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Toll-like receptor 2 regulates metabolic reprogramming in gastric cancer via superoxide dismutase 2
You Dong Liu1,2, Liang Yu1,2,3, Le Ying3,4
1Department of General Surgery, Shanghai General Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Abstract:
Toll-like receptors (TLRs) play critical roles in host defense after recognition of conserved microbial- and host-derived components, and their dysregulation is a common feature of various inflammation-associated cancers, including gastric cancer (GC). Despite the recent recognition that metabolic reprogramming is a hallmark of cancer, the molecular effectors of altered metabolism during tumorigenesis remain unclear. Here, using bioenergetics function assays on human GC cells, we reveal that ligand-induced activation of TLR2, predominantly through TLR1/2 heterodimer, augments both oxidative phosphorylation (OXPHOS) and glycolysis, with a bias toward glycolytic activity. Notably, DNA microarray-based expression profiling of human cancer cells stimulated with TLR2 ligands demonstrated significant enrichment of gene-sets for oncogenic pathways previously implicated in metabolic regulation, including reactive oxygen species (ROS), p53 and Myc. Moreover, the redox gene encoding the manganese-dependent mitochondrial enzyme, superoxide dismutase (SOD)2, was strongly induced at the mRNA and protein levels by multiple signaling pathways downstream of TLR2, namely JAK-STAT3, JNK MAPK and NF-κB. Furthermore, siRNA-mediated suppression of SOD2 ameliorated the TLR2-induced metabolic shift in human GC cancer cells. Importantly, patient-derived tissue microarrays and bioinformatics interrogation of clinical datasets indicated that upregulated expression of TLR2 and SOD2 were significantly correlated in human GC, and the TLR2-SOD2 axis was associated with multiple clinical parameters of advanced stage disease, including distant metastasis, microvascular invasion and stage, as well as poor survival. Collectively, our findings reveal a novel TLR2-SOD2 axis as a potential biomarker for therapy and prognosis in cancer.
Insights
Toll-like receptor 2 (TLR2) activation boosts cancer cell metabolism via superoxide dismutase 2 (SOD2) in gastric cancer. This TLR2-SOD2 pathway correlates with advanced disease and poor survival, offering a potential therapeutic target.
Area of Science:
- Immunology and Cancer Biology
- Molecular Mechanisms of Cancer Metabolism
Background:
- Toll-like receptors (TLRs) are crucial for host defense but their dysregulation is linked to inflammation-associated cancers like gastric cancer (GC).
- Metabolic reprogramming is a hallmark of cancer, yet the specific molecular drivers remain incompletely understood.
Purpose of the Study:
- To investigate the role of TLR2 activation in metabolic reprogramming in human gastric cancer cells.
- To identify molecular pathways and potential biomarkers associated with TLR2-mediated metabolic alterations in GC.
Main Methods:
- Bioenergetics function assays on human GC cells.
- DNA microarray-based expression profiling of TLR2-ligand-stimulated cancer cells.
- Analysis of signaling pathways (JAK-STAT3, JNK MAPK, NF-κB) and gene expression (SOD2).
- siRNA-mediated gene suppression.
- Patient-derived tissue microarrays and clinical dataset interrogation.
Main Results:
- TLR2 activation, primarily via TLR1/2 heterodimers, enhances both oxidative phosphorylation (OXPHOS) and glycolysis in GC cells, with a glycolytic preference.
- TLR2 stimulation induces the redox gene superoxide dismutase 2 (SOD2) through JAK-STAT3, JNK MAPK, and NF-κB signaling.
- Suppression of SOD2 mitigates the TLR2-induced metabolic shift.
- Upregulated TLR2 and SOD2 expression are significantly correlated in human GC and linked to advanced disease stages, metastasis, and poorer survival.
Conclusions:
- A novel TLR2-SOD2 axis significantly influences cancer cell metabolism in gastric cancer.
- This axis represents a potential biomarker for predicting prognosis and guiding therapy in GC patients.
- Targeting the TLR2-SOD2 pathway may offer a new therapeutic strategy for gastric cancer.
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