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.

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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