Temporal Analyses of the Actions of Normal Alcohols on Taste Receptor Cell Responses to Sucrose

1987 ◽  
Vol 510 (1 Olfaction and) ◽  
pp. 409-412 ◽  
Author(s):  
LINDA M. KENNEDY
2002 ◽  
Vol 87 (6) ◽  
pp. 3152-3155 ◽  
Author(s):  
Tatsuya Ogura ◽  
Robert F. Margolskee ◽  
Sue C. Kinnamon

Previous studies in rat and mouse have shown that brief exposure to the bitter stimulus denatonium induces an increase in [Ca2+]i due to Ca2+ release from intracellular Ca2+ stores, rather than Ca2+influx. We report here that prolonged exposure to denatonium induces sustained increases in [Ca2+]i that are dependent on Ca2+ influx. Similar results were obtained from taste cells of the mudpuppy, Necturus maculosus, as well as green fluorescent protein (GFP) tagged gustducin-expressing taste cells of transgenic mice. In a subset of mudpuppy taste cells, prolonged exposure to denatonium induced oscillatory Ca2+responses. Depletion of Ca2+ stores by thapsigargin also induced Ca2+ influx, suggesting that Ca2+store-operated channels (SOCs) are present in both mudpuppy taste cells and gustducin-expressing taste cells of mouse. Further, treatment with thapsigargin prevented subsequent responses to denatonium, suggesting that the SOCs were the source of the Ca2+ influx. These data suggest that SOCs may contribute to bitter taste transduction and to regulation of Ca2+ homeostasis in taste cells.


1999 ◽  
Vol 277 (4) ◽  
pp. C800-C813 ◽  
Author(s):  
Vijay Lyall ◽  
Gerard L. Heck ◽  
John A. DeSimone ◽  
George M. Feldman

Osmotic effects on salt taste were studied by recording from the rat chorda tympani (CT) nerve and by measuring changes in cell volume of isolated rat fungiform taste receptor cells (TRCs). Mannitol, cellobiose, urea, or DMSO did not induce CT responses. However, the steady-state CT responses to 150 mM NaCl were significantly increased when the stimulus solutions also contained 300 mM mannitol or cellobiose, but not 600 mM urea or DMSO. The enhanced CT responses to NaCl were reversed when the saccharides were removed and were completely blocked by addition of 100 μM amiloride to the stimulus solution. Exposure of TRCs to hyperosmotic solutions of mannitol or cellobiose induced a rapid and sustained decrease in cell volume that was completely reversible, whereas exposure to hypertonic urea or DMSO did not induce sustained reductions in cell volume. These data suggest that the osmolyte-induced increase in the CT response to NaCl involves a sustained decrease in TRC volume and the activation of amiloride-sensitive apical Na+ channels.


2018 ◽  
Author(s):  
Sean M. Crosson ◽  
Andrew Marques ◽  
Peter Dib ◽  
Cedrick D. Dotson ◽  
Steven D. Munger ◽  
...  

AbstractThe metabolic hormone adiponectin is secreted into the circulation by adipocytes, and mediates key biological functions including insulin sensitivity, adipocyte development, and fatty acid oxidation. Adiponectin is also abundant in saliva, where its functions are poorly understood. Here we report that murine taste receptor cells express adiponectin receptors, and may be a target for salivary adiponectin. Analysis of a transcriptome dataset obtained by RNA-seq analysis of purified circumvallate taste buds, revealed high expression levels for three adiponectin receptor types. Immunohistochemical studies showed that two of these receptors, AdipoR1 and T-cadherin, are localized to subsets of taste receptor cells. Immunofluorescence for T-cadherin was primarily co-localized with the Type 2 taste receptor cell marker phospholipase β2, suggesting that adiponectin signaling could impact sweet, bitter, or umami taste signaling. However, adiponectin null mice showed no differences in taste responsiveness compared to wildtype controls in brief-access taste testing. AAV-mediated overexpression of adiponectin in the salivary glands of adiponectin null mice did result in a small but significant increase in behavioral taste responsiveness to the fat emulsion Intralipid. Together, these results suggest that salivary adiponectin can effect taste receptor cell function, though its impact on taste responsiveness and peripheral taste coding remains unclear.


2012 ◽  
Vol 14 (6) ◽  
pp. 1047-1053 ◽  
Author(s):  
Chunsheng Wu ◽  
Liping Du ◽  
Ling Zou ◽  
Luhang Zhao ◽  
Ping Wang

2009 ◽  
Vol 139 (2) ◽  
pp. 576-583 ◽  
Author(s):  
Peihua Chen ◽  
Xiao-dong Liu ◽  
Bingqing Wang ◽  
Gong Cheng ◽  
Ping Wang

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