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In Vitro Ubiquitination and Deubiquitination Assays of Nucleosomal Histones
Published on: July 25, 2019
Kinetic Characterization of ASXL1/2-Mediated Allosteric Regulation of the BAP1 Deubiquitinase
Hongzhuang Peng1, Joel Cassel2, Daniel S McCracken2,3
1The Wistar Institute, Philadelphia, Pennsylvania. joseph.testa@fccc.edu hongzhuangpeng851@gmail.com.
Abstract:
BAP1 is an ubiquitin hydrolase whose deubiquitinase activity is mediated by polycomb group-like protein ASXL2. Cancer-related BAP1 mutations/deletions lead to loss-of-function by targeting the catalytic ubiquitin C-terminal hydrolase (UCH) or UCH37-like domain (ULD) domains of BAP1, and the latter disrupts binding to ASXL2, an obligate partner for BAP1 enzymatic activity. However, the biochemical and biophysical properties of domains involved in forming the enzymatically active complex are unknown. Here, we report the molecular dynamics, kinetics, and stoichiometry of these interactions. We demonstrate that interactions between BAP1 and ASXL2 are direct, specific, and stable to biochemical and biophysical manipulations as detected by isothermal titration calorimetry (ITC), GST association, and optical biosensor assays. Association of the ASXL2-AB box greatly stimulates BAP1 activity. A stable ternary complex is formed, comprised of the BAP1-UCH, BAP1-ULD, and ASXL2-AB domains. Stoichiometric analysis revealed that one molecule of the ULD domain directly interacts with one molecule of the AB box. Real-time kinetic analysis of the ULD/AB protein complex to the BAP1-UCH domain, based on surface plasmon resonance, indicated that formation of the ULD/AB complex with the UCH domain is a single-step event with fast association and slow dissociation rates. In vitro experiments validated in cells that the ASXL-AB box directly regulates BAP1 activity. IMPLICATIONS: Collectively, these data elucidate molecular interactions between specific protein domains regulating BAP1 deubiquitinase activity, thus establishing a foundation for small-molecule approaches to reactivate latent wild-type BAP1 catalytic activity in BAP1-mutant cancers.
Insights
The ASXL2-AB box directly binds BAP1, forming a stable complex that enhances its deubiquitinase activity. This finding offers a basis for developing drugs to restore BAP1 function in cancer.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- BRCA1-associated protein 1 (BAP1) is a ubiquitin hydrolase crucial for cellular function.
- Cancer-associated BAP1 mutations impair its deubiquitinase activity by disrupting interactions with its partner ASXL2.
- The specific biochemical and biophysical properties governing BAP1-ASXL2 complex formation remain largely uncharacterized.
Purpose of the Study:
- To elucidate the molecular dynamics, kinetics, and stoichiometry of interactions between BAP1 and ASXL2 domains.
- To characterize the biochemical and biophysical properties of the domains involved in forming the enzymatically active BAP1-ASXL2 complex.
- To establish a foundation for developing therapeutic strategies targeting BAP1 activity in cancer.
Main Methods:
- Isothermal titration calorimetry (ITC) to assess binding thermodynamics.
- GST pull-down assays to evaluate protein-protein interactions.
- Optical biosensor assays (e.g., surface plasmon resonance) for real-time kinetic analysis.
Main Results:
- BAP1 and ASXL2 interactions are direct, specific, and stable.
- The ASXL2-AB box significantly enhances BAP1 deubiquitinase activity.
- A stable ternary complex forms, comprising BAP1-UCH, BAP1-ULD, and ASXL2-AB domains.
- Kinetic analysis revealed a single-step binding event with fast association and slow dissociation rates.
Conclusions:
- The ASXL2-AB box directly regulates BAP1 deubiquitinase activity through stable complex formation.
- Understanding these domain interactions provides a basis for reactivating BAP1 in BAP1-mutant cancers.
- This research paves the way for small-molecule therapies aimed at restoring BAP1 function in cancer treatment.
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