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Updated: Dec 30, 2025

Assessing Cellular Target Engagement by SHP2 PTPN11 Phosphatase Inhibitors
Published on: July 17, 2020
A cellular target engagement assay for the characterization of SHP2 (PTPN11) phosphatase inhibitors
Celeste Romero1, Lester J Lambert1, Douglas J Sheffler1
1Cancer Metabolism & Signaling Networks Program, NCI-Designated Cancer Center, Sanford Burnham Prebys Medical Discovery Institute, La Jolla, California 92037.
Abstract:
The nonreceptor protein-tyrosine phosphatase (PTP) SHP2 is encoded by the proto-oncogene PTPN11 and is a ubiquitously expressed key regulator of cell signaling, acting on a number of cellular processes and components, including the Ras/Raf/Erk, PI3K/Akt, and JAK/STAT pathways and immune checkpoint receptors. Aberrant SHP2 activity has been implicated in all phases of tumor initiation, progression, and metastasis. Gain-of-function PTPN11 mutations drive oncogenesis in several leukemias and cause developmental disorders with increased risk of malignancy such as Noonan syndrome. Until recently, small molecule-based targeting of SHP2 was hampered by the failure of orthosteric active-site inhibitors to achieve selectivity and potency within a useful therapeutic window. However, new SHP2 allosteric inhibitors with excellent potency and selectivity have sparked renewed interest in the selective targeting of SHP2 and other PTP family members. Crucially, drug discovery campaigns focusing on SHP2 would greatly benefit from the ability to validate the cellular target engagement of candidate inhibitors. Here, we report a cellular thermal shift assay that reliably detects target engagement of SHP2 inhibitors. Using this assay, based on the DiscoverX InCell Pulse enzyme complementation technology, we characterized the binding of several SHP2 allosteric inhibitors in intact cells. Moreover, we demonstrate the robustness and reliability of a 384-well miniaturized version of the assay for the screening of SHP2 inhibitors targeting either WT SHP2 or its oncogenic E76K variant. Finally, we provide an example of the assay's ability to identify and characterize novel compounds with specific cellular potency for either WT or mutant SHP2.
Insights
A new cellular thermal shift assay reliably detects SHP2 inhibitor engagement in cells. This method aids in developing targeted therapies for cancers and developmental disorders driven by SHP2 mutations.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- SHP2, a protein-tyrosine phosphatase encoded by PTPN11, is crucial for cell signaling and implicated in cancer.
- Gain-of-function PTPN11 mutations drive oncogenesis and developmental disorders like Noonan syndrome.
- Targeting SHP2 is challenging due to difficulties in achieving selective and potent inhibition.
Purpose of the Study:
- To develop and validate a reliable cellular assay for detecting SHP2 inhibitor target engagement.
- To characterize the binding of novel SHP2 allosteric inhibitors in intact cells.
- To establish a miniaturized assay for high-throughput screening of SHP2 inhibitors.
Main Methods:
- Utilized the DiscoverX InCell Pulse enzyme complementation technology for a cellular thermal shift assay (CETSA).
- Assessed target engagement of various SHP2 allosteric inhibitors in intact cells.
- Developed and validated a 384-well miniaturized assay for screening wild-type (WT) and mutant SHP2 inhibitors.
Main Results:
- The developed CETSA reliably detects SHP2 inhibitor binding in cells.
- Characterized several SHP2 allosteric inhibitors using the assay.
- Demonstrated the assay's robustness for screening WT SHP2 and its oncogenic E76K variant, identifying novel compounds.
Conclusions:
- The cellular thermal shift assay provides a robust method for validating SHP2 inhibitor target engagement.
- This assay facilitates drug discovery efforts for SHP2-targeted therapies.
- The assay can differentiate compound potency against WT and mutant SHP2, aiding in the development of selective therapeutics.

