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Published on: September 28, 2018
SHP2 potentiates anti-PD-1 effectiveness through intervening cell pyroptosis resistance in triple-negative breast
Chao Chen1, Yuanyuan Cheng2, Haoqi Lei2
1Department of Pharmacology, College of Basic Medical Sciences, Jilin University, 126 Ximin street, Chaoyang District, Changchun, Jilin 130021, China.
Abstract:
Triple negative breast cancer (TNBC) presents a formidable challenge due to the lack of effective treatment modalities. Immunotherapy stands as a promising therapeutic approach; however, the emergence of drug resistance mechanisms within tumor cells, particularly those targeting apoptosis and pyroptosis, has hampered its clinical efficacy. SHP2 is intricately involved in diverse physiological processes, including immune cell proliferation, infiltration, and tumor progression. Nevertheless, the precise contribution of SHP2 to tumor cell pyroptosis resistance remains inadequately understood. Herein, we demonstrate that SHP2 inhibition hampers the proliferative, migratory, and invasive capabilities of TNBC, accompanied by noticeable alterations in cellular membrane architecture. Mechanistically, we provide evidence that SHP2 depletion triggers the activation of Caspase-1 and GSDMD, resulting in GSDMD-dependent release of LDH, IL-1β, and IL-18. Furthermore, computational analyses and co-localization investigations substantiate the hypothesis that SHP2 may hinder pyroptosis through direct binding to JNK, thereby impeding JNK phosphorylation. Our cellular experiments further corroborate these findings by demonstrating that JNK inhibition rescues pyroptosis induced by SHP2 knockdown. Strikingly, in vivo experiments validate the suppressive impact of SHP2 knockdown on tumor progression via enhanced JNK phosphorylation. Additionally, SHP2 knockdown augments tumor sensitivity to anti-PD-1 therapy, thus reinforcing the pro-pyroptotic effects and inhibiting tumor growth. In summary, our findings elucidate the mechanism by which SHP2 governs TNBC pyroptosis, underscoring the potential of SHP2 inhibition to suppress cell pyroptosis resistance and its utility as an adjunctive agent for tumor immunotherapy.
Insights
Inhibiting SHP2 in triple-negative breast cancer (TNBC) overcomes pyroptosis resistance by activating Caspase-1 and GSDMD. This approach enhances JNK phosphorylation and boosts anti-PD-1 immunotherapy effectiveness.
Area of Science:
- Oncology
- Immunology
- Cell Biology
Background:
- Triple-negative breast cancer (TNBC) lacks effective treatments, with immunotherapy efficacy limited by drug resistance.
- Tumor cell resistance to apoptosis and pyroptosis are key challenges in TNBC treatment.
- SHP2's role in tumor progression and immune response is known, but its specific involvement in pyroptosis resistance is unclear.
Purpose of the Study:
- To investigate the mechanism by which SHP2 contributes to pyroptosis resistance in TNBC.
- To evaluate the therapeutic potential of SHP2 inhibition in TNBC, alone and in combination with immunotherapy.
Main Methods:
- SHP2 inhibition in TNBC cell lines and in vivo models.
- Assessment of cell proliferation, migration, invasion, and pyroptosis markers (Caspase-1, GSDMD).
- Analysis of JNK signaling pathway activation and interaction with SHP2.
- Evaluation of tumor response to anti-PD-1 therapy following SHP2 knockdown.
Main Results:
- SHP2 inhibition reduced TNBC proliferation, migration, and invasion, altering cell membrane integrity.
- SHP2 depletion activated Caspase-1 and GSDMD, leading to pyroptosis and release of LDH, IL-1β, and IL-18.
- SHP2 was found to impede JNK phosphorylation, and JNK inhibition rescued pyroptosis induced by SHP2 knockdown.
- SHP2 knockdown suppressed tumor growth in vivo, enhanced JNK phosphorylation, and increased sensitivity to anti-PD-1 therapy.
Conclusions:
- SHP2 inhibition overcomes pyroptosis resistance in TNBC by activating the Caspase-1/GSDMD pathway and promoting JNK phosphorylation.
- Targeting SHP2 is a promising strategy to enhance the efficacy of immunotherapy, such as anti-PD-1 therapy, in TNBC.
- SHP2 inhibition represents a potential therapeutic approach to improve treatment outcomes for triple-negative breast cancer.

