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Summary Expression Gene Literature (25) GO Terms (22) Nucleotides (626) Proteins (47) Interactants (260) Wiki

Papers associated with slc5a8.1

Search for slc5a8.1 morpholinos using Textpresso

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3 paper(s) referencing morpholinos

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Transport characteristics of 5-aminosalicylic acid into colonic epithelium: Involvement of sodium-coupled monocarboxylate transporter SMCT1-mediated transport system., Yuri T, Kono Y, Fujita T., Biochem Biophys Res Commun. January 1, 2020; 524 (3): 561-566.

Transport Mechanisms for the Nutritional Supplement β-Hydroxy-β-Methylbutyrate (HMB) in Mammalian Cells., Ogura J, Sato T, Higuchi K, Bhutia YD, Babu E, Masuda M, Miyauchi S, Rueda R, Pereira SL, Ganapathy V., Pharm Res. April 17, 2019; 36 (6): 84.

Transport of 2,4-dichloro phenoxyacetic acid by human Na+-coupled monocarboxylate transporter 1 (hSMCT1, SLC5A8)., Sugio K, Inoda D, Masuda M, Azumaya I, Sasaki S, Shimono K, Ganapathy V, Miyauchi S., Drug Metab Pharmacokinet. February 1, 2019; 34 (1): 95-103.

Lack of evidence for synaptic high-affinity γ-hydroxybutyric acid (GHB) transport in rat brain synaptosomes and 11 Na+ -dependent SLC neurotransmitter transporters., Thiesen L, Frølund B, Wellendorph P., J Neurochem. January 1, 2019; 149 (2): 195-210.

Uricosuric targets of tranilast., Mandal AK, Mercado A, Foster A, Zandi-Nejad K, Mount DB., Pharmacol Res Perspect. April 1, 2017; 5 (2): e00291.                    

Insulin and SGK1 reduce the function of Na+/monocarboxylate transporter 1 (SMCT1/SLC5A8)., López-Barradas A, González-Cid T, Vázquez N, Gavi-Maza M, Reyes-Camacho A, Velázquez-Villegas LA, Ramírez V, Zandi-Nejad K, Mount DB, Torres N, Tovar AR, Romero MF, Gamba G, Plata C., Am J Physiol Cell Physiol. November 1, 2016; 311 (5): C720-C734.

SGLT2 inhibitor lowers serum uric acid through alteration of uric acid transport activity in renal tubule by increased glycosuria., Chino Y, Samukawa Y, Sakai S, Nakai Y, Yamaguchi J, Nakanishi T, Tamai I., Biopharm Drug Dispos. October 1, 2014; 35 (7): 391-404.                

Transmembrane voltage potential is an essential cellular parameter for the detection and control of tumor development in a Xenopus model., Chernet BT, Levin M., Dis Model Mech. May 1, 2013; 6 (3): 595-607.                  

Functional cooperation of SMCTs and URAT1 for renal reabsorption transport of urate., Lu Y, Nakanishi T, Tamai I., Drug Metab Pharmacokinet. January 1, 2013; 28 (2): 153-8.

Resting potential, oncogene-induced tumorigenesis, and metastasis: the bioelectric basis of cancer in vivo., Lobikin M, Chernet B, Lobo D, Levin M., Phys Biol. December 1, 2012; 9 (6): 065002.

Transport via SLC5A8 (SMCT1) is obligatory for 2-oxothiazolidine-4-carboxylate to enhance glutathione production in retinal pigment epithelial cells., Babu E, Ananth S, Veeranan-Karmegam R, Coothankandaswamy V, Smith SB, Boettger T, Ganapathy V, Martin PM., Invest Ophthalmol Vis Sci. July 29, 2011; 52 (8): 5749-57.

Diclofenac-induced stimulation of SMCT1 (SLC5A8) in a heterologous expression system: a RPE specific phenomenon., Ananth S, Zhuang L, Gopal E, Itagaki S, Ellappan B, Smith SB, Ganapathy V, Martin P., Biochem Biophys Res Commun. March 26, 2010; 394 (1): 75-80.

Anionic leak currents through the Na+/monocarboxylate cotransporter SMCT1., Coady MJ, Wallendorff B, Bourgeois F, Lapointe JY., Am J Physiol Cell Physiol. January 1, 2010; 298 (1): C124-31.

Transport by SLC5A8 with subsequent inhibition of histone deacetylase 1 (HDAC1) and HDAC3 underlies the antitumor activity of 3-bromopyruvate., Thangaraju M, Karunakaran SK, Itagaki S, Gopal E, Elangovan S, Prasad PD, Ganapathy V., Cancer. October 15, 2009; 115 (20): 4655-66.

Overlapping functions of Cdx1, Cdx2, and Cdx4 in the development of the amphibian Xenopus tropicalis., Faas L, Isaacs HV., Dev Dyn. April 1, 2009; 238 (4): 835-52.                                

Vertebrate CASTOR is required for differentiation of cardiac precursor cells at the ventral midline., Christine KS, Conlon FL., Dev Cell. April 1, 2008; 14 (4): 616-23.                                

Organization of the pronephric kidney revealed by large-scale gene expression mapping., Raciti D, Reggiani L, Geffers L, Jiang Q, Bacchion F, Subrizi AE, Clements D, Tindal C, Davidson DR, Kaissling B, Brändli AW., Genome Biol. January 1, 2008; 9 (5): R84.                                                                        

Cloning and functional characterization of human SMCT2 (SLC5A12) and expression pattern of the transporter in kidney., Gopal E, Umapathy NS, Martin PM, Ananth S, Gnana-Prakasam JP, Becker H, Wagner CA, Ganapathy V, Prasad PD., Biochim Biophys Acta. November 1, 2007; 1768 (11): 2690-7.

Transport of nicotinate and structurally related compounds by human SMCT1 (SLC5A8) and its relevance to drug transport in the mammalian intestinal tract., Gopal E, Miyauchi S, Martin PM, Ananth S, Roon P, Smith SB, Ganapathy V., Pharm Res. March 1, 2007; 24 (3): 575-84.

FGF is essential for both condensation and mesenchymal-epithelial transition stages of pronephric kidney tubule development., Urban AE, Zhou X, Ungos JM, Raible DW, Altmann CR, Vize PD., Dev Biol. September 1, 2006; 297 (1): 103-17.                    

Identity of SMCT1 (SLC5A8) as a neuron-specific Na+-coupled transporter for active uptake of L-lactate and ketone bodies in the brain., Martin PM, Gopal E, Ananth S, Zhuang L, Itagaki S, Prasad BM, Smith SB, Prasad PD, Ganapathy V., J Neurochem. July 1, 2006; 98 (1): 279-88.

Interaction of ibuprofen and other structurally related NSAIDs with the sodium-coupled monocarboxylate transporter SMCT1 (SLC5A8)., Itagaki S, Gopal E, Zhuang L, Fei YJ, Miyauchi S, Prasad PD, Ganapathy V., Pharm Res. June 1, 2006; 23 (6): 1209-16.

Cloning and functional identification of slc5a12 as a sodium-coupled low-affinity transporter for monocarboxylates (SMCT2)., Srinivas SR, Gopal E, Zhuang L, Itagaki S, Martin PM, Fei YJ, Ganapathy V, Prasad PD., Biochem J. December 15, 2005; 392 (Pt 3): 655-64.

Subdividing the embryo: a role for Notch signaling during germ layer patterning in Xenopus laevis., Contakos SP, Gaydos CM, Pfeil EC, McLaughlin KA., Dev Biol. December 1, 2005; 288 (1): 294-307.          

Novel gene expression domains reveal early patterning of the Xenopus endoderm., Costa RM, Mason J, Lee M, Amaya E, Zorn AM., Gene Expr Patterns. August 1, 2003; 3 (4): 509-19.            

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