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Published on: August 31, 2013
Autoimmune mechanisms in antibiotic treatment-resistant lyme arthritis
A C Steere1, D Gross, A L Meyer
1Division of Rheumatology/Immunology (Medicine) and the Department of Pathology, Tufts University School of Medicine, New England Medical Center, Boston, MA, USA. asteere@lifespan.org
Abstract:
In about 10% of patients with Lyme arthritis in the United States, joint inflammation persists for months or even several years after the apparent eradication of the spirochete, Borrelia burgdorferi, from the joint with antibiotic treatment. We propose a model of molecular mimicry affecting genetically susceptible individuals to explain this treatment-resistant course. The majority of patients with treatment-resistant Lyme arthritis have HLA-DRB1*0401 or related alleles, and the severity and duration of their arthritis correlate with cellular and humoral immune responses to outer-surface protein A OspA) of the spirochete. Using an algorithm, the immunodominant epitope of OspA presented by the DRB1*0401 molecule was predicted to be located at aa 165-173. In a search of the Genetics Computer Group gene bank, only one human protein was identified, lymphocyte function associated antigen-1 (hLFA-1), that had sequence homology with OspA(165-173)and predicted binding in the DRB1*0401 molecule. Synovial fluid T cells from most patients with treatment-resistant arthritis responded to both OspA and hLFA-1, whereas those from patients with other forms of chronic inflammatory arthritis did not. Molecular mimicry between a dominant T cell epitope of OspA and hLFA-1 may be an important factor in the persistence of joint inflammation in genetically susceptible patients with treatment-resistant Lyme arthritis.
Insights
Persistent Lyme arthritis may stem from molecular mimicry in genetically susceptible individuals. Immune responses to Borrelia burgdorferi outer-surface protein A (OspA) may cross-react with human lymphocyte function-associated antigen-1 (hLFA-1), causing ongoing joint inflammation.
Area of Science:
- Immunology
- Molecular Biology
- Rheumatology
Background:
- Lyme arthritis can persist despite antibiotic treatment in approximately 10% of patients.
- Genetic susceptibility, particularly HLA-DRB1*0401 alleles, is observed in treatment-resistant cases.
Purpose of the Study:
- To investigate the mechanism of persistent Lyme arthritis in genetically susceptible individuals.
- To explore the role of molecular mimicry between Borrelia burgdorferi outer-surface protein A (OspA) and human proteins.
Main Methods:
- Predicted the immunodominant OspA epitope presented by HLA-DRB1*0401 using an algorithm.
- Searched for human proteins with sequence homology to the OspA epitope.
- Assessed T cell responses to OspA and identified human proteins in synovial fluid from patients.
Main Results:
- Identified lymphocyte function-associated antigen-1 (hLFA-1) as a human protein with sequence homology to OspA(165-173) and predicted binding to HLA-DRB1*0401.
- Synovial fluid T cells from most treatment-resistant Lyme arthritis patients responded to both OspA and hLFA-1.
- T cells from patients with other chronic inflammatory arthritis forms did not show this dual response.
Conclusions:
- Molecular mimicry between a dominant T cell epitope of OspA and hLFA-1 is proposed as a mechanism for persistent joint inflammation.
- This mimicry may be crucial in treatment-resistant Lyme arthritis among genetically susceptible individuals.
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