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Targeting SHP-1, 2 and SHIP Pathways: A Novel Strategy for Cancer Treatment?
Wolfram C M Dempke1,2, Peter Uciechowski3, Klaus Fenchel4
1Department of Haematology and Oncology, University Clinic Grosshadern, University of Munich, Munich, Germany.
Abstract:
Well-balanced levels of tyrosine phosphorylation, maintained by the reversible and coordinated actions of protein tyrosine kinases (PTKs) and protein tyrosine phosphatases (PTPs), are critical for a wide range of cellular processes including growth, differentiation, metabolism, migration, and survival. Aberrant tyrosine phosphorylation, as a result of a perturbed balance between the activities of PTKs and PTPs, is linked to the pathogenesis of numerous human diseases, including cancer, suggesting that PTPs may be innovative molecular targets for cancer treatment. Two PTPs that have an important inhibitory role in haematopoietic cells are SHP-1 and SHP-2. SHP-1, 2 promote cell growth and act by both upregulating positive signaling pathways and by downregulating negative signaling pathways. SHIP is another inhibitory phosphatase that is specific for the inositol phospholipid phosphatidylinositol-3,4,5-trisphosphate (PIP3). SHIP acts as a negative regulator of immune response by hydrolysing PIP3, and SHIP deficiency results in myeloproliferation and B-cell lymphoma in mice. The validation of SHP-1, 2 and SHIP as oncology targets has generated interest in the development of inhibitors as potential therapeutic agents for cancers; however, SHP-1, 2 and SHIP have proven to be an extremely difficult target for drug discovery, primarily due to the highly conserved and positively charged nature of their PTP active site, and many PTP inhibitors lack either appro-priate selectivity or membrane permeability. To overcome these caveats, novel techniques have been employed to synthesise new inhibitors that specifically attenuate the PTP-dependent signaling inside the cell and amongst them; some are already in clinical development which are discussed in this review.
Insights
Protein tyrosine phosphatases (PTPs) are crucial for cell function, and their dysregulation contributes to cancer. Developing selective PTP inhibitors is challenging but vital for novel cancer therapies.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Tyrosine phosphorylation, regulated by protein tyrosine kinases (PTKs) and protein tyrosine phosphatases (PTPs), is essential for cellular processes.
- Imbalances in PTP activity are linked to diseases like cancer, highlighting PTPs as potential therapeutic targets.
- SHP-1, SHP-2, and SHIP are key inhibitory phosphatases in hematopoietic cells, with dysregulation leading to myeloproliferation and lymphoma.
Purpose of the Study:
- To review the challenges and advancements in developing PTP inhibitors for cancer treatment.
- To explore novel techniques for synthesizing PTP inhibitors with improved selectivity and cell permeability.
- To discuss PTP inhibitors currently in clinical development for oncology.
Main Methods:
- Review of existing literature on PTPs, their roles in disease, and inhibitor development.
- Analysis of challenges in PTP drug discovery, including active site characteristics and inhibitor properties.
- Identification and discussion of novel strategies and emerging PTP inhibitors in clinical trials.
Main Results:
- PTPs like SHP-1, SHP-2, and SHIP are validated oncology targets but are difficult to inhibit due to conserved active sites.
- Lack of selectivity and membrane permeability are major hurdles for current PTP inhibitors.
- Novel synthesis techniques are yielding inhibitors that target PTP-dependent signaling intracellularly.
Conclusions:
- Despite challenges, PTPs remain promising targets for cancer therapy.
- Advancements in inhibitor design are overcoming selectivity and permeability issues.
- Several novel PTP inhibitors are progressing through clinical development, offering hope for future cancer treatments.
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