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Genetics of mouse behavioral and peripheral neural responses to sucrose.

Authors :
Lin, Cailu
Inoue, Masashi
Li, Xia
Bosak, Natalia P.
Ishiwatari, Yutaka
Tordoff, Michael G.
Beauchamp, Gary K.
Bachmanov, Alexander A.
Reed, Danielle R.
Source :
Mammalian Genome; Apr2021, Vol. 32 Issue 2, p51-69, 19p
Publication Year :
2021

Abstract

Mice of the C57BL/6ByJ (B6) strain have higher consumption of sucrose, and stronger peripheral neural responses to it, than do mice of the 129P3/J (129) strain. To identify quantitative trait loci (QTLs) responsible for this strain difference and to evaluate the contribution of peripheral taste responsiveness to individual differences in sucrose intake, we produced an intercross (F<subscript>2</subscript>) of 627 mice, measured their sucrose consumption in two-bottle choice tests, recorded the electrophysiological activity of the chorda tympani nerve elicited by sucrose in a subset of F<subscript>2</subscript> mice, and genotyped the mice with DNA markers distributed in every mouse chromosome. We confirmed a sucrose consumption QTL (Scon2, or Sac) on mouse chromosome (Chr) 4, harboring the Tas1r3 gene, which encodes the sweet taste receptor subunit TAS1R3 and affects both behavioral and neural responses to sucrose. For sucrose consumption, we also detected five new main-effect QTLs, Scon6 (Chr2), Scon7 (Chr5), Scon8 (Chr8), Scon3 (Chr9), and Scon9 (Chr15), and an epistatically interacting QTL pair Scon4 (Chr1) and Scon3 (Chr9). No additional QTLs for the taste nerve responses to sucrose were detected besides Scon2 (Tas1r3) on Chr4. Identification of the causal genes and variants for these sucrose consumption QTLs may point to novel mechanisms beyond peripheral taste sensitivity that could be harnessed to control obesity and diabetes. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09388990
Volume :
32
Issue :
2
Database :
Complementary Index
Journal :
Mammalian Genome
Publication Type :
Academic Journal
Accession number :
149573723
Full Text :
https://doi.org/10.1007/s00335-021-09858-4