Shedding light on molecular and cellular consequences of NCX 1 palmitoylation
暂无分享,去创建一个
[1] Nazim Madhavji,et al. Organization , 2020, WER.
[2] H. Taegtmeyer,et al. Intracellular sodium elevation reprograms cardiac metabolism , 2020, Nature Communications.
[3] M. Shattock,et al. Control of protein palmitoylation by regulating substrate recruitment to a zDHHC-protein acyltransferase , 2020, Communications Biology.
[4] A. Robertson,et al. Dynamic Palmitoylation of the Sodium-Calcium Exchanger Modulates Its Structure, Affinity for Lipid-Ordered Domains, and Inhibition by XIP , 2020, Cell reports.
[5] Siewert J Marrink,et al. Molecular mechanism for bidirectional regulation of CD44 for lipid raft affiliation by palmitoylations and PIP2 , 2020, PLoS Comput. Biol..
[6] B. Dickinson,et al. Endothelial Palmitoylation Cycling Coordinates Vessel Remodeling in Peripheral Artery Disease , 2020, Circulation research.
[7] Paul M. Jenkins,et al. Palmitoylation: A Fatty Regulator of Myocardial Electrophysiology , 2020, Frontiers in Physiology.
[8] C. Sanders,et al. Peripheral myelin protein 22 preferentially partitions into ordered phase membrane domains , 2020, Proceedings of the National Academy of Sciences.
[9] W. Fuller,et al. Regulation of NCX1 by palmitoylation. , 2020, Cell calcium.
[10] W. Fuller,et al. Therapeutic targeting of protein S-acylation for the treatment of disease. , 2019, Biochemical Society transactions.
[11] Brent R. Martin,et al. A ZDHHC5-GOLGA7 Protein Acyltransferase Complex Promotes Nonapoptotic Cell Death. , 2019, Cell chemical biology.
[12] M. Fukata,et al. ABHD10 is an S-depalmitoylase affecting redox homeostasis through peroxiredoxin-5 , 2019, Nature chemical biology.
[13] K. Levental,et al. Cell-derived plasma membrane vesicles are permeable to hydrophilic macromolecules , 2019, bioRxiv.
[14] M. Collins,et al. S‐acylated Golga7b stabilises DHHC5 at the plasma membrane to regulate cell adhesion , 2019, EMBO reports.
[15] Wanchun Tang,et al. Dynamic palmitoylation regulates trafficking of K channel interacting protein 2 (KChIP2) across multiple subcellular compartments in cardiac myocytes. , 2019, Journal of molecular and cellular cardiology.
[16] W. Tan,et al. Generating Giant Membrane Vesicles from Live Cells with Preserved Cellular Properties , 2019, Research.
[17] D. Toomre,et al. Acylation – A New Means to Control Traffic Through the Golgi , 2019, Front. Cell Dev. Biol..
[18] Francisco J. Alvarado,et al. A calcium transport mechanism for atrial fibrillation in Tbx5-mutant mice , 2019, eLife.
[19] P. Strzyz. Sorting it out at the Golgi , 2018, Nature reviews. Molecular cell biology.
[20] J. Rothman,et al. S-Palmitoylation Sorts Membrane Cargo for Anterograde Transport in the Golgi. , 2018, Developmental cell.
[21] D. Aksentijević,et al. Is there a causal link between intracellular Na elevation and metabolic remodelling in cardiac hypertrophy? , 2018, Biochemical Society transactions.
[22] A. Gorfe,et al. Protein Partitioning into Ordered Membrane Domains: Insights from Simulations. , 2018, Biophysical journal.
[23] W. Fuller,et al. Greasing the wheels or a spanner in the works? Regulation of the cardiac sodium pump by palmitoylation , 2018, Critical reviews in biochemistry and molecular biology.
[24] F. G. van der Goot,et al. Active and dynamic mitochondrial S-depalmitoylation revealed by targeted fluorescent probes , 2018, Nature Communications.
[25] A. Banerjee,et al. Fatty acyl recognition and transfer by an integral membrane S-acyltransferase , 2018, Science.
[26] Sang Joon Won,et al. Protein depalmitoylases , 2018, Critical reviews in biochemistry and molecular biology.
[27] A. Gorfe,et al. Structural determinants and functional consequences of protein affinity for membrane rafts , 2017, Nature Communications.
[28] V. Hatzimanikatis,et al. Author response: Identification and dynamics of the human ZDHHC16-ZDHHC6 palmitoylation cascade , 2017 .
[29] Edward W. Tate,et al. Dynamic Protein Acylation: New Substrates, Mechanisms, and Drug Targets. , 2017, Trends in biochemical sciences.
[30] W. Fuller,et al. Understanding the rules governing NCX1 palmitoylation , 2017, Channels.
[31] W. Fuller,et al. An amphipathic α-helix directs palmitoylation of the large intracellular loop of the sodium/calcium exchanger , 2017, The Journal of Biological Chemistry.
[32] D. Hilgemann,et al. Profound regulation of Na/K pump activity by transient elevations of cytoplasmic calcium in murine cardiac myocytes , 2016, eLife.
[33] J. Stamler,et al. S-Palmitoylation of a Novel Site in the β2-Adrenergic Receptor Associated with a Novel Intracellular Itinerary* , 2016, The Journal of Biological Chemistry.
[34] A. Hudmon,et al. Cardiac sodium channel palmitoylation regulates channel availability and myocyte excitability with implications for arrhythmia generation , 2016, Nature Communications.
[35] D. Hilgemann,et al. S-palmitoylation and the regulation of NCX1 , 2016, Channels.
[36] E. Conibear,et al. ABHD17 proteins are novel protein depalmitoylases that regulate N-Ras palmitate turnover and subcellular localization , 2015, eLife.
[37] S. Goff,et al. Palmitoyl acyltransferase Aph2 in cardiac function and the development of cardiomyopathy , 2015, Proceedings of the National Academy of Sciences.
[38] Brendan Santyr,et al. Activity-regulated trafficking of the palmitoyl-acyl transferase DHHC5 , 2015, Nature Communications.
[39] L. Chamberlain,et al. Identification of a Novel Sequence Motif Recognized by the Ankyrin Repeat Domain of zDHHC17/13 S-Acyltransferases , 2015, The Journal of Biological Chemistry.
[40] D. Hilgemann,et al. Palmitoylation of the Na/Ca exchanger cytoplasmic loop controls its inactivation and internalization during stress signaling , 2015, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[41] M. Tinti,et al. Identification of Caveolar Resident Proteins in Ventricular Myocytes Using a Quantitative Proteomic Approach: Dynamic Changes in Caveolar Composition Following Adrenoceptor Activation* , 2015, Molecular & Cellular Proteomics.
[42] Christopher Grefen,et al. The Golgi S-acylation machinery comprises zDHHC enzymes with major differences in substrate affinity and S-acylation activity , 2014, Molecular biology of the cell.
[43] M. Shipston,et al. Substrate recognition by the cell surface palmitoyl transferase DHHC5 , 2014, Proceedings of the National Academy of Sciences.
[44] M. Shattock,et al. Cardiac hypertrophy in mice expressing unphosphorylatable phospholemman , 2014, Cardiovascular research.
[45] P. Bastiaens,et al. The autodepalmitoylating activity of APT maintains the spatial organization of palmitoylated membrane proteins. , 2014, Biophysical journal.
[46] Guillermo A. Gomez,et al. 2-Bromopalmitate Reduces Protein Deacylation by Inhibition of Acyl-Protein Thioesterase Enzymatic Activities , 2013, PloS one.
[47] Brent R. Martin,et al. Profiling targets of the irreversible palmitoylation inhibitor 2-bromopalmitate. , 2013, ACS chemical biology.
[48] M. Fukata,et al. 2-Bromopalmitate analogues as activity-based probes to explore palmitoyl acyltransferases. , 2013, Journal of the American Chemical Society.
[49] A. Mukherjee,et al. Dynamic Palmitoylation Links Cytosol-Membrane Shuttling of Acyl-protein Thioesterase-1 and Acyl-protein Thioesterase-2 with That of Proto-oncogene H-Ras Product and Growth-associated Protein-43* , 2013, The Journal of Biological Chemistry.
[50] M. Shattock,et al. Regulation of the cardiac Na(+) pump by palmitoylation of its catalytic and regulatory subunits. , 2013, Biochemical Society transactions.
[51] M. Shattock,et al. Regulation of the cardiac sodium pump , 2012, Cellular and Molecular Life Sciences.
[52] D. Bers,et al. Na(+)/K)+)-ATPase α2-isoform preferentially modulates Ca2(+) transients and sarcoplasmic reticulum Ca2(+) release in cardiac myocytes. , 2012, Cardiovascular research.
[53] A. Gorfe,et al. Organization, dynamics, and segregation of Ras nanoclusters in membrane domains , 2012, Proceedings of the National Academy of Sciences.
[54] P. Schwille,et al. Elucidating membrane structure and protein behavior using giant plasma membrane vesicles , 2012, Nature Protocols.
[55] T. Wieland,et al. Enhanced Sarcoplasmic Reticulum Ca2+ Leak and Increased Na+-Ca2+ Exchanger Function Underlie Delayed Afterdepolarizations in Patients With Chronic Atrial Fibrillation , 2012, Circulation.
[56] M. Linder,et al. DHHC Protein S-Acyltransferases Use Similar Ping-Pong Kinetic Mechanisms but Display Different Acyl-CoA Specificities* , 2012, The Journal of Biological Chemistry.
[57] M. Shattock,et al. The Inhibitory Effect of Phospholemman on the Sodium Pump Requires Its Palmitoylation* , 2011, The Journal of Biological Chemistry.
[58] K. Simons,et al. Raft domains of variable properties and compositions in plasma membrane vesicles , 2011, Proceedings of the National Academy of Sciences.
[59] Robert D. Kirkton,et al. Engineering biosynthetic excitable tissues from unexcitable cells for electrophysiological and cell therapy studies. , 2011, Nature communications.
[60] Kenneth D. Philipson,et al. Ca2+-dependent structural rearrangements within Na+–Ca2+ exchanger dimers , 2011, Proceedings of the National Academy of Sciences.
[61] D. Lingwood,et al. Palmitoylation regulates raft affinity for the majority of integral raft proteins , 2010, Proceedings of the National Academy of Sciences.
[62] Stefan Wetzel,et al. Small-molecule inhibition of APT1 affects Ras localization and signaling. , 2010, Nature chemical biology.
[63] P. Bastiaens,et al. The Palmitoylation Machinery Is a Spatially Organizing System for Peripheral Membrane Proteins , 2010, Cell.
[64] B. O’Rourke,et al. Elevated Cytosolic Na+ Increases Mitochondrial Formation of Reactive Oxygen Species in Failing Cardiac Myocytes , 2010, Circulation.
[65] Edward G Lakatta,et al. A coupled SYSTEM of intracellular Ca2+ clocks and surface membrane voltage clocks controls the timekeeping mechanism of the heart's pacemaker. , 2010, Circulation research.
[66] M. Fukata,et al. Protein palmitoylation in neuronal development and synaptic plasticity , 2010, Nature Reviews Neuroscience.
[67] D. Nicoll,et al. Roles of Two Ca2+-binding Domains in Regulation of the Cardiac Na+-Ca2+ Exchanger* , 2009, The Journal of Biological Chemistry.
[68] M. Greenberg,et al. A functional screen implicates microRNA-138-dependent regulation of the depalmitoylation enzyme APT1 in dendritic spine morphogenesis , 2009, Nature Cell Biology.
[69] F. G. van der Goot,et al. Palmitoylation of membrane proteins (Review) , 2009, Molecular membrane biology.
[70] B. O’Rourke,et al. Enhancing Mitochondrial Ca2+ Uptake in Myocytes From Failing Hearts Restores Energy Supply and Demand Matching , 2008, Circulation research.
[71] D. Nicoll,et al. Intermolecular cross-linking of Na+-Ca2+ exchanger proteins: evidence for dimer formation. , 2008, Biochemistry.
[72] B. O’Rourke,et al. Excitation-contraction coupling and mitochondrial energetics , 2007, Basic Research in Cardiology.
[73] Raphael Zidovetzki,et al. Use of cyclodextrins to manipulate plasma membrane cholesterol content: evidence, misconceptions and control strategies. , 2007, Biochimica et biophysica acta.
[74] J. Abramson,et al. What We Know about the Structure of NCX1 and How It Relates to Its Function , 2007, Annals of the New York Academy of Sciences.
[75] D. Bredt,et al. Identification of Golgi-localized acyl transferases that palmitoylate and regulate endothelial nitric oxide synthase , 2006, The Journal of cell biology.
[76] Brian O'Rourke,et al. Elevated Cytosolic Na+ Decreases Mitochondrial Ca2+ Uptake During Excitation–Contraction Coupling and Impairs Energetic Adaptation in Cardiac Myocytes , 2006, Circulation research.
[77] R. Deschenes,et al. Thematic review series: Lipid Posttranslational Modifications. Protein palmitoylation by a family of DHHC protein S-acyltransferases Published, JLR Papers in Press, April 1, 2006. , 2006, Journal of Lipid Research.
[78] A. Kihara,et al. Intracellular localization and tissue-specific distribution of human and yeast DHHC cysteine-rich domain-containing proteins. , 2006, Biochimica et biophysica acta.
[79] R. Deschenes,et al. DHHC9 and GCP16 Constitute a Human Protein Fatty Acyltransferase with Specificity for H- and N-Ras* , 2005, Journal of Biological Chemistry.
[80] J. Lingrel,et al. The α1 Isoform of Na,K-ATPase Regulates Cardiac Contractility and Functionally Interacts and Co-localizes with the Na/Ca Exchanger in Heart* , 2004, Journal of Biological Chemistry.
[81] Claire-Anne Gutekunst,et al. Huntingtin-Interacting Protein HIP14 Is a Palmitoyl Transferase Involved in Palmitoylation and Trafficking of Multiple Neuronal Proteins , 2004, Neuron.
[82] Hillel Adesnik,et al. Identification of PSD-95 Palmitoylating Enzymes , 2004, Neuron.
[83] Charles D Smith,et al. Huntingtin interacting protein 14 is an oncogenic human protein: palmitoyl acyltransferase , 2004, Oncogene.
[84] Thomas Kazen. Purification , 2004, Nature Biotechnology.
[85] B. O’Rourke,et al. Cardiac Sodium-Calcium Exchanger Is Regulated by Allosteric Calcium and Exchanger Inhibitory Peptide at Distinct Sites , 2004, Circulation research.
[86] I. Komuro,et al. Role of Na+-Ca2+ exchanger in myocardial ischemia/reperfusion injury: evaluation using a heterozygous Na+-Ca2+ exchanger knockout mouse model. , 2004, Biochemical and biophysical research communications.
[87] R. Deschenes,et al. Identification of a Ras Palmitoyltransferase in Saccharomyces cerevisiae * , 2002, The Journal of Biological Chemistry.
[88] Linyi Chen,et al. The yeast DHHC cysteine-rich domain protein Akr1p is a palmitoyl transferase , 2002, The Journal of cell biology.
[89] A. Gilman,et al. Characterization of Saccharomyces cerevisiaeAcyl-protein Thioesterase 1, the Enzyme Responsible for G Protein α Subunit Deacylation in Vivo * , 2002, The Journal of Biological Chemistry.
[90] K. Takimoto,et al. Palmitoylation of KChIP Splicing Variants Is Required for Efficient Cell Surface Expression of Kv4.3 Channels* , 2002, The Journal of Biological Chemistry.
[91] Donald M Bers,et al. Intracellular Na+ Concentration Is Elevated in Heart Failure But Na/K Pump Function Is Unchanged , 2002, Circulation.
[92] R. Hammer,et al. Disruption of PPT1 or PPT2 causes neuronal ceroid lipofuscinosis in knockout mice , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[93] D M Bers,et al. Calcium fluxes involved in control of cardiac myocyte contraction. , 2000, Circulation research.
[94] T. Michel,et al. Depalmitoylation of Endothelial Nitric-oxide Synthase by Acyl-protein Thioesterase 1 Is Potentiated by Ca2+-Calmodulin* , 1999, The Journal of Biological Chemistry.
[95] R. Walsh,et al. Identification of a specific role for the Na,K-ATPase alpha 2 isoform as a regulator of calcium in the heart. , 1999, Molecular cell.
[96] A. Chien,et al. Membrane Targeting of L-type Calcium Channels , 1998, The Journal of Biological Chemistry.
[97] A. Gilman,et al. A Cytoplasmic Acyl-Protein Thioesterase That Removes Palmitate from G Protein α Subunits and p21RAS * , 1998, The Journal of Biological Chemistry.
[98] S. Hofmann,et al. Molecular Cloning and Expression of Palmitoyl-protein Thioesterase 2 (PPT2), a Homolog of Lysosomal Palmitoyl-protein Thioesterase with a Distinct Substrate Specificity* , 1997, The Journal of Biological Chemistry.
[99] S. Matsuoka,et al. Regulation of the Cardiac Na+-Ca2+ Exchanger by the Endogenous XIP Region , 1997, The Journal of general physiology.
[100] E. Ríos,et al. Identification of Palmitoylation Sites within the L-type Calcium Channel β2a Subunit and Effects on Channel Function* , 1996, The Journal of Biological Chemistry.
[101] G Arnold,et al. Evidence for functional relevance of an enhanced expression of the Na(+)-Ca2+ exchanger in failing human myocardium. , 1996, Circulation.
[102] H. Sugimoto,et al. Purification, cDNA Cloning, and Regulation of Lysophospholipase from Rat Liver (*) , 1996, The Journal of Biological Chemistry.
[103] S. Hofmann,et al. Purification and properties of a palmitoyl-protein thioesterase that cleaves palmitate from H-Ras. , 1993, The Journal of biological chemistry.
[104] S. Matsuoka,et al. Steady-state and dynamic properties of cardiac sodium-calcium exchange. Secondary modulation by cytoplasmic calcium and ATP , 1992, The Journal of general physiology.
[105] G. Nagel,et al. Steady-state and dynamic properties of cardiac sodium-calcium exchange. Sodium-dependent inactivation , 1992, The Journal of general physiology.
[106] J. Weiss,et al. Identification of a peptide inhibitor of the cardiac sarcolemmal Na(+)-Ca2+ exchanger. , 1991, The Journal of biological chemistry.
[107] Akinori Noma,et al. Na-Ca exchange current in mammalian heart cells , 1986, Nature.
[108] P. K. Tubbs,et al. Specific inhibition of mitochondrial fatty acid oxidation by 2-bromopalmitate and its coenzyme A and carnitine esters. , 1972, The Biochemical journal.
[109] S. Veatch,et al. Giant Plasma Membrane Vesicles: An Experimental Tool for Probing the Effects of Drugs and Other Conditions on Membrane Domain Stability. , 2018, Methods in enzymology.
[110] R. Deschenes,et al. Palmitoylation: policing protein stability and traffic , 2007, Nature Reviews Molecular Cell Biology.
[111] C. Keller,et al. The gamma2 subunit of GABA(A) receptors is a substrate for palmitoylation by GODZ. , 2004, The Journal of neuroscience : the official journal of the Society for Neuroscience.