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Assessing Cellular Target Engagement by SHP2 PTPN11 Phosphatase Inhibitors
Published on: July 17, 2020
An In Silico Study Investigating Camptothecin-Analog Interaction with Human Protein Tyrosine Phosphatase, SHP2
Donald Bajia1, Katarzyna Derwich1
1Department of Pediatric Oncology, Hematology and Transplantology, Poznan University of Medical Sciences, Ul. Fredry 10, 61701 Poznan, Poland.
Abstract:
The human PTPN11 gene encodes for the src tyrosine phosphatase protein (SHP2) is now gaining much attention in many disorders, particularly its oncogenic involvement in many types of cancer. Efforts in developing molecules targeting SHP2 with high efficacy are the future of drug discovery and chemotherapy. However, the interaction of a new camptothecin analog with the catalytic domain of SHP2 protein remains unknown. Therefore, this study aims to provide in silico rationale for the recognition and binding of FL118 and irinotecan with the catalytic domain of human protein tyrosine phosphatase-SHP2 (PTPc-SH2-SHP2, chain A). The docking interaction of the human SHP2 protein's catalytic domain as well as Y279C and R465G mutants with FL118 and irinotecan ligands were calculated and analyzed using the Autodock 4.2 programme, setting the docking grid to target the protein's active site. The camptothecin analog FL118 had the best lowest negative affinity energies with PTPc-SHP2 wildtype and SHP2-Y279C mutant model (-7.54 Kcal/mol and -6.94 Kcal/mol, respectively). Moreover, the protein-ligand complexes revealed several hydrogen bond interactions reflecting the degree of stability that each structure possesses, with the FL118-SHP2-wildtype forming the most stable complex among the structures. In addition, the FL118-SHP2 wildtype complex was validated for RMSD, RMSF, hydrogen bonds, and salt bridges. This revealed that the complex generated became stable over time. This in silico rationale identifies the novel FL118 camptothecin analog as a potent selective inhibitor of PTPc-SH2 domain of SHP2 protein, paving way for further in vitro investigations into the interactions and binding activity of analogs with SHP2 for potential therapeutic applications in PTPN11-associated disorders.
Insights
This study used computational methods to investigate how the FL118 drug interacts with the SHP2 protein, a key player in cancer. FL118 showed strong binding, suggesting its potential as a targeted cancer therapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- The PTPN11 gene encodes SHP2, a protein implicated in various cancers.
- Targeting SHP2 is a promising strategy for cancer drug discovery and chemotherapy.
- The interaction of novel camptothecin analogs with SHP2 remains largely unexplored.
Purpose of the Study:
- To provide an in silico rationale for the binding of FL118 and irinotecan to the catalytic domain of human SHP2.
- To evaluate the binding affinity and stability of these ligands with wildtype and mutant SHP2 models.
Main Methods:
- In silico molecular docking using Autodock 4.2.
- Analysis of docking interactions, affinity energies, and hydrogen bonds.
- Validation of the FL118-SHP2 complex stability using RMSD, RMSF, hydrogen bonds, and salt bridges.
Main Results:
- FL118 exhibited the strongest binding affinity to PTPc-SHP2 wildtype (-7.54 Kcal/mol) and SHP2-Y279C mutant (-6.94 Kcal/mol).
- The FL118-SHP2 wildtype complex demonstrated the highest stability through multiple hydrogen bond interactions.
- Computational validation confirmed the stability of the FL118-SHP2 wildtype complex over time.
Conclusions:
- FL118 is identified as a potent and selective inhibitor of the PTPc-SH2 domain of SHP2.
- This in silico study provides a foundation for further in vitro research on FL118 and other SHP2 inhibitors.
- FL118 shows potential for therapeutic applications in PTPN11-associated disorders and cancers.
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