Journal of Food and Nutrition Research
ISSN (Print): 2333-1119 ISSN (Online): 2333-1240 Website: https://www.sciepub.com/journal/jfnr Editor-in-chief: Prabhat Kumar Mandal
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Journal of Food and Nutrition Research. 2025, 13(4), 190-194
DOI: 10.12691/jfnr-13-4-3
Open AccessCommentary

Gustatory System: Taste Perception and Encoding, Role of Neurotransmitters and Exploring the Enteric Nervous System from a Taste Perspective

Charul Mishra1, and Apeksha Mewani2

1Department of Psychology, Rutgers University, New Jersey

2Department of Health Equity, Administration, and Technology, Lehman College, CUNY, New York

Pub. Date: May 08, 2025

Cite this paper:
Charul Mishra and Apeksha Mewani. Gustatory System: Taste Perception and Encoding, Role of Neurotransmitters and Exploring the Enteric Nervous System from a Taste Perspective. Journal of Food and Nutrition Research. 2025; 13(4):190-194. doi: 10.12691/jfnr-13-4-3

Abstract

The gustatory system is essential to homeostasis given its ability to differentiate between various flavor modalities and direct dietary preferences based on the energy content, digestive processes, appetite regulation, hydration, and even emotional aspects of food consumption. The taste buds process information through three cranial nerves, which is then processed and transmitted to higher brain regions such as the thalamus and gustatory cortex in the insular cortex, and the frontal operculum of the frontal lobe. These are responsible for perceiving and interpreting taste. Additionally, sensing taste and detecting nutrients are regulated by specific G protein-coupled receptor cells (GPCRs), which are also expressed in the gut. This highlights the importance of the gut-brain axis in influencing taste perception and food preferences. A recent study in mice demonstrated how cholecystokinin (CCK)-labeled duodenal neuropod cells can distinguish and transmit signals related to sugars and sweeteners to the vagus nerve. The gut-brain axis may be a critical interface for taste perception, nutrient sensing, and appetite regulation. Thus, understanding the role of the enteric nervous system may uncover certain mechanisms involved in regulating food consumption and metabolic balance. Therefore, additional research is crucial to understand the complex relationship between the digestive system and the brain in the context of taste perception and actions associated with eating. This review explores recent advances in gustation encoding, taste perception and the role of enteric nervous system in taste perception and functions.

Keywords:
gustatory system taste perception gut-brain axis enteric nervous system template

Creative CommonsThis work is licensed under a Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/

References:

[1]  Spence C., “The tongue map and the spatial modulation of taste perception,” Current Research in Food Science, 5, 598–610. 2022.
 
[2]  Doty, R.L., Heidt, J.M., MacGillivray, M.R., D’Souza, M., Tracey, E.H., Mirza, N., and Bigelow, D.C., “Influences of age, tongue region, and chorda tympani nerve sectioning on signal detection measures of lingual taste sensitivity,” Physiology & Behavior, 155, 202-207. Mar. 2016.
 
[3]  Sato, H., Wada, H., Matsumoto, H., Takagiwa, M. and Goto T.K., “Differences in dynamic perception of salty taste intensity between young and older adults,” Scientific Reports, 12. 7558. 2022.
 
[4]  Gilbertson, T.A. and Boughter, J.D., “Taste transduction: appetizing times in gustation,” NeuroReport, 14(7). 905-911. 2003
 
[5]  Gibbons JR, Sadiq NM. Neuroanatomy, Neural Taste Pathway.. StatPearls Publishing [Updated 2023 May 1] Available: https://www.ncbi.nlm.nih.gov/books/NBK545236/.
 
[6]  Banik, D.D., and Medler, K.F., “Taste Receptor Signaling.” In: Palmer, R.K., Servant, G. (eds) The Pharmacology of Taste. Handbook of Experimental Pharmacology, 275. Springer, Cham. 2021.
 
[7]  Mascioli, G., Berlucchi, G., Pierpaoli, C., Salvolini, U., Barbaresi, P., Fabri, M., and Polonara, G., “Functional MRI cortical activations from unilateral tactile-taste stimulations of the tongue,” Physiology & Behavior. Nov. 2015.
 
[8]  Ohla K., Yoshida, R., Roper, S.D., Di Lorenzo, P.M., Victor, J.D., Boughter, J.D., Fletcher, M., Katz, D.B. and Chaudhari, N., “Recognizing Taste: Coding Patterns Along the Neural Axis in Mammals,” Chemical Senses, 44(4). 237–247. May. 2019.
 
[9]  Lemon, C.H. and Katz, D.B., “The neural processing of taste,” BMC Neuroscience, 8 (3), S5. 2007.
 
[10]  Staszko, S.M., Boughter, J.D., Jr, and Fletcher, M.L., “Taste coding strategies in insular cortex,” Experimental Biology and Medicine, 245(5). 448–455. 2020.
 
[11]  Avery, J.A., Kerr, K.L., Ingeholm, J.E., Burrows, K., Bodurka, J., and Simmons, W.K., “A common gustatory and interoceptive representation in the human mid-insula,” Human Brain Mapping, 36(8). 2996–3006. 2015.
 
[12]  Levitan, D., Lin, J.Y., Wachutka, J., Mukherjee, N., Nelson, S.B., and Katz, D.B., “Single and population coding of taste in the gustatory cortex of awake mice,” Journal of Neurophysiology, 122(4). 1342–1356. 2019.
 
[13]  Chen, X., Gabitto, M., Peng, Y., Ryba, N.J., and Zuker, C.S., “A gustotopic map of taste qualities in the mammalian brain.” Science, 333(6047). 1262–1266. 2011.
 
[14]  Chikazoe, J., Lee, D.H., Kriegeskorte, N. and Anderson, A.K., “Distinct representations of basic taste qualities in human gustatory cortex,” Nature Communications 10, 1048. 2019.
 
[15]  Larson, E.D., Vandenbeuch, A., Voigt, A., Meyerhof, W., Kinnamon, S.C., and Finger, T.E., “The Role of 5-HT3 Receptors in Signaling from Taste Buds to Nerves.” The Journal of Neuroscience: The Official Journal of The Society for Neuroscience, 35(48). 15984–15995. 2015.
 
[16]  Yao, Z., and Scott, K., “Serotonergic neurons translate taste detection into internal nutrient regulation.” Neuron, 110 (6), 1036-1050. Mar. 2022.
 
[17]  Heath, T.P., Melichar, J.K., Nutt, D.J., and Donaldson, L.F., “Human taste thresholds are modulated by serotonin and noradrenaline,” The Journal Of Neuroscience: The Official Journal Of The Society For Neuroscience, 26(49). 12664–12671. 2006.
 
[18]  Pittman, D.W., Dong, G., Brantly, A.M., He, L., Nelson, T.S., Kogan, S., Powell, J. and McCluskey, L.P., “Behavioral and neurophysiological taste responses to sweet and salt are diminished in a model of subclinical intestinal inflammation,” Scientific Reports, 10(1). 2020.
 
[19]  Koren, T., Yifa, R., Amer, M., Krot, M., Boshnak, N., Ben-Shaanan, T.L., Azulay-Debby, H., Zalayat, I., Avishai, E., Hajjo, H., Schiller, M., Haykin, H., Korin, B., Farfara, D., Hakim, F., Kobiler, O., Rosenblum, K., and Rolls, A. “Insular cortex neurons encode and retrieve specific immune responses.” Cell, 184(24). 5902–5915. 2021.
 
[20]  Buchanan, K.L., Rupprecht, L.E., Kaelberer, M.M., Sahasrabudhe, A., Klein, M.E., Villalobos, J.A., Liu, W.W., Yang, A., Gelman, J., Park, S., Anikeeva, P., and Bohórquez, D.V., “The preference for sugar over sweetener depends on a gut sensor cell,” Nature Neuroscience 25. 191–200. 2022.
 
[21]  Cryan, J. F., O'Riordan, K.J., Cowan, C.S.M., Sandhu, K.V., Bastiaanssen, T.F.S., Boehme, M., Codagnone, M.G., Cussotto, S., Fulling, C., Golubeva, A.V., Guzzetta, K.E., Jaggar, M., Long-Smith, C.M., Lyte, J.M., Martin, J.A., Molinero-Perez, A., Moloney, G., Morelli, E., Morillas, E., O'Connor, R., Cruz-Pereira, J.S., Peterson, V.L., Rea, K., Ritz, N.L., Sherwin, E., Spichak, S., Teichman, E.M., van de Wouw, M., Ventura-Silva, A.P., Wallace-Fitzsimons, S.E., Hyland, N., Clarke, G. and Dinan, T.G., “The Microbiota-Gut-Brain Axis,” Physiological Reviews, 99(4), 1877–2013. 2019.
 
[22]  iome, Gut-Brain Axis and Relationship with Exercise; Exploring the Impact of Exercise on Metabolic and Mental Well-Being. International Journal of Horticulture, Agriculture and Food Science (IJHAF), 9(1), 17–25.