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Discovery of novel CBP bromodomain inhibitors through TR-FRET-based high-throughput screening
Feng-Cai Zhang1, Zhong-Ya Sun2,3, Li-Ping Liao3,4
1School of Pharmacy, Nanchang University, Nanchang, 330006, China.
Abstract:
The cAMP-responsive element binding protein (CREB) binding protein (CBP) and adenoviral E1A-binding protein (P300) are two closely related multifunctional transcriptional coactivators. Both proteins contain a bromodomain (BrD) adjacent to the histone acetyl transferase (HAT) catalytic domain, which serves as a promising drug target for cancers and immune system disorders. Several potent and selective small-molecule inhibitors targeting CBP BrD have been reported, but thus far small-molecule inhibitors targeting BrD outside of the BrD and extraterminal domain (BET) family are especially lacking. Here, we established and optimized a TR-FRET-based high-throughput screening platform for the CBP BrD and acetylated H4 peptide. Through an HTS assay against an in-house chemical library containing 20 000 compounds, compound DC_CP20 was discovered as a novel CBP BrD inhibitor with an IC50 value of 744.3 nM. This compound bound to CBP BrD with a KD value of 4.01 μM in the surface plasmon resonance assay. Molecular modeling revealed that DC_CP20 occupied the Kac-binding region firmly through hydrogen bonding with the conserved residue N1168. At the celluslar level, DC_CP20 dose-dependently inhibited the proliferation of human leukemia MV4-11 cells with an IC50 value of 19.2 μM and markedly downregulated the expression of the c-Myc in the cells. Taken together, the discovery of CBP BrD inhibitor DC_CP20 provides a novel chemical scaffold for further medicinal chemistry optimization and a potential chemical probe for CBP-related biological function research. In addition, this inhibitor may serve as a promising therapeutic strategy for MLL leukemia by targeting CBP BrD protein.
Insights
Researchers discovered DC_CP20, a new inhibitor targeting the CREB-binding protein (CBP) bromodomain (BrD). This compound shows potential for treating cancers like MLL leukemia by inhibiting cell proliferation and c-Myc expression.
Area of Science:
- Biochemistry
- Molecular Biology
- Medicinal Chemistry
Background:
- The cAMP-responsive element binding protein (CREB) binding protein (CBP) and P300 are key transcriptional coactivators with a bromodomain (BrD) and histone acetyl transferase (HAT) domain.
- CBP BrD is a drug target for cancers and immune disorders, but selective small-molecule inhibitors outside the BET family are scarce.
Purpose of the Study:
- To develop and optimize a high-throughput screening (HTS) platform for CBP BrD inhibitors.
- To identify novel small-molecule inhibitors targeting the CBP BrD.
Main Methods:
- Established and optimized a TR-FRET-based HTS platform.
- Screened an in-house chemical library of 20,000 compounds.
- Validated inhibitor activity using surface plasmon resonance (SPR) and cell-based assays.
Main Results:
- Discovered DC_CP20 as a novel CBP BrD inhibitor with IC50 of 744.3 nM.
- DC_CP20 bound to CBP BrD with a KD of 4.01 μM and occupied the Kac-binding region.
- DC_CP20 inhibited MV4-11 leukemia cell proliferation (IC50 = 19.2 μM) and downregulated c-Myc expression.
Conclusions:
- DC_CP20 is a promising chemical scaffold for CBP BrD inhibitor development and a potential chemical probe.
- DC_CP20 offers a potential therapeutic strategy for MLL leukemia by targeting CBP BrD.
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