Cellular diversity and regeneration in taste buds
Tài liệu tham khảo
Jette, 2020, Chemical receptors of the arytenoid: a comparison of human and mouse, Laryngoscope, 130, 423, 10.1002/lary.27931
Prescott, 2020, An airway protection program revealed by sweeping genetic control of vagal afferents, Cell, 181, 574, 10.1016/j.cell.2020.03.004
Nguyen, 2021, Mucous salivary glands associated with the retromolar taste papillae, Chem Senses, 10.1093/chemse/bjab019
Barlow, 2015, Progress and renewal in gustation: new insights into taste bud development, Development, 142, 3620, 10.1242/dev.120394
Yang, 2020, Three-dimensional reconstructions of mouse circumvallate taste buds using serial blockface scanning electron microscopy: I. Cell types and the apical region of the taste bud, J Comp Neurol, 528, 756, 10.1002/cne.24779
Roper, 2017, Taste buds: cells, signals and synapses, Nat Rev Neurosci, 18, 485, 10.1038/nrn.2017.68
DeFazio, 2006, Separate populations of receptor cells and presynaptic cells in mouse taste buds, J Neurosci, 26, 3971, 10.1523/JNEUROSCI.0515-06.2006
Lossow, 2017, Genetic labeling of Car4-expressing cells reveals subpopulations of Type III taste cells, Chem Senses, 42, 747, 10.1093/chemse/bjx048
Wilson, 2017, Type III cells in anterior taste fields are more immunohistochemically diverse than those of posterior taste fields in mice, Chem Senses, 42, 759, 10.1093/chemse/bjx055
Teng, 2019, Cellular and neural responses to sour stimuli require the proton channel Otop1, Curr Biol, 29, 3647, 10.1016/j.cub.2019.08.077
Kinnamon, 2019, Recent advances in taste transduction and signaling, F1000Res, 8, 10.12688/f1000research.21099.1
Dutta Banik, 2020, A subset of broadly responsive Type III taste cells contribute to the detection of bitter, sweet and umami stimuli, PLoS Genet, 16, 10.1371/journal.pgen.1008925
Yang, 2000, Taste cells with synapses in rat circumvallate papillae display SNAP-25-like immunoreactivity, J Comp Neurol, 424, 205, 10.1002/1096-9861(20000821)424:2<205::AID-CNE2>3.0.CO;2-F
Larson, 2020, Function, innervation, and neurotransmitter signaling in mice lacking Type-II taste cells, eNeuro, 7, 10.1523/ENEURO.0339-19.2020
Ma, 2018, CALHM3 is essential for rapid ion channel-mediated purinergic neurotransmission of GPCR-mediated tastes, Neuron, 98, 547, 10.1016/j.neuron.2018.03.043
Romanov, 2018, Chemical synapses without synaptic vesicles: purinergic neurotransmission through a CALHM1 channel-mitochondrial signaling complex, Sci Signal, 11, 10.1126/scisignal.aao1815
Kashio, 2019, CALHM1/CALHM3 channel is intrinsically sorted to the basolateral membrane of epithelial cells including taste cells, Sci Rep, 9, 2681, 10.1038/s41598-019-39593-5
Bigiani, 2017, Calcium homeostasis modulator 1-like currents in rat fungiform taste cells expressing amiloride-sensitive sodium currents, Chem Senses, 42, 343, 10.1093/chemse/bjx013
Huang, 2018, Substance P as a putative efferent transmitter mediates GABAergic inhibition in mouse taste buds, Br J Pharmacol, 175, 1039, 10.1111/bph.14142
Baumer-Harrison, 2020, Optogenetic stimulation of Type I GAD65(+) cells in taste buds activates gustatory neurons and drives appetitive licking behavior in sodium-depleted mice, J Neurosci, 40, 7795, 10.1523/JNEUROSCI.0597-20.2020
Ohmoto, 2020, Sodium-taste cells require Skn-1a for generation and share molecular features with sweet, umami, and bitter taste cells, eNeuro, 7, 10.1523/ENEURO.0385-20.2020
Miura, 2006, Cell lineage and differentiation in taste buds, Arch Histol Cytol, 69, 209, 10.1679/aohc.69.209
Perea-Martinez, 2013, Functional cell types in taste buds have distinct longevities, PLoS One, 8, 10.1371/journal.pone.0053399
Ohmoto, 2020, SOX2 regulates homeostasis of taste bud cells and lingual epithelial cells in posterior tongue, PLoS One, 15, 10.1371/journal.pone.0240848
Okubo, 2009, Cell lineage mapping of taste bud cells and keratinocytes in the mouse tongue and soft palate, Stem Cells, 27, 442, 10.1634/stemcells.2008-0611
Okubo, 2006, Sox2 is required for development of taste bud sensory cells, Genes Dev, 20, 2654, 10.1101/gad.1457106
Castillo-Azofeifa, 2018, SOX2 regulation by hedgehog signaling controls adult lingual epithelium homeostasis, Development, 145, 10.1242/dev.164889
Ohmoto, 2017, Genetic lineage tracing in taste tissues using Sox2-CreERT2 strain, Chem Senses, 42, 547, 10.1093/chemse/bjx032
Mistretta, 2019, Hedgehog signaling regulates taste organs and oral sensation: distinctive roles in the epithelium, stroma, and innervation, Int J Mol Sci, 20, 10.3390/ijms20061341
Castillo-Azofeifa, 2017, Sonic hedgehog from both nerves and epithelium is a key trophic factor for taste bud maintenance, Development, 144, 3054, 10.1242/dev.150342
Liu, 2013, Anterograde trafficking of neurotrophin-3 in the adult olfactory system in vivo, Exp Neurol, 241, 125, 10.1016/j.expneurol.2012.12.010
Yee, 2013, Lgr5-EGFP marks taste bud stem/progenitor cells in posterior tongue, Stem Cells, 31, 992, 10.1002/stem.1338
Ren, 2014, Single Lgr5- or Lgr6-expressing taste stem/progenitor cells generate taste bud cells ex vivo, Proc Natl Acad Sci U S A, 111, 16401, 10.1073/pnas.1409064111
Gaillard, 2015, β-catenin signaling biases multipotent lingual epithelial progenitors to differentiate and acquire specific taste cell fates, PLoS Genet, 11, 10.1371/journal.pgen.1005208
Gaillard, 2017, β-catenin is required for taste bud cell renewal and behavioral taste perception in adult mice, PLoS Genet, 13, 10.1371/journal.pgen.1006990
Xu, 2017, WNT10A mutation causes ectodermal dysplasia by impairing progenitor cell proliferation and KLF4-mediated differentiation, Nat Commun, 8, 15397, 10.1038/ncomms15397
Miura, 2014, Sonic hedgehog-expressing basal cells are general post-mitotic precursors of functional taste receptor cells, Dev Dyn, 243, 1286, 10.1002/dvdy.24121
Kapsimali, 2011, Fgf signaling controls pharyngeal taste bud formation through miR-200 and Delta-Notch activity, Development, 138, 3473, 10.1242/dev.058669
Seta, 2011, Mash1 is required for the differentiation of AADC-positive type III cells in mouse taste buds, Dev Dyn, 240, 775, 10.1002/dvdy.22576
Matsumoto, 2011, Skn-1a (Pou2f3) specifies taste receptor cell lineage, Nat Neurosci, 14, 685, 10.1038/nn.2820
Cau, 1997, Mash1 activates a cascade of bHLH regulators in olfactory neuron progenitors, Development, 124, 1611, 10.1242/dev.124.8.1611