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A deadly taste: linking bitter taste receptors and apoptosis
Zoey A Miller1,2, Ryan M Carey1, Robert J Lee3,4
1Department of Otorhinolaryngology, University of Pennsylvania Perelman School of Medicine, Philadelphia, PA, 19104, USA.
Abstract:
Humans can perceive five canonical tastes: salty, sour, umami, sweet, and bitter. These tastes are transmitted through the activation of ion channels and receptors. Bitter taste receptors (Taste Family 2 Receptors; T2Rs) are a sub-family of 25 G-protein coupled receptor (GPCR) isoforms that were first identified in type II taste bud cells. T2Rs are activated by a broad array of bitter agonists, which cause an increase in intracellular calcium (Ca2+) and a decrease in cyclic adenosine 3',5'-monophosphate (cAMP). Interestingly, T2Rs are expressed beyond the oral cavity, where they play diverse non-taste roles in cell physiology and disease. Here, we summarize the literature that explores the role of T2Rs in apoptosis. Activation of T2Rs with bitter agonists induces apoptosis in several cancers, the airway epithelia, smooth muscle, and more. In many of these tissues, T2R activation causes mitochondrial Ca2+ overload, a main driver of apoptosis. This response may be a result of T2R cellular localization, nuclear Ca2+ mobilization and/or a remnant of the established immunological roles of T2Rs in other cell types. T2R-induced apoptosis could be pharmacologically leveraged to treat diseases of altered cellular proliferation. Future work must explore additional extra-oral T2R-expressing tissues for apoptotic responses, develop methods for in-vivo studies, and discover high affinity bitter agonists for clinical application.
Insights
Bitter taste receptors (T2Rs) activate apoptosis in various cells, including cancers and airway epithelia. This T2R-mediated apoptosis, often driven by mitochondrial calcium overload, offers potential therapeutic strategies for proliferative diseases.
Area of Science:
- Physiology
- Molecular Biology
- Pharmacology
Background:
- Humans perceive five tastes, including bitter, mediated by taste receptors.
- Bitter taste receptors (T2Rs) are G-protein coupled receptors (GPCRs) found in taste bud cells.
- T2Rs are also expressed outside the oral cavity, performing non-taste functions in cell physiology and disease.
Purpose of the Study:
- To review and summarize the literature on the role of T2Rs in apoptosis.
- To explore the mechanisms and potential therapeutic applications of T2R-induced apoptosis.
Main Methods:
- Literature review of studies investigating T2R activation and apoptotic responses.
- Analysis of T2R expression patterns in various cell types and tissues.
- Examination of the signaling pathways involved in T2R-mediated apoptosis, particularly calcium signaling.
Main Results:
- Activation of T2Rs by bitter agonists induces apoptosis in multiple cell types, including cancers, airway epithelia, and smooth muscle.
- T2R activation frequently leads to mitochondrial calcium overload, a key driver of apoptosis.
- Potential mechanisms include T2R cellular localization, nuclear calcium mobilization, and immunological roles.
Conclusions:
- T2R-induced apoptosis presents a potential therapeutic avenue for diseases characterized by abnormal cellular proliferation.
- Further research is needed to identify extra-oral T2R functions, develop in-vivo study methods, and discover clinical agonists.
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