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Taste Exam: A Brief and Validated Test
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Changes in taste receptor cell [Ca2+]i modulate chorda tympani responses to bitter, sweet, and umami taste stimuli
John A Desimone1, Tam-Hao T Phan, Zuojun Ren
1Department of Physiology and Biophysics, Virginia Commonwealth University, Richmond, VA, USA.
Abstract:
The relationship between taste receptor cell (TRC) intracellular Ca(2+) ([Ca(2+)](i)) and rat chorda tympani (CT) nerve responses to bitter (quinine and denatonium), sweet (sucrose, glycine, and erythritol), and umami [monosodium glutamate (MSG) and MSG + inosine 5'-monophosphate (IMP)] taste stimuli was investigated before and after lingual application of ionomycin (Ca(2+) ionophore) + Ca(2+), 1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid acetoxymethyl ester (BAPTA-AM; Ca(2+) chelator), U73122 (phospholipase C blocker), thapsigargin (Ca(2+)-ATPase blocker), and diC8-PIP(2) (synthetic phosphatidylinositol 4,5-bisphosphate). The phasic CT response to quinine was indifferent to changes in [Ca(2+)](i). However, a decrease in [Ca(2+)](i) inhibited the tonic part of the CT response to quinine. The CT responses to sweet and umami stimuli were indifferent to changes in TRC [Ca(2+)](i). However, a decrease in [Ca(2+)](i) attenuated the synergistic effects of ethanol on the CT response to sweet stimuli and of IMP on the glutamate CT response. U73122 and thapsigargin inhibited the phasic and tonic CT responses to bitter, sweet, and umami stimuli. Although diC8-PIP(2) increased the CT response to bitter and sweet stimuli, it did not alter the CT response to glutamate but did inhibit the synergistic effect of IMP on the glutamate response. The results suggest that bitter, sweet, and umami taste qualities are transduced by [Ca(2+)](i)-dependent and [Ca(2+)](i)-independent mechanisms. Changes in TRC [Ca(2+)](i) in the BAPTA-sensitive cytosolic compartment regulate quality-specific taste receptors and ion channels that are involved in the neural adaptation and mixture interactions. Changes in TRC [Ca(2+)](i) in a separate subcompartment, sensitive to inositol trisphosphate and thapsigargin but inaccessible to BAPTA and ionomycin + Ca(2+), are associated with neurotransmitter release.
Insights
This study reveals that taste receptor cell calcium (Ca2+) dynamics influence bitter, sweet, and umami taste signaling differently. Specific calcium compartments regulate taste perception and neural responses, impacting taste mixture interactions and neurotransmitter release.
Area of Science:
- Neuroscience
- Sensory Biology
- Molecular Biology
Background:
- Taste receptor cell (TRC) intracellular calcium ([Ca2+]i) is crucial for taste signal transduction.
- Understanding the precise role of [Ca2+]i in different taste qualities and neural responses is essential.
Purpose of the Study:
- To investigate the relationship between TRC [Ca2+]i and rat chorda tympani (CT) nerve responses to bitter, sweet, and umami taste stimuli.
- To elucidate the mechanisms underlying taste transduction and neural adaptation involving calcium dynamics.
Main Methods:
- Manipulated TRC [Ca2+]i using ionomycin (Ca2+ ionophore) and BAPTA-AM (Ca2+ chelator).
- Utilized phospholipase C (U73122), Ca2+-ATPase (thapsigargin), and phosphatidylinositol 4,5-bisphosphate (diC8-PIP2) modulators.
- Recorded rat CT nerve responses to various taste stimuli (quinine, denatonium, sucrose, glycine, erythritol, MSG, MSG+IMP).
Main Results:
- Phasic CT responses to bitter stimuli were independent of [Ca2+]i, while tonic responses were inhibited by decreased [Ca2+]i.
- Sweet and umami taste responses were largely indifferent to global [Ca2+]i changes but affected by ethanol and IMP synergy.
- Inhibition of phospholipase C and Ca2+-ATPase affected both phasic and tonic CT responses across all taste qualities.
Conclusions:
- Bitter, sweet, and umami taste transduction involve both [Ca2+]i-dependent and -independent mechanisms.
- Distinct intracellular calcium compartments regulate specific taste receptors, ion channels, neural adaptation, and mixture interactions.
- A thapsigargin-sensitive calcium store, separate from the BAPTA-sensitive pool, is linked to neurotransmitter release.
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