Interkingdom Detection of Bacterial Quorum-Sensing Molecules by Mammalian Taste Receptors.
Yobouet Ines KouakouRobert J LeePublished in: Microorganisms (2023)
Bitter and sweet taste G protein-coupled receptors (known as T2Rs and T1Rs, respectively) were originally identified in type II taste cells on the tongue, where they signal perception of bitter and sweet tastes, respectively. Over the past ~15 years, taste receptors have been identified in cells all over the body, demonstrating a more general chemosensory role beyond taste. Bitter and sweet taste receptors regulate gut epithelial function, pancreatic β cell secretion, thyroid hormone secretion, adipocyte function, and many other processes. Emerging data from a variety of tissues suggest that taste receptors are also used by mammalian cells to "eavesdrop" on bacterial communications. These receptors are activated by several quorum-sensing molecules, including acyl-homoserine lactones and quinolones from Gram-negative bacteria such as Pseudomonas aeruginosa , competence stimulating peptides from Streptococcus mutans , and D-amino acids from Staphylococcus aureus . Taste receptors are an arm of immune surveillance similar to Toll-like receptors and other pattern recognition receptors. Because they are activated by quorum-sensing molecules, taste receptors report information about microbial population density based on the chemical composition of the extracellular environment. This review summarizes current knowledge of bacterial activation of taste receptors and identifies important questions remaining in this field.
Keyphrases
- pseudomonas aeruginosa
- staphylococcus aureus
- biofilm formation
- healthcare
- public health
- insulin resistance
- type diabetes
- escherichia coli
- induced apoptosis
- candida albicans
- adipose tissue
- big data
- gene expression
- microbial community
- cell death
- cystic fibrosis
- mesenchymal stem cells
- oxidative stress
- stem cells
- cell cycle arrest
- multidrug resistant
- bone marrow
- loop mediated isothermal amplification
- metabolic syndrome