Emerging Roles of Nucleoside Transporters

被引:108
作者
Pastor-Anglada, Marcal [1 ,2 ,3 ]
Perez-Torras, Sandra [1 ,2 ,3 ]
机构
[1] Univ Barcelona, Inst Biomed IBUB, Dept Biochem & Mol Biomed, Biochem & Mol Pharmacol Sect, Barcelona, Spain
[2] Inst Salud Carlos III, Natl Biomed Res Inst Liver & Gastrointestinal Dis, Oncol Program, Barcelona, Spain
[3] Inst Recerca St Joan de Deu, Genet Mol Biol & Gene Therapy Program, Barcelona, Spain
来源
FRONTIERS IN PHARMACOLOGY | 2018年 / 9卷
关键词
nucleoside transporter; hCNT; hENT; transceptor; interactome; nucleoside homeostasis; SENSITIVE EAAT2 EXPRESSION; LIVER PARENCHYMAL-CELLS; ADENOSINE TRANSPORTER; FUNCTIONAL-CHARACTERIZATION; MOLECULAR-CLONING; HEPATOCELLULAR-CARCINOMA; SACCHAROMYCES-CEREVISIAE; SIGNALING PATHWAYS; HUMAN ERYTHROCYTES; ETHANOL DRINKING;
D O I
10.3389/fphar.2018.00606
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Since human Nucleoside Transporters (hNTs) were identified by their activity as transport systems, extensive work has been done to fully characterize them at the molecular and physiological level. Many efforts have been addressed to the identification of their selectivity for natural substrates and nucleoside analogs used to treat several diseases. hNTs belong to two different gene families, SLC28 and SLC29, encoding human Concentrative Nucleoside Transporters (hCNTs) and human Equilibrative Nucleoside Transporters (hENTs), respectively. hCNTs and hENTs are integral membrane proteins, albeit structurally unrelated. Both families share common features as substrate selectivity and often tissue localization. This apparent biological redundancy may anticipate some different roles for hCNTs and hENTs in cell physiology. Thus, hENTs may have a major role in maintaining nucleoside homeostasis, whereas hCNTs could contribute to nucleoside sensing and signal transduction. In this sense, the ascription of hCNT1 to a transceptor reinforces this hypothesis. Moreover, some evidences could suggest a putative role of hCNT2 and hCNT3 as transceptors. The interacting proteins identified for hCNT2 suggest a link to energy metabolism. Moreover, the ability of hCNT2 and hCNT3 to transport adenosine links both proteins to purinergic signaling. On the other hand, the broad selectivity transporters hENTs have a crucial role in salvage pathways and purinergic signaling by means of nucleoside pools regulation. In particular, the two new hENT2 isoforms recently described together with hENT2 seem to be key elements controlling nucleoside and nucleotide pools for DNA synthesis. This review focuses on all these NTs functions beyond their mere translocation ability.
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页数:8
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共 79 条
  • [1] Molecular evolution of the equilibrative nucleoside transporter family: Identification of novel family members in prokaryotes and eukaryotes
    Acimovic, Y
    Coe, IR
    [J]. MOLECULAR BIOLOGY AND EVOLUTION, 2002, 19 (12) : 2199 - 2210
  • [2] Extracellular adenosine activates AMP-dependent protein kinase (AMPK)
    Aymerich, I
    Foufelle, F
    Ferré, P
    Casado, FJ
    Pastor-Anglada, M
    [J]. JOURNAL OF CELL SCIENCE, 2006, 119 (08) : 1612 - 1621
  • [3] Functional characterization of novel human and mouse equilibrative nucleoside transporters (hENT3 and mENT3) located in intracellular membranes
    Baldwin, SA
    Yao, SYM
    Hyde, RJ
    Ng, AML
    Foppolo, S
    Barnes, K
    Ritzel, MWL
    Cass, CE
    Young, JD
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (16) : 15880 - 15887
  • [4] The equilibrative nucleoside transporter family, SLC29
    Baldwin, SA
    Beal, PR
    Yao, SYM
    King, AE
    Cass, CE
    Young, JD
    [J]. PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 2004, 447 (05): : 735 - 743
  • [5] Distribution and functional characterization of equilibrative nucleoside transporter-4, a novel cardiac adenosine transporter activated at acidic pH
    Barnes, Kay
    Dobrzynski, Halina
    Foppolo, Sophie
    Beal, Paul R.
    Ismat, Fouzia
    Scullion, Elspeth R.
    Sun, Lijie
    Tellez, James
    Ritzel, Mabel W. L.
    Claycomb, William C.
    Cass, Carol E.
    Young, James D.
    Billeter-Clark, Rudi
    Boyett, Mark R.
    Baldwin, Stephen A.
    [J]. CIRCULATION RESEARCH, 2006, 99 (05) : 510 - 519
  • [6] CNT1 Expression Influences Proliferation and Chemosensitivity in Drug-Resistant Pancreatic Cancer Cells
    Bhutia, Yangzom D.
    Hung, Sau Wai
    Patel, Bhavi
    Lovin, Dylan
    Govindarajan, Rajgopal
    [J]. CANCER RESEARCH, 2011, 71 (05) : 1825 - 1835
  • [7] Novel regulation of equlibrative nucleoside transporter 1 (ENT1) by receptor-stimulated Ca2+-dependent calmodulin binding
    Bicket, Alex
    Mehrabi, Pedram
    Naydenova, Zlatina
    Wong, Victoria
    Donaldson, Logan
    Stagljar, Igor
    Coe, Imogen R.
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2016, 310 (10): : C808 - C820
  • [8] Bjursell G, 1980, Antibiot Chemother (1971), V28, P78
  • [9] Nucleoside transporters are widely expressed in ovarian carcinoma effusions
    Bock, Annika J.
    Dong, Hiep Phuc
    Trope, Claes G.
    Staff, Anne Cathrine
    Risberg, Bjorn
    Davidson, Ben
    [J]. CANCER CHEMOTHERAPY AND PHARMACOLOGY, 2012, 69 (02) : 467 - 475
  • [10] Functional analysis of the human concentrative nucleoside transporter-1 variant hCNT1S546P provides insight into the sodium-binding pocket
    Cano-Soldado, Pedro
    Gorraitz, Edurne
    Errasti-Murugarren, Ekaitz
    Javier Casado, F.
    Pilar Lostao, M.
    Pastor-Anglada, Marcal
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2012, 302 (01): : C257 - C266