Parthenolide promotes glucagon-like peptide-1 secreting in human Caco-2 cells via regulation of bitter taste receptor-induced of calcium signaling
摘要
Bitter taste receptors (TAS2Rs), in addition to being expressed in oral tissues, are also present in the gastrointestinal tract and are promising targets for inducing glucagon-like peptide-1 (GLP-1) secretion and treating type 2 diabetes mellitus (T2DM). However, natural bitter agonists capable of enhancing endogenous GLP-1 secretion remain scarce. In this study, we aimed to identify natural bitter agonists with GLP-1-inducing potential through comprehensive screening of the BitterDB and BitterX databases, and to evaluate their effects and underlying mechanisms in human enteroendocrine Caco-2 cells. Parthenolide (PTL) was identified as a high-affinity TAS2R4 agonist candidate. Cellular thermal shift assays (CETSA) confirmed its direct binding to TAS2R4, enhancing its thermal stability. Molecular docking revealed strong interactions, including hydrogen bonding with ASN-65 and hydrophobic contacts with PHE-62 and PHE-88. Functionally, PTL promotes GLP-1 secretion in a dose-dependent manner. Mechanistically, PTL treatment enhances TAS2R4 expression and upregulates its key downstream signaling molecule, phospholipase C β2 (PLCβ2), which catalyzes the production of inositol trisphosphate (IP3). This indicates that PTL promotes secretion by activating the TAS2R4 signaling pathway. PTL treatment leads to increase in intracellular calcium ion (Ca2+) levels, and the induced GLP-1 secretion is a calcium-dependent vesicle fusion process. Moreover, calcium further activates the transient receptor potential channel melastatin 5 (TRPM5), amplifying calcium signaling. These findings suggest that PTL is a novel natural agonist of TAS2R4 that promotes GLP-1 secretion via TAS2R4 signaling, supporting its potential as a lead compound for the development of TAS2R4-targeted functional foods or nutraceuticals for T2DM.