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Published on: May 1, 2020
Targeting the ubiquitin-conjugating enzyme E2D4 for cancer drug discovery-a structure-based approach
Vishwanath Ramatenki1, Ramakrishna Dumpati1, Rajender Vadija1
1Department of Chemistry, University College of Science, Osmania University, Hyderabad, Telangana 500007 India.
Abstract:
Cancer progression is a global burden. The incidence and mortality now reach 30 million deaths per year. Several pathways of cancer are under investigation for the discovery of effective therapeutics. The present study highlights the structural details of the ubiquitin protein 'Ubiquitin-conjugating enzyme E2D4' (UBE2D4) for the novel lead structure identification in cancer drug discovery process. The evaluation of 3D structure of UBE2D4 was carried out using homology modelling techniques. The optimized structure was validated by standard computational protocols. The active site region of the UBE2D4 was identified using computational tools like CASTp, Q-site Finder and SiteMap. The hydrophobic pocket which is responsible for binding with its natural receptor ubiquitin ligase CHIP (C-terminal of Hsp 70 interacting protein) was identified through protein-protein docking study. Corroborating the results obtained from active site prediction tools and protein-protein docking study, the domain of UBE2D4 which is responsible for cancer cell progression is sorted out for further docking study. Virtual screening with large structural database like CB_Div Set and Asinex BioDesign small molecular structural database was carried out. The obtained new ligand molecules that have shown affinity towards UBE2D4 were considered for ADME prediction studies. The identified new ligand molecules with acceptable parameters of docking, ADME are considered as potent UBE2D4 enzyme inhibitors for cancer therapy.
Insights
Researchers identified novel drug leads for cancer therapy by analyzing the structure of ubiquitin-conjugating enzyme E2D4 (UBE2D4). This computational study reveals potential inhibitors for UBE2D4, a key protein in cancer progression.
Area of Science:
- Biochemistry
- Structural Biology
- Computational Chemistry
Background:
- Cancer progression represents a significant global health challenge, necessitating the development of novel therapeutic strategies.
- Investigating molecular pathways involved in cancer is crucial for identifying effective drug targets.
Purpose of the Study:
- To elucidate the structural details of Ubiquitin-conjugating enzyme E2D4 (UBE2D4) for novel lead structure identification in cancer drug discovery.
- To identify potential UBE2D4 enzyme inhibitors for cancer therapy through computational methods.
Main Methods:
- Homology modeling was employed to evaluate the 3D structure of UBE2D4.
- Active site prediction and protein-protein docking studies were performed using CASTp, Q-site Finder, and SiteMap.
- Virtual screening of large molecular databases and ADME prediction studies were conducted.
Main Results:
- The active site and a crucial hydrophobic pocket of UBE2D4 were identified.
- Protein-protein docking revealed interactions with ubiquitin ligase CHIP.
- Virtual screening identified novel ligand molecules with affinity for UBE2D4.
Conclusions:
- The study successfully identified potent UBE2D4 enzyme inhibitors through computational analysis.
- These identified ligands show promise as novel therapeutic agents for cancer treatment.
- The structural insights into UBE2D4 aid in the ongoing development of targeted cancer therapies.
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