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Updated: Feb 16, 2026

Spatiotemporal Control of Protein Activity through Optogenetic Allosteric Regulation
Published on: October 4, 2024
Familial and Somatic BAP1 Mutations Inactivate ASXL1/2-Mediated Allosteric Regulation of BAP1 Deubiquitinase by
Hongzhuang Peng1, Jeremy Prokop2, Jayashree Karar1
1Wistar Institute, Philadelphia, Pennsylvania.
Abstract:
Deleterious mutations of the ubiquitin carboxy-terminal hydrolase BAP1 found in cancers are predicted to encode inactive truncated proteins, suggesting that loss of enzyme function is a primary tumorigenic mechanism. However, many tumors exhibit missense mutations or in-frame deletions or insertions, often outside the functionally critical UCH domain in this tumor suppressor protein. Thus, precisely how these mutations inactivate BAP1 is unknown. Here, we show how these mutations affect BAP1 interactions with the Polycomb group-like protein, ASXL2, using combinations of computational modeling technology, molecular biology, and in vitro reconstitution biochemistry. We found that the BAP1-ASXL2 interaction is direct and high affinity, occurring through the ASXH domain of ASXL2, an obligate partner for BAP1 enzymatic activity. The ASXH domain was the minimal domain for binding the BAP1 ULD domain, and mutations on the surfaces of predicted helices of ASXH abolished BAP1 association and stimulation of BAP1 enzymatic activity. The BAP1-UCH, BAP1-ULD, and ASXH domains formed a cooperative stable ternary complex required for deubiquitination. We defined four classes of alterations in BAP1 outside the UCH domain, each failing to productively recruit ASXH to the wild-type BAP1 catalytic site via the ULD, resulting in loss of BAP1 ubiquitin hydrolase activity. Our results indicate that many BAP1 mutations act allosterically to inhibit ASXH binding, thereby leading to loss of enzyme activity. Small-molecule approaches to reactivate latent wild-type UCH activity of these mutants might be therapeutically viable.Significance: Combined computational and biochemical approaches demonstrate that the BAP1-ASXL2 interaction is direct and high affinity and that many BAP1 mutations act allosterically to inhibit BAP1-ASXL2 binding. Cancer Res; 78(5); 1200-13. ©2017 AACR.
Insights
Mutations in the BAP1 tumor suppressor protein often inactivate its function by disrupting its interaction with ASXL2. This allosteric inhibition of binding leads to loss of deubiquitination activity, offering potential therapeutic targets.
Area of Science:
- Molecular biology
- Biochemistry
- Cancer research
Background:
- Deleterious mutations in the BAP1 (BRCA1-associated protein 1) tumor suppressor are common in cancers.
- While some mutations lead to inactive truncated proteins, many missense mutations or in-frame indels outside the UCH domain suggest alternative inactivation mechanisms.
- The precise impact of these non-UCH domain mutations on BAP1 function remains unclear.
Purpose of the Study:
- To elucidate the mechanism by which non-UCH domain mutations in BAP1 inactivate its tumor suppressor function.
- To investigate the direct interaction between BAP1 and its partner protein ASXL2 (ASXL transcriptional regulator 2).
- To explore the potential for therapeutic reactivation of BAP1 activity.
Main Methods:
- Computational modeling
- Molecular biology techniques
- In vitro biochemical reconstitution assays
Main Results:
- The interaction between BAP1 and ASXL2 is direct, high-affinity, and mediated by the ASXL2 ASXH domain binding to the BAP1 ULD domain.
- Mutations in the ASXL2 ASXH domain disrupt BAP1 binding and abolish BAP1 enzymatic activity.
- A ternary complex of BAP1-UCH, BAP1-ULD, and ASXH is essential for deubiquitination; four classes of BAP1 mutations impair ASXL2 recruitment, leading to loss of hydrolase activity.
Conclusions:
- Many BAP1 mutations act allosterically, inhibiting the binding of ASXL2 and consequently leading to loss of BAP1 ubiquitin hydrolase activity.
- The BAP1-ASXL2 interaction is crucial for BAP1's tumor-suppressive function.
- Targeting these allosteric mechanisms with small molecules could offer a therapeutic strategy to restore BAP1 activity.
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