenesis and developing countermeasures.
Abstract:
The three genospecies Borrelia burgdorferi, Borrelia garinii, and Borrelia afzelii, all causative agents of Lyme disease, differ in their susceptibilities to human complement-mediated lysis. We recently reported that serum resistance of borrelias correlates largely with their ability to bind the human complement regulators FHL-1/reconectin and factor H. To date, two complement regulator-acquiring-proteins (CRASP-1 and CRASP-2) have been identified in serum-resistant B. afzelii isolates (P. Kraiczy, C. Skerka, M. Kirschfink, V. Brade, and P. F. Zipfel, Eur. J. Immunol. 31:1674-1684, 2001). Here, we present a comprehensive study of the CRASPs detectable in both serum-resistant and intermediate serum-sensitive B. afzelii and B. burgdorferi isolates. These CRASPs were designated according to the genospecies either as BaCRASPs, when derived from B. afzelii, or as BbCRASPs, for proteins identified in B. burgdorferi isolates. Each borrelial isolate expresses distinct CRASPs that can be differentiated by their mobility and binding phenotypes. A detailed comparison reveals overlapping and even identical binding profiles for BaCRASP-1 (27.5 kDa), BbCRASP-1 (25.9 kDa), and BbCRASP-2 (23.2 kDa), which bind FHL-1/reconectin strongly and interact weakly with factor H. In contrast, two B. afzelii proteins (BaCRASP-4 [19.2 kDa] and BaCRASP-5 [22.5 kDa]) and three B. burgdorferi proteins (BbCRASP-3 [19.8 kDa], BbCRASP-4 [18.5 kDa], and BbCRASP-5 [17.7 kDa]) bind factor H but not FHL-1/reconectin. Most CRASPs bind both human immune regulators at their C-terminal ends. Temperature-dependent up-regulation of CRASPs (BaCRASP-1, BaCRASP-2, and BaCRASP-5) is detected in low-passage borrelias cultured at 33 or 37 degrees C compared with those cultured at 20 degrees C. The characterization of the individual CRASPs on the molecular level is expected to identify new virulence factors and potential vaccine candidates.
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