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Assessing Cellular Target Engagement by SHP2 (PTPN11) Phosphatase Inhibitors
Published on: July 17, 2020
Identification of substrates of human protein-tyrosine phosphatase PTPN22
Jiansheng Wu1, Anjali Katrekar, Lee A Honigberg
1Celera Genomics, South San Francisco, California 94080, USA. lakedaly@yahoo.com
Abstract:
Stimulation of mature T cells activates a downstream signaling cascade involving temporally and spatially regulated phosphorylation and dephosphorylation events mediated by protein-tyrosine kinases and phosphatases, respectively. PTPN22 (Lyp), a non-receptor protein-tyrosine phosphatase, is expressed exclusively in cells of hematopoietic origin, notably in T cells where it represses signaling through the T cell receptor. We used substrate trapping coupled with mass spectrometry-based peptide identification in an unbiased approach to identify physiological substrates of PTPN22. Several potential substrates were identified in lysates from pervanadate-stimulated Jurkat cells using PTPN22-D195A/C227S, an optimized substrate trap mutant of PTPN22. These included three novel PTPN22 substrates (Vav, CD3epsilon, and valosin containing protein) and two known substrates of PEP, the mouse homolog of PTPN22 (Lck and Zap70). T cell antigen receptor (TCR) zeta was also identified as a potential substrate in Jurkat lysates by direct immunoblotting. In vitro experiments with purified recombinant proteins demonstrated that PTPN22-D195A/C227S interacted directly with activated Lck, Zap70, and TCRzeta, confirming the initial substrate trap results. Native PTPN22 dephosphorylated Lck and Zap70 at their activating tyrosine residues Tyr-394 and Tyr-493, respectively, but not at the regulatory tyrosines Tyr-505 (Lck) or Tyr-319 (Zap70). Native PTPN22 also dephosphorylated TCRzeta in vitro and in cells, and its substrate trap variant co-immunoprecipitated with TCRzeta when both were coexpressed in 293T cells, establishing TCRzeta as a direct substrate of PTPN22.
Insights
The protein tyrosine phosphatase PTPN22 (Lyp) dephosphorylates key signaling molecules like Lck, Zap70, and TCR zeta, impacting T cell receptor signaling. This study identifies novel substrates and clarifies PTPN22
Area of Science:
- Immunology
- Molecular Biology
- Cell Signaling
Background:
- Mature T cell activation involves complex phosphorylation events mediated by protein-tyrosine kinases and phosphatases.
- PTPN22 (Lyp) is a non-receptor protein-tyrosine phosphatase found in hematopoietic cells, particularly T cells, where it inhibits T cell receptor signaling.
Purpose of the Study:
- To identify the physiological substrates of PTPN22 using an unbiased approach.
- To investigate the role of PTPN22 in regulating T cell signaling pathways.
Main Methods:
- Substrate trapping coupled with mass spectrometry-based peptide identification.
- Utilized an optimized substrate trap mutant of PTPN22 (PTPN22-D195A/C227S).
- Performed in vitro experiments with purified recombinant proteins and direct immunoblotting.
Main Results:
- Identified novel PTPN22 substrates including Vav, CD3epsilon, and valosin containing protein.
- Confirmed Lck, Zap70, and TCR zeta as substrates, with PTPN22 dephosphorylating activating tyrosine residues.
- Demonstrated direct interaction between PTPN22 and its substrates, including TCR zeta.
Conclusions:
- PTPN22 directly dephosphorylates Lck, Zap70, and TCR zeta, thereby regulating T cell receptor signaling.
- The findings elucidate novel substrates and mechanisms of PTPN22 activity in T cells.
- This research contributes to understanding the molecular basis of T cell immune responses.
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