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.

Journal of Neurophysiology
|September 21, 2012
PubMed

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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