Literature DB >> 31913749

Electrophysiological responses to sugars and amino acids in the nucleus of the solitary tract of type 1 taste receptor double-knockout mice.

B Kalyanasundar1, Ginger D Blonde2, Alan C Spector2, Susan P Travers1.   

Abstract

Strong evidence supports a major role for heterodimers of the type 1 taste receptor (T1R) family in the taste transduction of sugars (T1R2+T1R3) and amino acids (T1R1+T1R3), but there are also neural and behavioral data supporting T1R-independent mechanisms. Most neural evidence for alternate mechanisms comes from whole nerve recordings in mice with deletion of a single T1R family member, limiting conclusions about the functional significance and T1R independence of the remaining responses. To clarify these issues, we recorded single-unit taste responses from the nucleus of the solitary tract in T1R double-knockout (double-KO) mice lacking functional T1R1+T1R3 [KO1+3] or T1R2+T1R3 [KO2+3] receptors and their wild-type background strains [WT; C57BL/6J (B6), 129X1/SvJ (S129)]. In both double-KO strains, responses to sugars and a moderate concentration of an monosodium glutamate + amiloride + inosine 5'-monophosphate cocktail (0.1 M, i.e., umami) were profoundly depressed, whereas a panel of 0.6 M amino acids were mostly unaffected. Strikingly, in contrast to WT mice, no double-KO neurons responded selectively to sugars and umami, precluding segregation of this group of stimuli from those representing other taste qualities in a multidimensional scaling analysis. Nevertheless, residual sugar responses, mainly elicited by monosaccharides, persisted as small "sideband" responses in double-KOs. Thus other receptors may convey limited information about sugars to the central nervous system, but T1Rs appear critical for coding the distinct perceptual features of sugar and umami stimuli. The persistence of amino acid responses supports previous proposals of alternate receptors, but because these stimuli affected multiple neuron types, further investigations are necessary.NEW & NOTEWORTHY The type 1 taste receptor (T1R) family is crucial for transducing sugars and amino acids, but there is evidence for T1R-independent mechanisms. In this study, single-unit recordings from the nucleus of the solitary tract in T1R double-knockout mice lacking T1R1+T1R3 or T1R2+T1R3 receptors revealed greatly reduced umami synergism and sugar responses. Nevertheless, residual sugar responses persisted, mainly elicited by monosaccharides and evident as "sidebands" in neurons activated more vigorously by other qualities.

Entities:  

Keywords:  NST; T1R; sweet; umami

Mesh:

Substances:

Year:  2020        PMID: 31913749      PMCID: PMC7052635          DOI: 10.1152/jn.00584.2019

Source DB:  PubMed          Journal:  J Neurophysiol        ISSN: 0022-3077            Impact factor:   2.714


  65 in total

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3.  Taste of glucose elicits cephalic-phase insulin release in mice.

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4.  Oral glucose is the prime elicitor of preabsorptive insulin secretion.

Authors:  H J Grill; K C Berridge; D J Ganster
Journal:  Am J Physiol       Date:  1984-01

5.  Contribution of the T1r3 taste receptor to the response properties of central gustatory neurons.

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6.  Taste responses of neurons in the nucleus of the solitary tract of awake rats: an extended stimulus array.

Authors:  K Nakamura; R Norgren
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Authors:  Y Ninomiya; S Kurenuma; T Nomura; H Uebayashi; H Kawamura
Journal:  Comp Biochem Physiol A Comp Physiol       Date:  1992

Review 9.  Molecular and physiological evidence for glutamate (umami) taste transduction via a G protein-coupled receptor.

Authors:  N Chaudhari; S D Roper
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3.  Characteristics and Impact of the rNST GABA Network on Neural and Behavioral Taste Responses.

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