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Crystal Structure of the DNA Deaminase APOBEC3B Catalytic Domain
Ke Shi1, Michael A Carpenter1, Kayo Kurahashi1
1Department of Biochemistry, Molecular Biology, and Biophysics; Institute for Molecular Virology; Masonic Cancer Center.
Abstract:
Functional and deep sequencing studies have combined to demonstrate the involvement of APOBEC3B in cancer mutagenesis. APOBEC3B is a single-stranded DNA cytosine deaminase that functions normally as a nuclear-localized restriction factor of DNA-based pathogens. However, it is overexpressed in cancer cells and elicits an intrinsic preference for 5'-TC motifs in single-stranded DNA, which is the most frequently mutated dinucleotide in breast, head/neck, lung, bladder, cervical, and several other tumor types. In many cases, APOBEC3B mutagenesis accounts for the majority of both dispersed and clustered (kataegis) cytosine mutations. Here, we report the first structures of the APOBEC3B catalytic domain in multiple crystal forms. These structures reveal a tightly closed active site conformation and suggest that substrate accessibility is regulated by adjacent flexible loops. Residues important for catalysis are identified by mutation analyses, and the results provide insights into the mechanism of target site selection. We also report a nucleotide (dCMP)-bound crystal structure that informs a multistep model for binding single-stranded DNA. Overall, these high resolution crystal structures provide a framework for further mechanistic studies and the development of novel anti-cancer drugs to inhibit this enzyme, dampen tumor evolution, and minimize adverse outcomes such as drug resistance and metastasis.
Insights
The APOBEC3B enzyme, overexpressed in many cancers, causes DNA mutations. Researchers determined its structure, revealing how it binds DNA and offering targets for new anti-cancer drugs.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- APOBEC3B is a DNA cytosine deaminase implicated in cancer mutagenesis.
- It is overexpressed in cancer cells and targets specific DNA motifs, contributing significantly to mutations in various tumor types.
Purpose of the Study:
- To determine the high-resolution crystal structures of the APOBEC3B catalytic domain.
- To elucidate the enzyme's mechanism of single-stranded DNA binding and target site selection.
Main Methods:
- X-ray crystallography was used to obtain multiple crystal forms of the APOBEC3B catalytic domain.
- Mutation analyses were performed to identify key residues involved in catalysis.
Main Results:
- The structures reveal a closed active site conformation, with flexible loops regulating substrate access.
- A nucleotide (dCMP)-bound structure provides insights into a multistep DNA binding model.
- Key catalytic residues were identified, offering a mechanistic understanding of target site selection.
Conclusions:
- The determined crystal structures provide a framework for understanding APOBEC3B function.
- These findings pave the way for developing novel anti-cancer drugs targeting APOBEC3B to inhibit tumor evolution and reduce drug resistance and metastasis.
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