Literature DB >> 16734743

The taurine transporter: mechanisms of regulation.

X Han1, A B Patters, D P Jones, I Zelikovic, R W Chesney.   

Abstract

Taurine transport undergoes an adaptive response to changes in taurine availability. Unlike most amino acids, taurine is not metabolized or incorporated into protein but remains free in the intracellular water. Most amino acids are reabsorbed at rates of 98-99%, but reabsorption of taurine may range from 40% to 99.5%. Factors that influence taurine accumulation include ionic environment, electrochemical charge, and post-translational and transcriptional factors. Among these are protein kinase C (PKC) activation and transactivation or repression by proto-oncogenes such as WT1, c-Jun, c-Myb and p53. Renal adaptive regulation of the taurine transporter (TauT) was studied in vivo and in vitro. Site-directed mutagenesis and the oocyte expression system were used to study post-translational regulation of the TauT by PKC. Reporter genes and Northern and Western blots were used to study transcriptional regulation of the taurine transporter gene (TauT). We demonstrated that (i) the body pool of taurine is controlled through renal adaptive regulation of TauT in response to taurine availability; (ii) ionic environment, electrochemical charge, pH, and developmental ontogeny influence renal taurine accumulation; (iii) the fourth segment of TauT is involved in the gating of taurine across the cell membrane, which is controlled by PKC phosphorylation of serine 322 at the post-translational level; (iv) expression of TauT is repressed by the p53 tumour suppressor gene and is transactivated by proto-oncogenes such as WT1, c-Jun, and c-Myb; and (v) over-expression of TauT protects renal cells from cisplatin-induced nephrotoxicity.

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Year:  2006        PMID: 16734743     DOI: 10.1111/j.1748-1716.2006.01573.x

Source DB:  PubMed          Journal:  Acta Physiol (Oxf)        ISSN: 1748-1708            Impact factor:   6.311


  41 in total

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2.  Homeostatic adaptations in brain energy metabolism in mouse models of Huntington disease.

Authors:  Ivan Tkac; Pierre-Gilles Henry; Lori Zacharoff; Michael Wedel; Wuming Gong; Dinesh K Deelchand; Tongbin Li; Janet M Dubinsky
Journal:  J Cereb Blood Flow Metab       Date:  2012-07-18       Impact factor: 6.200

3.  The Concise Guide to PHARMACOLOGY 2013/14: transporters.

Authors:  Stephen P H Alexander; Helen E Benson; Elena Faccenda; Adam J Pawson; Joanna L Sharman; Michael Spedding; John A Peters; Anthony J Harmar
Journal:  Br J Pharmacol       Date:  2013-12       Impact factor: 8.739

4.  Oxidative stress and dysregulation of the taurine transporter in high-glucose-exposed human Schwann cells: implications for pathogenesis of diabetic neuropathy.

Authors:  Trevor Askwith; Wei Zeng; Margaret C Eggo; Martin J Stevens
Journal:  Am J Physiol Endocrinol Metab       Date:  2009-07-14       Impact factor: 4.310

5.  Taurine and proliferation of lymphocytes in physically restrained rats.

Authors:  Fili Fazzino; Francisco Obregón; Lucimey Lima
Journal:  J Biomed Sci       Date:  2010-08-24       Impact factor: 8.410

6.  Differential effects of taurine treatment and taurine deficiency on the outcome of renal ischemia reperfusion injury.

Authors:  Mahmood S Mozaffari; Rafik Abdelsayed; Champa Patel; Hereward Wimborne; Jun Yao Liu; Stephen W Schaffer
Journal:  J Biomed Sci       Date:  2010-08-24       Impact factor: 8.410

Review 7.  Taurine and the renal system.

Authors:  Russell W Chesney; Xiaobin Han; Andrea B Patters
Journal:  J Biomed Sci       Date:  2010-08-24       Impact factor: 8.410

8.  Stress-responsive gene TauT and acute kidney injury.

Authors:  Xiaobin Han; Russell W Chesney
Journal:  J Biomed Sci       Date:  2010-08-24       Impact factor: 8.410

9.  Correlation of taurine transport with membrane lipid composition and peroxidation in DHA-enriched Caco-2 cells.

Authors:  Sònia Roig-Pérez; Carmen Ferrer; Magda Rafecas; Miquel Moretó; Ruth Ferrer
Journal:  J Membr Biol       Date:  2009-04-07       Impact factor: 1.843

10.  The cysteine dioxgenase knockout mouse: altered cysteine metabolism in nonhepatic tissues leads to excess H2S/HS(-) production and evidence of pancreatic and lung toxicity.

Authors:  Heather B Roman; Lawrence L Hirschberger; Jakub Krijt; Alessandro Valli; Viktor Kožich; Martha H Stipanuk
Journal:  Antioxid Redox Signal       Date:  2013-03-19       Impact factor: 8.401

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