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Malachite Green Assay for the Discovery of Heat-Shock Protein 90 Inhibitors
Published on: January 20, 2023
Heat Shock Protein 90 (HSP90) Inhibitors as Anticancer Medicines: A Review on the Computer-Aided Drug Discovery
Ayanda M Magwenyane1, Samuel C Ugbaja1, Daniel G Amoako1,2
1Drug Research and Innovation Unit, Discipline of Medical Biochemistry, School of Laboratory Medicine and Medical Science, University of KwaZulu-Natal, Durban 4000, South Africa.
Abstract:
Cancer is a disease caused by the uncontrolled, abnormal growth of cells in different anatomic sites. In 2018, it was predicted that the worldwide cancer burden would rise to 18.1 million new cases and 9.6 million deaths. Anticancer compounds, often known as chemotherapeutic medicines, have gained much interest in recent cancer research. These medicines work through various biological processes in targeting cells at various stages of the cell's life cycle. One of the most significant roadblocks to developing anticancer drugs is that traditional chemotherapy affects normal cells and cancer cells, resulting in substantial side effects. Recently, advancements in new drug development methodologies and the prediction of the targeted interatomic and intermolecular ligand interaction sites have been beneficial. This has prompted further research into developing and discovering novel chemical species as preferred therapeutic compounds against specific cancer types. Identifying new drug molecules with high selectivity and specificity for cancer is a prerequisite in the treatment and management of the disease. The overexpression of HSP90 occurs in patients with cancer, and the HSP90 triggers unstable harmful kinase functions, which enhance carcinogenesis. Therefore, the development of potent HSP90 inhibitors with high selectivity and specificity becomes very imperative. The activities of HSP90 as chaperones and cochaperones are complex due to the conformational dynamism, and this could be one of the reasons why no HSP90 drugs have made it beyond the clinical trials. Nevertheless, HSP90 modulations appear to be preferred due to the competitive inhibition of the targeted N-terminal adenosine triphosphate pocket. This study, therefore, presents an overview of the various computational models implored in the development of HSP90 inhibitors as anticancer medicines. We hereby suggest an extensive investigation of advanced computational modelling of the three different domains of HSP90 for potent, effective inhibitor design with minimal off-target effects.
Insights
Developing novel anticancer drugs requires targeting Heat Shock Protein 90 (HSP90) inhibitors. Computational modeling offers a promising approach for designing effective HSP90 inhibitors with high specificity and minimal side effects.
Area of Science:
- Oncology
- Computational Chemistry
- Drug Discovery
Background:
- Cancer, characterized by uncontrolled cell growth, poses a significant global health challenge.
- Traditional chemotherapy often causes severe side effects due to its impact on normal cells.
- Heat Shock Protein 90 (HSP90) is overexpressed in cancer, promoting carcinogenesis, making it a key therapeutic target.
Purpose of the Study:
- To review computational models used in developing HSP90 inhibitors as anticancer agents.
- To highlight the need for selective and specific HSP90 inhibitors to overcome limitations of current therapies.
Main Methods:
- Overview of various computational modeling techniques applied to HSP90 inhibitor development.
- Focus on targeting the N-terminal adenosine triphosphate pocket of HSP90 for competitive inhibition.
Main Results:
- Computational approaches are crucial for identifying novel chemical entities with anticancer potential.
- Understanding HSP90's complex conformational dynamics is key to designing effective inhibitors.
Conclusions:
- Advanced computational modeling of HSP90's three domains is recommended for designing potent inhibitors.
- This approach aims to minimize off-target effects and improve therapeutic outcomes in cancer treatment.
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