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Published on: March 31, 2010
Molecular dynamics studies on the interactions of PTP1B with inhibitors: from the first phosphate-binding site to the
Jing-Fang Wang1, Ke Gong, Dong-Qing Wei
1Bioinformatics Center, Key Laboratory of Systems Biology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200031, Peoples Republic of China.
Abstract:
Protein tyrosine phosphatases 1B (PTP1B) is a major negative regulator of both insulin and leptin signaling pathways. In view of this, it becomes an important target for drug development against cancers, diabetes and obesity. The aim of the current study is to use the long time-scale molecular dynamics (MD) simulations to investigate the structural and dynamic factors that cause its inhibition by INTA and INTB, the two most potent and highly selective PTP1B inhibitors known so far. In order to investigate the mode of collective motions that is vitally important to the biological function, the covariance matrix of C(alpha) atoms was introduced for performing the dynamic analysis of the inhibition systems. It has been observed that the conformational and dynamic features of WPD-Loop, R-Loop and S-Loop play a key role in providing a smooth entrance for the inhibitors moving into the binding pocket as well as a favorable microenvironment to stabilize them. Furthermore, the hydrogen bonding networks formed around the active site with INTA and INTB may be the main reason of why the inhibition of PTP1B by the two ligands is so potent and selective. All these findings might provide useful insights for developing novel and effective drugs to treat cancer, diabetes and obesity.
Insights
This study reveals how INTA and INTB inhibit Protein Tyrosine Phosphatase 1B (PTP1B) by analyzing molecular dynamics. Key structural features and hydrogen bonds explain the potent and selective inhibition of PTP1B.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Protein tyrosine phosphatase 1B (PTP1B) negatively regulates insulin and leptin signaling.
- PTP1B is a significant drug target for obesity, diabetes, and cancer.
Purpose of the Study:
- Investigate structural and dynamic factors of PTP1B inhibition by INTA and INTB using molecular dynamics (MD) simulations.
- Analyze collective motions crucial for PTP1B biological function and inhibition.
Main Methods:
- Long time-scale molecular dynamics (MD) simulations.
- Dynamic analysis using the covariance matrix of C(alpha) atoms.
- Examination of inhibitor binding and stabilization mechanisms.
Main Results:
- WPD-Loop, R-Loop, and S-Loop conformational dynamics facilitate inhibitor entry and stabilization.
- Extensive hydrogen bonding networks around the active site contribute to potent and selective inhibition.
- Collective motions are vital for understanding PTP1B inhibition.
Conclusions:
- The study provides insights into the mechanism of PTP1B inhibition by INTA and INTB.
- Findings may guide the development of novel therapeutics for metabolic disorders and cancer.
- Understanding PTP1B dynamics is key for drug design.
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