-
2
-
-
0013816757
-
Renewal of cells within taste buds
-
Beidler LM, Smallman RL. Renewal of cells within taste buds. J Cell Biol 1965;27:263-272.
-
(1965)
J Cell Biol
, vol.27
, pp. 263-272
-
-
Beidler, L.M.1
Smallman, R.L.2
-
3
-
-
77953274301
-
Lipopolysaccharide-induced inflammation attenuates taste progenitor cell proliferation and shortens the life span of taste bud cells
-
Cohn ZJ, Kim A, Huang L et al. Lipopolysaccharide-induced inflammation attenuates taste progenitor cell proliferation and shortens the life span of taste bud cells. BMC Neurosci 2010;11:72.
-
(2010)
BMC Neurosci
, vol.11
, pp. 72
-
-
Cohn, Z.J.1
Kim, A.2
Huang, L.3
-
4
-
-
33747168448
-
Taste bud contains both short-lived and long-lived cell populations
-
DOI 10.1016/j.neuroscience.2006.05.061, PII S0306452206007494
-
Hamamichi R, Asano-Miyoshi M, Emori Y. Taste bud contains both short-lived and long-lived cell populations. Neuroscience 2006;141:2129-2138. (Pubitemid 44233154)
-
(2006)
Neuroscience
, vol.141
, Issue.4
, pp. 2129-2138
-
-
Hamamichi, R.1
Asano-Miyoshi, M.2
Emori, Y.3
-
5
-
-
62549083036
-
Cell lineage mapping of taste bud cells and keratinocytes in the mouse tongue and soft palate
-
Okubo T, Clark C, Hogan BL. Cell lineage mapping of taste bud cells and keratinocytes in the mouse tongue and soft palate. Stem Cells 2009;27:442-450.
-
(2009)
Stem Cells
, vol.27
, pp. 442-450
-
-
Okubo, T.1
Clark, C.2
Hogan, B.L.3
-
6
-
-
73049116186
-
Lgr5(+ve) stem cells drive selfrenewal in the stomach and build long-lived gastric units in vitro
-
Barker N, Huch M, Kujala P et al. Lgr5(+ve) stem cells drive selfrenewal in the stomach and build long-lived gastric units in vitro. Cell Stem Cell 2010;6:25-36.
-
(2010)
Cell Stem Cell
, vol.6
, pp. 25-36
-
-
Barker, N.1
Huch, M.2
Kujala, P.3
-
7
-
-
35548974423
-
Identification of stem cells in small intestine and colon by marker gene Lgr5
-
DOI 10.1038/nature06196, PII NATURE06196
-
Barker N, van Es JH, Kuipers J et al. Identification of stem cells in small intestine and colon by marker gene Lgr5. Nature 2007;449:1003-1007. (Pubitemid 350014593)
-
(2007)
Nature
, vol.449
, Issue.7165
, pp. 1003-1007
-
-
Barker, N.1
Van Es, J.H.2
Kuipers, J.3
Kujala, P.4
Van Den, B.M.5
Cozijnsen, M.6
Haegebarth, A.7
Korving, J.8
Begthel, H.9
Peters, P.J.10
Clevers, H.11
-
8
-
-
55049112939
-
Lgr5 marks cycling, yet long-lived, hair follicle stem cells
-
Jaks V, Barker N, Kasper M et al. Lgr5 marks cycling, yet long-lived, hair follicle stem cells. Nat Genet 2008;40:1291-1299.
-
(2008)
Nat Genet
, vol.40
, pp. 1291-1299
-
-
Jaks, V.1
Barker, N.2
Kasper, M.3
-
9
-
-
67349123408
-
Single Lgr5 stem cells build crypt-villus structures in vitro without a mesenchymal niche
-
Sato T, Vries RG, Snippert HJ et al. Single Lgr5 stem cells build crypt-villus structures in vitro without a mesenchymal niche. Nature 2009;459:262-265.
-
(2009)
Nature
, vol.459
, pp. 262-265
-
-
Sato, T.1
Vries, R.G.2
Snippert, H.J.3
-
10
-
-
78651067425
-
Mouse telomerase reverse transcriptase (mTert) expression marks slowly cycling intestinal stem cells
-
Montgomery RK, Carlone DL, Richmond CA et al. Mouse telomerase reverse transcriptase (mTert) expression marks slowly cycling intestinal stem cells. Proc Natl Acad Sci USA 2011;108:179-184.
-
(2011)
Proc Natl Acad Sci USA
, vol.108
, pp. 179-184
-
-
Montgomery, R.K.1
Carlone, D.L.2
Richmond, C.A.3
-
11
-
-
46249128798
-
Bmi1 is expressed in vivo in intestinal stem cells
-
DOI 10.1038/ng.165, PII NG165
-
Sangiorgi E, Capecchi MR. Bmi1 is expressed in vivo in intestinal stem cells. Nat Genet 2008;40:915-920. (Pubitemid 351913652)
-
(2008)
Nature Genetics
, vol.40
, Issue.7
, pp. 915-920
-
-
Sangiorgi, E.1
Capecchi, M.R.2
-
12
-
-
80054041585
-
A reserve stem cell population in small intestine renders Lgr5-positive cells dispensable
-
Tian H, Biehs B, Warming S et al. A reserve stem cell population in small intestine renders Lgr5-positive cells dispensable. Nature 2011;478:255-259.
-
(2011)
Nature
, vol.478
, pp. 255-259
-
-
Tian, H.1
Biehs, B.2
Warming, S.3
-
13
-
-
84862946094
-
The intestinal stem cell markers Bmi1 and Lgr5 identify two functionally distinct populations
-
Yan KS, Chia LA, Li X et al. The intestinal stem cell markers Bmi1 and Lgr5 identify two functionally distinct populations. Proc Natl Acad Sci USA 2012;109:466-471.
-
(2012)
Proc Natl Acad Sci USA
, vol.109
, pp. 466-471
-
-
Yan, K.S.1
Chia, L.A.2
Li, X.3
-
14
-
-
35448995622
-
+-glucose cotransporter 1
-
DOI 10.1073/pnas.0706678104
-
Margolskee RF, Dyer J, Kokrashvili Z et al. T1R3 and gustducin in gut sense sugars to regulate expression of Na+-glucose cotransporter 1. Proc Natl Acad Sci USA 2007;104:15075-15080. (Pubitemid 47619595)
-
(2007)
Proceedings of the National Academy of Sciences of the United States of America
, vol.104
, Issue.38
, pp. 15075-15080
-
-
Margolskee, R.F.1
Dyer, J.2
Kokrashvili, Z.3
Salmon, K.S.H.4
Ilegems, E.5
Daly, K.6
Maillet, E.L.7
Ninomiya, Y.8
Mosinger, B.9
Shirazi-Beechey, S.P.10
-
15
-
-
35448986920
-
Gut-expressed gustducin and taste receptors regulate secretion of glucagon-like peptide-1
-
DOI 10.1073/pnas.0706890104
-
Jang HJ, Kokrashvili Z, Theodorakis MJ et al. Gut-expressed gustducin and taste receptors regulate secretion of glucagon-like peptide-1. Proc Natl Acad Sci USA 2007;104:15069-15074. (Pubitemid 47619594)
-
(2007)
Proceedings of the National Academy of Sciences of the United States of America
, vol.104
, Issue.38
, pp. 15069-15074
-
-
Jang, H.-J.1
Kokrashvili, Z.2
Theodorakis, M.J.3
Carlson, O.D.4
Kim, B.-J.5
Zhou, J.6
Hyeon, H.K.7
Xu, X.8
Chan, S.L.9
Juhaszova, M.10
Bernier, M.11
Mosinger, B.12
Margolskee, R.F.13
Egan, J.M.14
-
16
-
-
45249117904
-
Modulation of taste sensitivity by GLP-1 signaling
-
DOI 10.1111/j.1471-4159.2008.05397.x
-
Shin YK, Martin B, Golden E et al. Modulation of taste sensitivity by GLP-1 signaling. J Neurochem 2008;106:455-463. (Pubitemid 351840219)
-
(2008)
Journal of Neurochemistry
, vol.106
, Issue.1
, pp. 455-463
-
-
Shin, Y.-K.1
Martin, B.2
Golden, E.3
Dotson, C.D.4
Maudsley, S.5
Kim, W.6
Jang, H.-J.7
Mattson, M.P.8
Drucker, D.J.9
Egan, J.M.10
Munger, S.D.11
-
17
-
-
79955104461
-
Glucose transporters and ATP-gated K+ (KATP) metabolic sensors are present in type 1 taste receptor 3 (T1r3)-expressing taste cells
-
Yee KK, Sukumaran SK, Kotha R et al. Glucose transporters and ATP-gated K+ (KATP) metabolic sensors are present in type 1 taste receptor 3 (T1r3)-expressing taste cells. Proc Natl Acad Sci USA 2011;108:5431-5436.
-
(2011)
Proc Natl Acad Sci USA
, vol.108
, pp. 5431-5436
-
-
Yee, K.K.1
Sukumaran, S.K.2
Kotha, R.3
-
18
-
-
0025853026
-
Taste cells in the gut and on the tongue. Their common, paraneuronal features
-
Fujita T. Taste cells in the gut and on the tongue. Their common, paraneuronal features. Physiol Behav 1991;49:883-885.
-
(1991)
Physiol Behav
, vol.49
, pp. 883-885
-
-
Fujita, T.1
-
19
-
-
0032923739
-
Generalized lacZ expression with the ROSA26 Cre reporter strain [1]
-
DOI 10.1038/5007
-
Soriano P. Generalized lacZ expression with the ROSA26 Cre reporter strain. Nat Genet 1999;21:70-71. (Pubitemid 29036285)
-
(1999)
Nature Genetics
, vol.21
, Issue.1
, pp. 70-71
-
-
Soriano, P.1
-
20
-
-
73949140059
-
A robust and highthroughput Cre reporting and characterization system for the whole mouse brain
-
Madisen L, Zwingman TA, Sunkin SM et al. A robust and highthroughput Cre reporting and characterization system for the whole mouse brain. Nat Neurosci 2010;13:133-140.
-
(2010)
Nat Neurosci
, vol.13
, pp. 133-140
-
-
Madisen, L.1
Zwingman, T.A.2
Sunkin, S.M.3
-
21
-
-
0028898512
-
Localization of serotonin in taste buds: A comparative study in four vertebrates
-
Kim DJ, Roper SD. Localization of serotonin in taste buds: A comparative study in four vertebrates. J Comp Neurol 1995;353:364-370.
-
(1995)
J Comp Neurol
, vol.353
, pp. 364-370
-
-
Kim, D.J.1
Roper, S.D.2
-
22
-
-
70349984438
-
Common sense about taste: From mammals to insects
-
Yarmolinsky DA, Zuker CS, Ryba NJ. Common sense about taste: From mammals to insects. Cell 2009;139:234-244.
-
(2009)
Cell
, vol.139
, pp. 234-244
-
-
Yarmolinsky, D.A.1
Zuker, C.S.2
Ryba, N.J.3
-
23
-
-
79960990066
-
R-spondins function as ligands of the orphan receptors LGR4 and LGR5 to regulate Wnt/beta-catenin signaling
-
Carmon KS, Gong X, Lin Q et al. R-spondins function as ligands of the orphan receptors LGR4 and LGR5 to regulate Wnt/beta-catenin signaling. Proc Natl Acad Sci USA 2011;108:11452-11457.
-
(2011)
Proc Natl Acad Sci USA
, vol.108
, pp. 11452-11457
-
-
Carmon, K.S.1
Gong, X.2
Lin, Q.3
-
24
-
-
80051926611
-
Lgr5 homologues associate with Wnt receptors and mediate R-spondin signalling
-
de Lau W, Barker N, Low TY et al. Lgr5 homologues associate with Wnt receptors and mediate R-spondin signalling. Nature 2011;476:293-297.
-
(2011)
Nature
, vol.476
, pp. 293-297
-
-
De Lau, W.1
Barker, N.2
Low, T.Y.3
-
25
-
-
80053560465
-
LGR4 and LGR5 are R-spondin receptors mediating Wnt/beta-catenin and Wnt/PCP signalling
-
Glinka A, Dolde C, Kirsch N et al. LGR4 and LGR5 are R-spondin receptors mediating Wnt/beta-catenin and Wnt/PCP signalling. EMBO Rep 2011;12:1055-1061.
-
(2011)
EMBO Rep
, vol.12
, pp. 1055-1061
-
-
Glinka, A.1
Dolde, C.2
Kirsch, N.3
-
26
-
-
7644230387
-
Neonatal lethality of LGR5 null mice is associated with ankyloglossia and gastrointestinal distension
-
DOI 10.1128/MCB.24.22.9736-9743.2004
-
Morita H, Mazerbourg S, Bouley DM et al. Neonatal lethality of LGR5 null mice is associated with ankyloglossia and gastrointestinal distension. Mol Cell Biol 2004;24:9736-9743. (Pubitemid 39458802)
-
(2004)
Molecular and Cellular Biology
, vol.24
, Issue.22
, pp. 9736-9743
-
-
Morita, H.1
Mazerbourg, S.2
Bouley, D.M.3
Luo, C.-W.4
Kawamura, K.5
Kuwabara, Y.6
Baribault, H.7
Tian, H.8
Hsueh, A.J.W.9
-
27
-
-
0029045060
-
Embryonic origin of amphibian taste buds
-
Barlow LA, Northcutt RG. Embryonic origin of amphibian taste buds. Dev Biol 1995;169:273-285.
-
(1995)
Dev Biol
, vol.169
, pp. 273-285
-
-
Barlow, L.A.1
Northcutt, R.G.2
-
28
-
-
0028912379
-
Taste receptor cells arise from local epithelium, not neurogenic ectoderm
-
Stone LM, Finger TE, Tam PP et al. Taste receptor cells arise from local epithelium, not neurogenic ectoderm. Proc Natl Acad Sci USA 1995;92:1916-1920.
-
(1995)
Proc Natl Acad Sci USA
, vol.92
, pp. 1916-1920
-
-
Stone, L.M.1
Finger, T.E.2
Tam, P.P.3
-
30
-
-
77955599683
-
Taste bud regeneration and the search for taste progenitor cells
-
Miura H, Barlow LA. Taste bud regeneration and the search for taste progenitor cells. Arch Ital Biol 2010;148:107-118.
-
(2010)
Arch Ital Biol
, vol.148
, pp. 107-118
-
-
Miura, H.1
Barlow, L.A.2
-
31
-
-
33847779642
-
Wnt signaling interacts with Shh to regulate taste papilla development
-
DOI 10.1073/pnas.0607399104
-
Iwatsuki K, Liu HX, Gronder A et al. Wnt signaling interacts with Shh to regulate taste papilla development. Proc Natl Acad Sci USA 2007;104:2253-2258. (Pubitemid 46391384)
-
(2007)
Proceedings of the National Academy of Sciences of the United States of America
, vol.104
, Issue.7
, pp. 2253-2258
-
-
Iwatsuki, K.1
Liu, H.-X.2
Grunder, A.3
Singer, M.A.4
Lane, T.F.5
Grosschedl, R.6
Mistretta, C.M.7
Margolskee, R.F.8
-
32
-
-
33845896536
-
Wnt-beta-catenin signaling initiates taste papilla development
-
DOI 10.1038/ng1932, PII NG1932
-
Liu F, Thirumangalathu S, Gallant NM et al. Wnt-beta-catenin signaling initiates taste papilla development. Nat Genet 2007;39:106-112. (Pubitemid 46026509)
-
(2007)
Nature Genetics
, vol.39
, Issue.1
, pp. 106-112
-
-
Liu, F.1
Thirumangalathu, S.2
Gallant, N.M.3
Yang, S.H.4
Stoick-Cooper, C.L.5
Reddy, S.T.6
Andl, T.7
Taketo, M.M.8
Dlugosz, A.A.9
Moon, R.T.10
Barlow, L.A.11
Millar, S.E.12
-
33
-
-
84862316812
-
Lineage tracing of the endoderm during oral development
-
Rothova M, Thompson H, Lickert H et al. Lineage tracing of the endoderm during oral development. Dev Dyn 2012;241:1183-1191.
-
(2012)
Dev Dyn
, vol.241
, pp. 1183-1191
-
-
Rothova, M.1
Thompson, H.2
Lickert, H.3
-
34
-
-
84867342942
-
Identifying the stem cell of the intestinal crypt: Strategies and pitfalls
-
Barker N, van Oudenaarden A, Clevers H. Identifying the stem cell of the intestinal crypt: Strategies and pitfalls. Cell Stem Cell 2012;11:452-460.
-
(2012)
Cell Stem Cell
, vol.11
, pp. 452-460
-
-
Barker, N.1
Van Oudenaarden, A.2
Clevers, H.3
|