Nasal chemosensory cells use bitter taste signaling to detect irritants and bacterial signals
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- 26 January 2010
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 107 (7), 3210-3215
- https://doi.org/10.1073/pnas.0911934107
Abstract
The upper respiratory tract is continually assaulted with harmful dusts and xenobiotics carried on the incoming airstream. Detection of such irritants by the trigeminal nerve evokes protective reflexes, including sneezing, apnea, and local neurogenic inflammation of the mucosa. Although free intra-epithelial nerve endings can detect certain lipophilic irritants (e.g., mints, ammonia), the epithelium also houses a population of trigeminally innervated solitary chemosensory cells (SCCs) that express T2R bitter taste receptors along with their downstream signaling components. These SCCs have been postulated to enhance the chemoresponsive capabilities of the trigeminal irritant-detection system. Here we show that transduction by the intranasal solitary chemosensory cells is necessary to evoke trigeminally mediated reflex reactions to some irritants including acyl-homoserine lactone bacterial quorum-sensing molecules, which activate the downstream signaling effectors associated with bitter taste transduction. Isolated nasal chemosensory cells respond to the classic bitter ligand denatonium as well as to the bacterial signals by increasing intracellular Ca(2+). Furthermore, these same substances evoke changes in respiration indicative of trigeminal activation. Genetic ablation of either G alpha-gustducin or TrpM5, essential elements of the T2R transduction cascade, eliminates the trigeminal response. Because acyl-homoserine lactones serve as quorum-sensing molecules for gram-negative pathogenic bacteria, detection of these substances by airway chemoreceptors offers a means by which the airway epithelium may trigger an epithelial inflammatory response before the bacteria reach population densities capable of forming destructive biofilms.Keywords
This publication has 55 references indexed in Scilit:
- Motile Cilia of Human Airway Epithelia Are ChemosensoryScience, 2009
- Formyl peptide receptors are candidate chemosensory receptors in the vomeronasal organProceedings of the National Academy of Sciences, 2009
- Breathtaking TRP Channels: TRPA1 and TRPV1 in Airway Chemosensation and Reflex ControlPhysiology, 2008
- SREBP-2 regulates gut peptide secretion through intestinal bitter taste receptor signaling in miceJournal of Clinical Investigation, 2008
- Nasal Solitary Chemoreceptor Cell Responses to Bitter and Trigeminal Stimulants In VitroJournal of Neurophysiology, 2008
- TRPA1 is a major oxidant sensor in murine airway sensory neuronsJournal of Clinical Investigation, 2008
- Solitary chemoreceptor cell survival is independent of intact trigeminal innervationJournal of Comparative Neurology, 2008
- TRPM5, a taste-signaling transient receptor potential ion-channel, is a ubiquitous signaling component in chemosensory cellsBMC Neuroscience, 2007
- Induction of Neutrophil Chemotaxis by the Quorum-Sensing Molecule N -(3-Oxododecanoyl)- l -Homoserine LactoneInfection and Immunity, 2006
- Pathogenic bacteria induce aversive olfactory learning in Caenorhabditis elegansNature, 2005