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Electrochemiluminescence Assays for Human Islet Autoantibodies
Published on: March 23, 2018
Structural mapping of hot spots within human CASPR2 discoidin domain for autoantibody recognition
Wenjun Liang1, Junying Zhang1, Margaux Saint-Martin2
1State Key Laboratory of Natural and Biomimetic Drugs & School of Pharmaceutical Sciences, Peking University Health Science Center, 38 Xueyuan Road, Haidian District, Beijing 100191, China; Department of Molecular and Cellular Pharmacology, School of Pharmaceutical Sciences, Peking University Health Science Center, 38 Xueyuan Road, Haidian District, Beijing 100191, China.
Abstract:
Accumulating evidence has showed that anti-CASPR2 autoantibodies occur in a long list of neurological immune disorders including limbic encephalitis (LE). Belonging to the well-known neurexin superfamily, CASPR2 has been suggested to be a central node in the molecular networks controlling neurodevelopment. Distinct from other subfamilies in the neurexin superfamily, the CASPR subfamily features a unique discoidin (Disc) domain. As revealed by our and others' recent studies, CASPR2 Disc domain bears a major epitope for autoantibodies. However, structural information on CASPR2 recognition by autoantibodies has been lacking. Here, we report the crystal structure of human CASPR2 Disc domain at a high resolution of 1.31 Å, which is the first atomic-resolution structure of the CASPR subfamily members. The Disc domain adopts a total β structure and folds into a distorted jellyroll-like barrel with a conserved disulfide-bond interlocking its N- and C-termini. Defined by four loops and located in one end of the barrel, the "loop-tip surface" is totally polar and easily available for protein docking. Based on structure-guided epitope prediction, we generated nine mutants and evaluated their binding to autoantibodies of cerebrospinal fluid from twelve patients with limbic encephalitis. The quadruple mutant G69N/A71S/S77N/D78R impaired CASPR2 binding to autoantibodies from eleven LE patients, which indicates that the loop L1 in the Disc domain bears hot spots for autoantibody interaction. Structural mapping of autoepitopes within human CASPR2 Disc domain sheds light on how autoantibodies could sequester CASPR2 ectodomain and antagonize its functionalities in the pathogenic processes.
Insights
Autoantibodies targeting the CASPR2 discoidin domain are implicated in limbic encephalitis. This study reveals the high-resolution structure of the CASPR2 discoidin domain, identifying key autoantibody binding sites crucial for understanding disease pathogenesis.
Area of Science:
- Neuroimmunology
- Structural Biology
- Molecular Neuroscience
Background:
- Anti-CASPR2 autoantibodies are linked to neurological disorders like limbic encephalitis (LE).
- The CASPR2 discoidin (Disc) domain is a primary target for these autoantibodies.
- Structural insights into CASPR2-autoantibody interactions have been limited.
Purpose of the Study:
- To determine the high-resolution crystal structure of the human CASPR2 Disc domain.
- To identify the specific regions within the CASPR2 Disc domain that are targeted by autoantibodies.
- To elucidate the structural basis of autoantibody recognition for understanding pathogenic mechanisms in anti-CASPR2 encephalitis.
Main Methods:
- X-ray crystallography to determine the atomic structure of the human CASPR2 Disc domain.
- Structure-guided epitope prediction and site-directed mutagenesis.
- Autoantibody binding assays using cerebrospinal fluid from limbic encephalitis patients.
Main Results:
- The first atomic-resolution crystal structure of the CASPR2 Disc domain was determined at 1.31 Å resolution.
- The Disc domain adopts a beta-barrel structure with a conserved disulfide bond.
- Mutational analysis identified the L1 loop as a critical region ('hot spot') for autoantibody binding in LE patients.
Conclusions:
- The structure of the CASPR2 Disc domain provides a molecular basis for autoantibody recognition.
- The L1 loop is a major autoepitope, suggesting a mechanism for autoantibody-mediated functional antagonism.
- These findings are crucial for understanding the pathogenesis of anti-CASPR2 autoimmune neurological disorders.
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