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Crystal Structures of the Human Doublecortin C- and N-terminal Domains in Complex with Specific Antibodies
Dominique Burger1, Martine Stihle1, Ashwani Sharma2
1From the pRED Pharma Research and Early Development, Therapeutic Modalities, and.
Abstract:
Doublecortin is a microtubule-associated protein produced during neurogenesis. The protein stabilizes microtubules and stimulates their polymerization, which allows migration of immature neurons to their designated location in the brain. Mutations in the gene that impair doublecortin function and cause severe brain formation disorders are located on a tandem repeat of two doublecortin domains. The molecular mechanism of action of doublecortin is only incompletely understood. Anti-doublecortin antibodies, such as the rabbit polyclonal Abcam 18732, are widely used as neurogenesis markers. Here, we report the generation and characterization of antibodies that bind to single doublecortin domains. The antibodies were used as tools to obtain structures of both domains. Four independent crystal structures of the N-terminal domain reveal several distinct open and closed conformations of the peptide linking N- and C-terminal domains, which can be related to doublecortin function. An NMR assignment and a crystal structure in complex with a camelid antibody fragment show that the doublecortin C-terminal domain adopts the same well defined ubiquitin-like fold as the N-terminal domain, despite its reported aggregation and molten globule-like properties. The antibodies' unique domain specificity also renders them ideal research tools to better understand the role of individual domains in doublecortin function. A single chain camelid antibody fragment specific for the C-terminal doublecortin domain affected microtubule binding, whereas a monoclonal mouse antibody specific for the N-terminal domain did not. Together with steric considerations, this suggests that the microtubule-interacting doublecortin domain observed in cryo-electron micrographs is the C-terminal domain rather than the N-terminal one.
Insights
New antibodies targeting single doublecortin domains reveal distinct structures and functions. The C-terminal domain, not the N-terminal, appears crucial for microtubule binding in neurogenesis.
Area of Science:
- Neuroscience
- Structural Biology
- Molecular Biology
Background:
- Doublecortin (DC) is a key microtubule-associated protein essential for neuronal migration during neurogenesis.
- Mutations in the doublecortin gene lead to severe brain malformations, highlighting its critical role.
- The precise molecular mechanism of doublecortin function remains incompletely understood.
Purpose of the Study:
- To generate and characterize novel antibodies with single doublecortin domain specificity.
- To elucidate the structural and functional roles of individual doublecortin domains.
- To identify which doublecortin domain mediates microtubule interaction.
Main Methods:
- Generation and characterization of domain-specific antibodies against doublecortin.
- X-ray crystallography to determine N-terminal doublecortin domain structures.
- NMR spectroscopy and X-ray crystallography for C-terminal doublecortin domain structure determination.
- Functional assays using antibody fragments to assess microtubule binding.
Main Results:
- Four crystal structures revealed distinct open and closed conformations of the N-terminal domain.
- The C-terminal doublecortin domain shares a ubiquitin-like fold with the N-terminal domain.
- A C-terminal specific antibody fragment inhibited microtubule binding, while an N-terminal specific antibody did not.
Conclusions:
- The C-terminal doublecortin domain is likely responsible for microtubule interaction during neurogenesis.
- Domain-specific antibodies are valuable tools for dissecting doublecortin function.
- Structural and functional data provide new insights into doublecortin's role in brain development.
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