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Fluorescence-based Monitoring of PAD4 Activity via a Pro-fluorescence Substrate Analog
Published on: November 5, 2014
α-fluoro-β-alanine functions as a β-arrestin1-biased ligand of S1PR2 to upregulate DPD expression in cancer cells
Mingyong Tan1, Hanbing Shao1, Xinan Zhang1
1Toxicology and Sanitary Chemistry, School of Public Health, Capital Medical University, Beijing 100069, China.
Abstract:
α-fluoro-β-alanine (FBAL), a catabolite of the chemotherapeutic agent 5-fluorouracil (5-FU), has attracted significant attention due to its cardiotoxicity and neurotoxicity. However, its association with 5-FU resistance, a major obstacle in cancer treatment, has rarely been reported. In this study, FBAL was identified as a β-arrestin1-biased ligand of sphingosine 1-phosphate receptor 2 (S1PR2), which upregulates dihydropyrimidine dehydrogenase (DPD) expression and drives 5-FU resistance in colorectal cancer. Mechanistically, following exposure to FBAL, S1PR2, a G protein-coupled receptor (GPCR), is phosphorylated by recruiting G protein-coupled receptor kinase 6 (GRK6). Phosphorylated S1PR2 coupled with β-arrestin1, but not G proteins, to activate the MEK/ERK/AP-1 pathway and promote DPYD transcription. Ser343 was identified as the key phosphorylation site of S1PR2 using IP-MS analysis. This residue within the C-terminal domain mediates receptor interaction with β-arrestin-1 to activate the β-arrestin-1-dependent ERK pathway, as was confirmed in HCT116S1PR2KO-ΔC cells and HCT116S1PR2KO-S343A cells. In vivo, mice bearing orthotopic xenografts of HCT116S1PR2KO-S343A cells exhibited significantly enhanced higher sensitivity to 5-FU treatment compared to those HCT116S1PR2KO-WT cells following FBAL. Taken together, this study showed that exposure to FBAL induces S1PR2 phosphorylation at Ser343 within the C-terminal mediated by GRK6, activating the β-arrestin1-dependent ERK pathway to upregulate DPD expression. This study not only delineates a phosphorylation-dependent signaling pathway in chemoresistance but also establishes S1PR2 as a promising therapeutic target for overcoming 5-FU resistance in cancer.

