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Tyrosine-protein phosphatase non-receptor type 6 (SHP-1) and Tyrosine-protein phosphatase non-receptor type 11 (SHP-2) (SHP-1 (for PTPN6) and SHP-2 (for PTPN11))

Target
SHP-1 (for PTPN6) and SHP-2 (for PTPN11)
Molecular classification
Enzyme, Protein tyrosine phosphatase (Class: non-receptor PTP, SH2 domain-containing)
01

Overview

SHP-1 and SHP-2 are closely related, non-receptor protein tyrosine phosphatases characterized by the presence of two N-terminal Src homology 2 (SH2) domains and a C-terminal catalytic phosphatase domain[1][8]. SHP-1 (encoded by the PTPN6 gene) is predominantly expressed in hematopoietic tissues and acts mainly as a negative regulator of signaling from cytokine and growth factor receptors, inhibiting immune cell activation and proliferation, and playing a key role in downregulating immune responses and maintaining self-tolerance[3][5][7]. SHP-2 (encoded by PTPN11) is ubiquitously expressed and acts as a positive mediator in multiple signaling cascades triggered by growth factors or cytokines, positively regulating cell proliferation, differentiation, and survival, and is essential for normal development and various tissue functions[6][8]. SHP-2 is frequently mutated (gain-of-function) in juvenile myelomonocytic leukemia, Noonan syndrome, and several cancers; SHP-1 is often downregulated in lymphomas and leukemias, where it normally suppresses oncogenic signaling. Both phosphatases are central to signaling through the Ras/MAPK, PI3K/AKT, and JAK/STAT pathways. Their opposing regulatory roles in hematopoietic signaling networks make them both important but complex therapeutic targets, with ongoing development of small-molecule modulators for disease intervention[1][2][3][6][8].

Other names
PTPN6SH-PTP1PTP1CHCPHcphPTPN11SH-PTP2PTP1DPTP2cSHPTP-3SYP
02

Mechanism of action

Inhibition of phosphatase activity blocks downstream dephosphorylation, thus modulating pathways such as Ras-MAPK, PI3K-Akt, Jak-STAT, and immune receptor signaling[2][6]. Modulation (typically inhibition) of SHP-2 can enhance T-cell activity in cancer immunotherapy ([4]).

03

Biological functions

Signal transductionCell proliferationCell differentiationApoptosisImmune responseRegulation of hematopoiesisCell migrationRegulation of cytokine and growth factor receptor signaling
04

Disease associations

Cancer (including leukemia and lymphoma)InflammationAutoimmune diseaseCardiovascular diseaseNeurodegenerative diseaseGenetic syndromes (e.g., Noonan syndrome for SHP-2)Infection (e.g., role in Helicobacter pylori-associated gastric pathology)
05

Safety considerations

Targeting SHP-1 or SHP-2 can broadly affect immune regulation and hematopoiesis, so risks include immunosuppression, dysregulated inflammation, cytopenias, or immune-related toxicities[1][2].SHP-2 inhibition may compromise normal tissue homeostasis in Ras-MAPK–dependent physiologic processes.
06

Interacting drugs

No approved, selective small-molecule drugs for SHP-1 or SHP-2 inhibition are in standard clinical use as of 2024; however, several experimental allosteric inhibitors and targeted investigational agents are in development, such as allosteric SHP-2 inhibitors (e.g., RMC-4630, TNO155)—mainly for SHP-2[2][4].
07

Biomarkers

Expression/mutation status of PTPN11 (activating mutations are common in juvenile myelomonocytic leukemia and Noonan syndrome)Methylation or downregulation of PTPN6 in some leukemias and lymphomas[3]SHP-2 mutations as predictive markers in several hematological malignanciesNot routinely used as clinical biomarkers, but research utility is clear

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