Molecular mechanism of T-cell protein tyrosine phosphatase (TCPTP) activation by mitoxantrone
Mikko Ylilauri1, Elina Mattila, Elisa M Nurminen
1Department of Biological and Environmental Science & Nanoscience Center, P.O. Box 35, FI-40014 University of Jyväskylä, Finland.
Abstract:
T-cell protein tyrosine phosphatase (TCPTP) is a ubiquitously expressed non-receptor protein tyrosine phosphatase. It is involved in the negative regulation of many cellular signaling pathways. Thus, activation of TCPTP could have important therapeutic applications in diseases such as cancer and inflammation. We have previously shown that the α-cytoplasmic tail of integrin α1β1 directly binds and activates TCPTP. In addition, we have identified in a large-scale high-throughput screen six small molecules that activate TCPTP. These small molecule activators include mitoxantrone and spermidine. In this study, we have investigated the molecular mechanism behind agonist-induced TCPTP activation. By combining several molecular modeling and biochemical techniques, we demonstrate that α1-peptide and mitoxantrone activate TCPTP via direct binding to the catalytic domain, whereas spermidine does not interact with the catalytic domain of TCPTP in vitro. Furthermore, we have identified a hydrophobic groove surrounded by negatively charged residues on the surface of TCPTP as a putative binding site for the α1-peptide and mitoxantrone. Importantly, these data have allowed us to identify a new molecule that binds to TCPTP, but interestingly cannot activate its phosphatase activity. Accordingly, we describe here mechanism of TCPTP activation by mitoxantrone, the cytoplasmic tail of α1-integrin, and a mitoxantrone-like molecule at the atomic level. These data provide invaluable insight into the development of novel TCPTP activators, and may facilitate the rational discovery of small-molecule cancer therapeutics.
Insights
T-cell protein tyrosine phosphatase (TCPTP) activation by integrin α1-cytoplasmic tail and mitoxantrone offers therapeutic potential. This study elucidates the atomic-level mechanisms of TCPTP activation, aiding cancer drug discovery.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- T-cell protein tyrosine phosphatase (TCPTP) is a key regulator of cellular signaling pathways.
- TCPTP dysregulation is implicated in cancer and inflammatory diseases.
- Targeting TCPTP for therapeutic activation holds significant promise.
Purpose of the Study:
- To investigate the molecular mechanisms of agonist-induced TCPTP activation.
- To elucidate the binding interactions of small molecule activators with TCPTP.
- To provide insights for the rational design of novel TCPTP-targeting therapeutics.
Main Methods:
- Molecular modeling
- Biochemical assays
- High-throughput screening
Main Results:
- α1-peptide and mitoxantrone activate TCPTP through direct binding to its catalytic domain.
- Spermidine does not interact with the TCPTP catalytic domain in vitro.
- A hydrophobic groove on TCPTP surface identified as a binding site for α1-peptide and mitoxantrone.
Conclusions:
- The study reveals the atomic-level mechanisms of TCPTP activation by specific agonists.
- Identified binding sites and interactions provide a foundation for developing novel TCPTP activators.
- Findings facilitate the rational discovery of small-molecule therapeutics for cancer and inflammatory conditions.
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