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Identifying Inhibitors of the HBx-DDB1 Interaction Using a Split Luciferase Assay System
Published on: December 21, 2019
Integrated virtual screening and MD simulation approaches toward discovering potential inhibitors for targeting BRPF1
Soumen Barman1, Ishita Bardhan1, Jyotirmayee Padhan1
1Department of Biological Sciences, Indian Institute of Science Education and Research Kolkata, Mohanpur, 741246, Nadia, West Bengal, India.
Abstract:
Hepatocellular carcinoma (HCC) is one of the most aggressive and life-threatening cancers. Although multiple treatment options are available, the prognosis of HCC patients is poor due to metastasis and drug resistance. Hence, discovering novel targets is essential for better therapeutic development for HCC. In this study, we used the cancer genome atlas (TCGA) dataset to analyze the expression of bromodomain-containing proteins in HCC, as bromodomains are emerging attractive therapeutic targets. Our analysis identified BRPF1 as the most highly upregulated gene in HCC among the 43 bromodomain-containing genes. Upregulation of BRPF1 was significantly associated with poorer patient survival. Therefore, targeting BRPF1 may be an approach for HCC treatment. Previously, several potential inhibitors of BRPF1 bromodomain have been discovered. However, due to the limited clinical success of the current inhibitors, we aim to search for new inhibitors with high affinity and specificity for the BRPF1 bromodomain. In this study, we utilized high-throughput virtual screening methods to screen synthetic and natural compound databases against the BRPF1 bromodomain. In addition, we used machine learning-based QSAR modeling to predict the IC50 values of the selected BRPF1 bromodomain inhibitors. Extensive MD simulations were used to calculate the binding free energies of BRPF1 bromodomain and inhibitor complexes. Using this approach, we identified four lead scaffolds with a similar or better binding affinity towards the BRPF1 bromodomain than the previously reported inhibitors. Overall, this study discovered some promising compounds that have the potential to act as potent BRPF1 bromodomain inhibitors.
Insights
Researchers identified Bromodomain-containing protein 1 (BRPF1) as a key target in Hepatocellular carcinoma (HCC). New potential inhibitors were discovered through virtual screening and computational modeling for improved HCC treatment.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Hepatocellular carcinoma (HCC) presents a significant clinical challenge due to poor prognosis, metastasis, and drug resistance.
- Novel therapeutic targets are crucial for advancing HCC treatment strategies.
- Bromodomain-containing proteins are emerging as promising targets in cancer therapy.
Purpose of the Study:
- To identify and validate novel therapeutic targets for HCC.
- To discover potent and specific inhibitors for the Bromodomain-containing protein 1 (BRPF1) in HCC.
Main Methods:
- Analysis of The Cancer Genome Atlas (TCGA) dataset to identify upregulated bromodomain genes in HCC.
- High-throughput virtual screening of compound databases against the BRPF1 bromodomain.
- Quantitative Structure-Activity Relationship (QSAR) modeling and molecular dynamics (MD) simulations to assess inhibitor efficacy and binding affinity.
Main Results:
- Bromodomain-containing protein 1 (BRPF1) was identified as the most significantly upregulated gene in HCC among 43 bromodomain genes.
- BRPF1 upregulation correlated with poorer patient survival.
- Four lead scaffolds exhibiting comparable or superior binding affinity to BRPF1 compared to existing inhibitors were identified.
Conclusions:
- BRPF1 is a promising therapeutic target for Hepatocellular carcinoma.
- The identified lead compounds demonstrate potential as novel BRPF1 bromodomain inhibitors.
- This study provides a foundation for developing new targeted therapies for HCC.
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