Na(+)/H(+) antiporter (NHE1) and lactate/H(+) symporters (MCTs) in pH homeostasis and cancer metabolism.
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[1] J. Reis-Filho,et al. Functional screening identifies MCT4 as a key regulator of breast cancer cell metabolism and survival , 2015, The Journal of pathology.
[2] R. McKenna,et al. Hypoxia-induced carbonic anhydrase IX facilitates lactate flux in human breast cancer cells by non-catalytic function , 2015, Scientific Reports.
[3] A. Baron,et al. Pharmacology of acid-sensing ion channels – Physiological and therapeutical perspectives , 2015, Neuropharmacology.
[4] J. Pouysségur,et al. Hypoxia, cancer metabolism and the therapeutic benefit of targeting lactate/H+ symporters , 2015, Journal of Molecular Medicine.
[5] C. Josephson,et al. Determinants of Cation Permeation and Drug Sensitivity in Predicted Transmembrane Helix 9 and Adjoining Exofacial Re-entrant Loop 5 of Na+/H+ Exchanger NHE1* , 2015, Journal of Biological Chemistry.
[6] Ravi A. Desai,et al. Force transmission during adhesion-independent migration , 2015, Nature Cell Biology.
[7] Lea Kiefer,et al. RhoA Kinase (Rock) and p90 Ribosomal S6 Kinase (p90Rsk) phosphorylation of the sodium hydrogen exchanger (NHE1) is required for lysophosphatidic acid-induced transport, cytoskeletal organization and migration. , 2015, Cellular Signalling.
[8] O. Călinescu,et al. A universal mechanism for transport and regulation of CPA sodium proton exchangers , 2015, Biological chemistry.
[9] J. Pouysségur,et al. Genetic disruption of lactate/H+ symporters (MCTs) and their subunit CD147/BASIGIN sensitizes glycolytic tumor cells to phenformin. , 2015, Cancer research.
[10] R. Deberardinis,et al. MCT4 defines a glycolytic subtype of pancreatic cancer with poor prognosis and unique metabolic dependencies. , 2014, Cell reports.
[11] R. Rao,et al. An inside job: how endosomal Na+/H+ exchangers link to autism and neurological disease , 2014, Front. Cell. Neurosci..
[12] B. Sykes,et al. Structural and functional analysis of the transmembrane segment pair VI and VII of the NHE1 isoform of the Na+/H+ exchanger. , 2014, Biochemistry.
[13] S. Feliciangeli,et al. The intracellular Na(+)/H(+) exchanger NHE7 effects a Na(+)-coupled, but not K(+)-coupled proton-loading mechanism in endocytosis. , 2014, Cell reports.
[14] S. Pedersen,et al. Interactions of ion transporters and channels with cancer cell metabolism and the tumour microenvironment , 2014, Philosophical Transactions of the Royal Society B: Biological Sciences.
[15] M. Argentina,et al. Capturing Intracellular pH Dynamics by Coupling Its Molecular Mechanisms within a Fully Tractable Mathematical Model , 2014, PloS one.
[16] S. Wakabayashi,et al. Na+/H+ Exchanger 1 Is Regulated via Its Lipid-Interacting Domain, Which Functions as a Molecular Switch: A Pharmacological Approach Using Indolocarbazole Compounds , 2014, Molecular Pharmacology.
[17] B. Kragelund,et al. Structural dynamics and regulation of the mammalian SLC9A family of Na⁺/H⁺ exchangers. , 2014, Current topics in membranes.
[18] J. Deitmer,et al. Intracellular and Extracellular Carbonic Anhydrases Cooperate Non-enzymatically to Enhance Activity of Monocarboxylate Transporters* , 2013, The Journal of Biological Chemistry.
[19] Yi-Song Wang,et al. The Neuroplastin Adhesion Molecules Are Accessory Proteins That Chaperone the Monocarboxylate Transporter MCT2 to the Neuronal Cell Surface , 2013, PloS one.
[20] L. Counillon,et al. NaV1.5 Na+ channels allosterically regulate the NHE-1 exchanger and promote the activity of breast cancer cell invadopodia , 2013, Journal of Cell Science.
[21] A. Halestrap. Monocarboxylic acid transport. , 2013, Comprehensive Physiology.
[22] S. Faraone,et al. Can sodium/hydrogen exchange inhibitors be repositioned for treating attention deficit hyperactivity disorder? An in silico approach , 2013, American journal of medical genetics. Part B, Neuropsychiatric genetics : the official publication of the International Society of Psychiatric Genetics.
[23] J. Pouysségur,et al. Disrupting proton dynamics and energy metabolism for cancer therapy , 2013, Nature Reviews Cancer.
[24] S. Wakabayashi,et al. Regulation of the cardiac Na⁺/H⁺ exchanger in health and disease. , 2013, Journal of molecular and cellular cardiology.
[25] S. Wakabayashi,et al. Evidence that Na+/H+ exchanger 1 is an ATP‐binding protein , 2013, The FEBS journal.
[26] A. Schwab,et al. PDGFR&agr; signaling in the primary cilium regulates NHE1-dependent fibroblast migration via coordinated differential activity of MEK1/2–ERK1/2–p90RSK and AKT signaling pathways , 2012, Journal of Cell Science.
[27] R. T. Alexander,et al. Traditional and emerging roles for the SLC9 Na+/H+ exchangers , 2013, Pflügers Archiv - European Journal of Physiology.
[28] B. Sykes,et al. Structural and functional analysis of extracellular loop 4 of the Nhe1 isoform of the Na(+)/H(+) exchanger. , 2012, Biochimica et biophysica acta.
[29] S. Wakabayashi,et al. Na+/H+ Exchanger 1 Directly Binds to Calcineurin A and Activates Downstream NFAT Signaling, Leading to Cardiomyocyte Hypertrophy , 2012, Molecular and Cellular Biology.
[30] Karl J. Dykema,et al. Genome-wide RNA interference analysis of renal carcinoma survival regulators identifies MCT4 as a Warburg effect metabolic target , 2012, The Journal of pathology.
[31] P. Cozzone,et al. In vivo pH in metabolic‐defective Ras‐transformed fibroblast tumors: Key role of the monocarboxylate transporter, MCT4, for inducing an alkaline intracellular pH , 2012, International journal of cancer.
[32] L. Bunch,et al. Physiology, pharmacology and pathophysiology of the pH regulatory transport proteins NHE1 and NBCn1: similarities, differences, and implications for cancer therapy. , 2012, Current pharmaceutical design.
[33] M. Casal,et al. Role of monocarboxylate transporters in human cancers: state of the art , 2012, Journal of Bioenergetics and Biomembranes.
[34] A. Halestrap. The monocarboxylate transporter family—Structure and functional characterization , 2012, IUBMB Life - A Journal of the International Union of Biochemistry and Molecular Biology.
[35] D. Larson,et al. Cortactin phosphorylation regulates cell invasion through a pH-dependent pathway , 2011, The Journal of cell biology.
[36] M. V. Vander Heiden,et al. Aerobic glycolysis: meeting the metabolic requirements of cell proliferation. , 2011, Annual review of cell and developmental biology.
[37] J. Pouysségur,et al. CD147 subunit of lactate/H+ symporters MCT1 and hypoxia-inducible MCT4 is critical for energetics and growth of glycolytic tumors , 2011, Proceedings of the National Academy of Sciences.
[38] Matthew P. Jacobson,et al. Dysregulated pH: a perfect storm for cancer progression , 2011, Nature Reviews Cancer.
[39] Ann-Beth Nørholm,et al. The intracellular distal tail of the Na+/H+ exchanger NHE1 is intrinsically disordered: implications for NHE1 trafficking. , 2011, Biochemistry.
[40] Albrecht Schwab,et al. Intracellular pH gradients in migrating cells. , 2011, American journal of physiology. Cell physiology.
[41] W. Kühlbrandt,et al. Structure of the archaeal Na/H antiporter NhaP1 and functional role of transmembrane helix 1 , 2010 .
[42] Daniel J. Muller,et al. Hydrostatic pressure and the actomyosin cortex drive mitotic cell rounding , 2011, Nature.
[43] J. Voss,et al. Structural Modeling and Electron Paramagnetic Resonance Spectroscopy of the Human Na+/H+ Exchanger Isoform 1, NHE1* , 2010, The Journal of Biological Chemistry.
[44] B. Sykes,et al. Structural and Functional Analysis of Transmembrane Segment VI of the NHE1 Isoform of the Na+/H+ Exchanger* , 2010, The Journal of Biological Chemistry.
[45] S. Wakabayashi,et al. Novel Phorbol Ester-binding Motif Mediates Hormonal Activation of Na+/H+ Exchanger* , 2010, The Journal of Biological Chemistry.
[46] A. Paradiso,et al. NHE1 promotes invadopodial ECM proteolysis through acidification of the peri‐invadopodial space , 2010, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[47] J. Deitmer,et al. Nonenzymatic Augmentation of Lactate Transport via Monocarboxylate Transporter Isoform 4 by Carbonic Anhydrase II , 2010, Journal of Membrane Biology.
[48] Sergio Grinstein,et al. Sensors and regulators of intracellular pH , 2010, Nature Reviews Molecular Cell Biology.
[49] B. Sykes,et al. Structural and functional analysis of extracellular loop 2 of the Na(+)/H(+) exchanger. , 2009, Biochimica et biophysica acta.
[50] M. Numata,et al. Regulation of Early Neurite Morphogenesis by the Na+/H+ Exchanger NHE1 , 2009, The Journal of Neuroscience.
[51] R. Sessions,et al. Studies on the DIDS-binding Site of Monocarboxylate Transporter 1 Suggest a Homology Model of the Open Conformation and a Plausible Translocation Cycle* , 2009, The Journal of Biological Chemistry.
[52] Harini Krishnamurthy,et al. Unlocking the molecular secrets of sodium-coupled transporters , 2009, Nature.
[53] N. Philp,et al. Interaction of Monocarboxylate Transporter 4 with  1 -integrin and Its Role in Cell Migration , 2022 .
[54] B. Sykes,et al. Structural and Functional Analysis of Transmembrane XI of the NHE1 Isoform of the Na+/H+ Exchanger* , 2009, Journal of Biological Chemistry.
[55] D. Hilgemann,et al. Steady-state Function of the Ubiquitous Mammalian Na/H Exchanger (NHE1) in Relation to Dimer Coupling Models with 2Na/2H Stoichiometry , 2008, The Journal of General Physiology.
[56] L. Huc,et al. Kinetic analysis of the regulation of the Na+/H+ exchanger NHE-1 by osmotic shocks. , 2008, Biochemistry.
[57] D. Barber,et al. Cofilin is a pH sensor for actin free barbed end formation: role of phosphoinositide binding , 2008, The Journal of cell biology.
[58] J. Deitmer,et al. Nonenzymatic Proton Handling by Carbonic Anhydrase II during H+-Lactate Cotransport via Monocarboxylate Transporter 1* , 2008, Journal of Biological Chemistry.
[59] L. Huc,et al. Regulation of Na+/H+ exchanger 1 allosteric balance by its localization in cholesterol‐ and caveolin‐rich membrane microdomains , 2008, Journal of cellular physiology.
[60] K. Moncoq,et al. Dimeric Structure of Human Na+/H+ Exchanger Isoform 1 Overproduced in Saccharomyces cerevisiae* , 2008, Journal of Biological Chemistry.
[61] A. Kapus,et al. Osmotic cell shrinkage activates ezrin/radixin/moesin (ERM) proteins: Activation mechanisms and physiological implications , 2007, American journal of physiology. Cell physiology.
[62] Robert J. Gillies,et al. A microenvironmental model of carcinogenesis , 2008, Nature Reviews Cancer.
[63] Nir Ben-Tal,et al. Model Structure of the Na+/H+ Exchanger 1 (NHE1) , 2007, Journal of Biological Chemistry.
[64] E. Padan,et al. High-resolution structure of a Na+/H+ antiporter dimer obtained by pulsed electron paramagnetic resonance distance measurements. , 2007, Biophysical journal.
[65] K. Hahn,et al. Positive feedback between Cdc42 activity and H+ efflux by the Na-H exchanger NHE1 for polarity of migrating cells , 2007, The Journal of cell biology.
[66] N. Philp,et al. Monocarboxylate transporter 4 regulates maturation and trafficking of CD147 to the plasma membrane in the metastatic breast cancer cell line MDA-MB-231. , 2007, Cancer research.
[67] J. Nylandsted,et al. The Na+/H+ Exchanger, NHE1, Differentially Regulates Mitogen-Activated Protein Kinase Subfamilies after Osmotic Shrinkage in Ehrlich Lettre Ascites Cells , 2007, Cellular Physiology and Biochemistry.
[68] C. Kojima,et al. Solution Structure of the Cytoplasmic Region of Na+/H+ Exchanger 1 Complexed with Essential Cofactor Calcineurin B Homologous Protein 1* , 2006, Journal of Biological Chemistry.
[69] B. Sykes,et al. Strategies for dealing with conformational sampling in structural calculations of flexible or kinked transmembrane peptides. , 2006, Biochemistry and cell biology = Biochimie et biologie cellulaire.
[70] Huaqing Zhao,et al. The H+-Linked Monocarboxylate Transporter (MCT1/SLC16A1): A Potential Therapeutic Target for High-Risk Neuroblastoma , 2006, Molecular Pharmacology.
[71] S. Wakabayashi,et al. Dimerization is crucial for the function of the Na+/H+ exchanger NHE1. , 2006, Biochemistry.
[72] B. Sykes,et al. Structural and Functional Characterization of Transmembrane Segment VII of the Na+/H+ Exchanger Isoform 1* , 2006, Journal of Biological Chemistry.
[73] S. Wakabayashi,et al. Crystal structure of CHP2 complexed with NHE1‐cytosolic region and an implication for pH regulation , 2006, The EMBO journal.
[74] A. Halestrap,et al. The Plasma Membrane Lactate Transporter MCT4, but Not MCT1, Is Up-regulated by Hypoxia through a HIF-1α-dependent Mechanism* , 2006, Journal of Biological Chemistry.
[75] S. Pedersen. The Na+/H+ exchanger NHE1 in stress-induced signal transduction: implications for cell proliferation and cell death , 2006, Pflügers Archiv.
[76] R. Sessions,et al. The role of charged residues in the transmembrane helices of monocarboxylate transporter 1 and its ancillary protein basigin in determining plasma membrane expression and catalytic activity , 2006, Molecular membrane biology.
[77] D. Meredith,et al. Basigin (CD147) Is the Target for Organomercurial Inhibition of Monocarboxylate Transporter Isoforms 1 and 4 , 2005, Journal of Biological Chemistry.
[78] Hartmut Michel,et al. Structure of a Na+/H+ antiporter and insights into mechanism of action and regulation by pH , 2005, Nature.
[79] B. Sykes,et al. Structural and Functional Characterization of Transmembrane Segment IV of the NHE1 Isoform of the Na+/H+ Exchanger* , 2005, Journal of Biological Chemistry.
[80] D. Barber,et al. A developmentally regulated Na-H exchanger in Dictyostelium discoideum is necessary for cell polarity during chemotaxis , 2005, The Journal of cell biology.
[81] B. Deuticke. Monocarboxylate transport in erythrocytes , 2005, The Journal of Membrane Biology.
[82] Saroj P. Mathupala,et al. Silencing of Monocarboxylate Transporters via Small Interfering Ribonucleic Acid Inhibits Glycolysis and Induces Cell Death in Malignant Glioma: An in Vitro Study , 2004, Neurosurgery.
[83] A. Paradiso,et al. The Na+–H+ exchanger-1 induces cytoskeletal changes involving reciprocal RhoA and Rac1 signaling, resulting in motility and invasion in MDA-MB-435 cells , 2004, Breast Cancer Research.
[84] L. Huc,et al. Alterations of intracellular pH homeostasis in apoptosis: origins and roles , 2004, Cell Death and Differentiation.
[85] M. Shigekawa,et al. Dimeric interaction between the cytoplasmic domains of the Na+/H+ exchanger NHE1 revealed by symmetrical intermolecular cross-linking and selective co-immunoprecipitation. , 2004, Biochemistry.
[86] D. Hilgemann,et al. Lipid- and mechanosensitivities of sodium/hydrogen exchangers analyzed by electrical methods. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[87] M. Kirby,et al. Aminoimidazoles as bioisosteres of acylguanidines: novel, potent, selective and orally bioavailable inhibitors of the sodium hydrogen exchanger isoform-1. , 2004, Bioorganic & medicinal chemistry letters.
[88] Jérôme J. Lacroix,et al. A mechanism for the activation of the Na/H exchanger NHE‐1 by cytoplasmic acidification and mitogens , 2004, EMBO reports.
[89] J. Noël,et al. Glutamate 346 of human Na+-H+ exchanger NHE1 is crucial for modulating both the affinity for Na+ and the interaction with amiloride derivatives. , 2003, Biochemistry.
[90] D. Barber,et al. Na-H Exchange-dependent Increase in Intracellular pH Times G2/M Entry and Transition* , 2003, Journal of Biological Chemistry.
[91] S. Iwata,et al. Structure and Mechanism of the Lactose Permease of Escherichia coli , 2003, Science.
[92] T. Muramatsu,et al. Basigin (CD147): a multifunctional transmembrane protein involved in reproduction, neural function, inflammation and tumor invasion. , 2003, Histology and histopathology.
[93] C. Kay,et al. The Na+/H+ exchanger cytoplasmic tail: structure, function, and interactions with tescalcin. , 2003, Biochemistry.
[94] B. Masereel,et al. An overview of inhibitors of Na(+)/H(+) exchanger. , 2003, European journal of medicinal chemistry.
[95] M. Shigekawa,et al. Mutations of Arg440 and Gly455/Gly456 Oppositely Change pH Sensing of Na+/H+ Exchanger 1* , 2003, The Journal of Biological Chemistry.
[96] R. Kinne,et al. Cell volume regulation: osmolytes, osmolyte transport, and signal transduction. , 2003, Reviews of physiology, biochemistry and pharmacology.
[97] M. Shigekawa,et al. Evidence for involvement of the putative first extracellular loop in differential volume sensitivity of the Na+/H+ exchangers NHE1 and NHE2. , 2003, Biochemistry.
[98] D. Barber,et al. Cell migration requires both ion translocation and cytoskeletal anchoring by the Na-H exchanger NHE1 , 2002, The Journal of cell biology.
[99] B. Alvarez,et al. Carbonic Anhydrase II Binds to and Enhances Activity of the Na+/H+ Exchanger* , 2002, The Journal of Biological Chemistry.
[100] Hiromi Nomura,et al. Structural changes in the calcium pump accompanying the dissociation of calcium , 2002, Nature.
[101] U. Rodeck,et al. Regulation of intracellular pH in human melanoma: potential therapeutic implications. , 2002, Molecular cancer therapeutics.
[102] R. Dutzler,et al. X-ray structure of a ClC chloride channel at 3.0 Å reveals the molecular basis of anion selectivity , 2002, Nature.
[103] J. Orlowski,et al. Identification of Sites in the Second Exomembrane Loop and Ninth Transmembrane Helix of the Mammalian Na+/H+ Exchanger Important for Drug Recognition and Cation Translocation* , 2001, The Journal of Biological Chemistry.
[104] M. Lazdunski,et al. Exploration of the pore structure of a peptide‐gated Na+ channel , 2001, The EMBO journal.
[105] N. Philp,et al. Mouse MCT3 gene is expressed preferentially in retinal pigment and choroid plexus epithelia. , 2001, American journal of physiology. Cell physiology.
[106] J. Pouysségur,et al. pHi, aerobic glycolysis and vascular endothelial growth factor in tumour growth. , 2001, Novartis Foundation symposium.
[107] D. Meredith,et al. Characterisation of human monocarboxylate transporter 4 substantiates its role in lactic acid efflux from skeletal muscle , 2000, The Journal of physiology.
[108] D. Barber,et al. Direct binding of the Na--H exchanger NHE1 to ERM proteins regulates the cortical cytoskeleton and cell shape independently of H(+) translocation. , 2000, Molecular cell.
[109] S. Bröer,et al. The low-affinity monocarboxylate transporter MCT4 is adapted to the export of lactate in highly glycolytic cells. , 2000, The Biochemical journal.
[110] H. White,et al. Design of a trial evaluating myocardial cell protection with cariporide, an inhibitor of the transmembrane sodium-hydrogen exchanger: the Guard During Ischemia Against Necrosis (GUARDIAN) trial , 2000, Current Controlled Trials in Cardiovascular Medicine.
[111] A. Barclay,et al. CD147 is tightly associated with lactate transporters MCT1 and MCT4 and facilitates their cell surface expression , 2000, The EMBO journal.
[112] M. Shigekawa,et al. A Novel Topology Model of the Human Na+/H+ Exchanger Isoform 1* , 2000, The Journal of Biological Chemistry.
[113] R. Cantor. Solute modulation of conformational equilibria in intrinsic membrane proteins: apparent "cooperativity" without binding. , 1999, Biophysical journal.
[114] S. Bröer,et al. Helix 8 and helix 10 are involved in substrate recognition in the rat monocarboxylate transporter MCT1. , 1999, Biochemistry.
[115] D. Barber,et al. Na-H exchange acts downstream of RhoA to regulate integrin-induced cell adhesion and spreading. , 1998, Molecular biology of the cell.
[116] Sergio Grinstein,et al. Topological analysis of NHE1, the ubiquitous Na+/H+exchanger using chymotryptic cleavage. , 1998, American journal of physiology. Cell physiology.
[117] B. Chait,et al. The structure of the potassium channel: molecular basis of K+ conduction and selectivity. , 1998, Science.
[118] S. Grinstein,et al. Induction of Tyrosine Phosphorylation and Na+/H+Exchanger Activation during Shrinkage of Human Neutrophils* , 1997, The Journal of Biological Chemistry.
[119] J. Pouysségur,et al. Random mutagenesis reveals a novel site involved in inhibitor interaction within the fourth transmembrane segment of the Na+/H+ exchanger-1. , 1997, Biochemistry.
[120] S. Grinstein,et al. Responsiveness of mutants of NHE1 isoform of Na+/H+ antiport to osmotic stress. , 1995, The American journal of physiology.
[121] L. Fliegel,et al. The carboxyl-terminal region of the Na+/H+ exchanger interacts with mammalian heat shock protein. , 1995, Biochemistry.
[122] A. Halestrap,et al. N-terminal protein sequence analysis of the rabbit erythrocyte lactate transporter suggests identity with the cloned monocarboxylate transport protein MCT1. , 1994, The Biochemical journal.
[123] J. Pouysségur,et al. The Na+/H+ exchanger NHE-1 possesses N- and O-linked glycosylation restricted to the first N-terminal extracellular domain. , 1994, Biochemistry.
[124] Richard G. W. Anderson,et al. Molecular characterization of a membrane transporter for lactate, pyruvate, and other monocarboxylates: Implications for the Cori cycle , 1994, Cell.
[125] D. Engelman,et al. A dimerization motif for transmembrane α–helices , 1994, Nature Structural Biology.
[126] J. Pouysségur,et al. Evidence that Na+/H+ exchanger isoforms NHE1 and NHE3 exist as stable dimers in membranes with a high degree of specificity for homodimers. , 1994, The Journal of biological chemistry.
[127] J. Pouysségur,et al. A point mutation of the Na+/H+ exchanger gene (NHE1) and amplification of the mutated allele confer amiloride resistance upon chronic acidosis. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[128] A. Halestrap,et al. Transport of lactate and other monocarboxylates across mammalian plasma membranes. , 1993, The American journal of physiology.
[129] J. Kinsella,et al. Sodium dependence of the Na(+)-H+ exchanger in the pre-steady state. Implications for the exchange mechanism. , 1993, The Journal of biological chemistry.
[130] S. Grinstein,et al. Activation of the Na+/H+ antiporter during cell volume regulation. Evidence for a phosphorylation-independent mechanism. , 1992, The Journal of biological chemistry.
[131] I. Mellman. The importance of being acid: the role of acidification in intracellular membrane traffic. , 1992, The Journal of experimental biology.
[132] A. Karlin,et al. Acetylcholine receptor channel structure probed in cysteine-substitution mutants. , 1992, Science.
[133] J. Kinsella,et al. Proton dependence of the partial reactions of the sodium-proton exchanger in renal brush border membranes. , 1992, The Journal of biological chemistry.
[134] D. Engelman,et al. Glycophorin A dimerization is driven by specific interactions between transmembrane alpha-helices. , 1992, The Journal of biological chemistry.
[135] C. Sardet,et al. The Na+/H+ antiporter cytoplasmic domain mediates growth factor signals and controls "H(+)-sensing". , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[136] C. Sardet,et al. Growth factors induce phosphorylation of the Na+/H+ antiporter, glycoprotein of 110 kD. , 1990, Science.
[137] E. Cragoe,et al. Cation transport probes: the amiloride series. , 1990, Methods in enzymology.
[138] S. Grinstein,et al. Impaired cell volume regulation in Na(+)-H+ exchange-deficient mutants. , 1989, The American journal of physiology.
[139] J. Kinsella,et al. Transient state kinetic evidence for an oligomer in the mechanism of Na+-H+ exchange. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[140] C. Sardet,et al. Molecular cloning, primary structure, and expression of the human growth factor-activatable Na+ H+ , 1989, Cell.
[141] S. Grinstein. Na+H+ Exchange , 1988 .
[142] L. Sauer,et al. Regulation of lactate production and utilization in rat tumors in vivo. , 1985, The Journal of biological chemistry.
[143] J. Pouysségur,et al. Growth factors activate the Na+/H+ antiporter in quiescent fibroblasts by increasing its affinity for intracellular H+. , 1984, The Journal of biological chemistry.
[144] P. Aronson,et al. Modifier role of internal H+ in activating the Na+–H+ exchanger in renal microvillus membrane vesicles , 1982, Nature.
[145] D. Benos,et al. Amiloride: a molecular probe of sodium transport in tissues and cells. , 1982, The American journal of physiology.
[146] R. Christen,et al. Na+ movements and their oscillations during fertilization and the cell cycle in sea urchin eggs. , 1981, Experimental cell research.
[147] R. Denton,et al. Specific inhibition of pyruvate transport in rat liver mitochondria and human erythrocytes by α-cyano-4-hydroxycinnamate (Short Communication) , 1974 .