Interactions between metabolism and intracellular distribution of cholesterol and sphingomyelin.
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[1] H. Bussey,et al. A new family of yeast genes implicated in ergosterol synthesis is related to the human oxysterol binding protein , 1994, Yeast.
[2] J. Goldstein,et al. The SREBP Pathway: Regulation of Cholesterol Metabolism by Proteolysis of a Membrane-Bound Transcription Factor , 1997, Cell.
[3] K. G. Coleman,et al. Niemann-Pick C1 disease gene: homology to mediators of cholesterol homeostasis. , 1997, Science.
[4] V. Bankaitis,et al. Essential role for diacylglycerol in protein transport from the yeast Golgi complex , 1997, nature.
[5] L. Liscum,et al. Evidence for a Cholesterol Transport Pathway from Lysosomes to Endoplasmic Reticulum That Is Independent of the Plasma Membrane* , 1998, The Journal of Biological Chemistry.
[6] R. Parton,et al. A lipid associated with the antiphospholipid syndrome regulates endosome structure and function , 1998, Nature.
[7] R. D. Simoni,et al. Molecular Dissection of the Role of the Membrane Domain in the Regulated Degradation of 3-Hydroxy-3-methylglutaryl Coenzyme A Reductase (*) , 1995, The Journal of Biological Chemistry.
[8] C. Fielding,et al. Plasma membrane caveolae mediate the efflux of cellular free cholesterol. , 1995, Biochemistry.
[9] K. Johnson,et al. In vivo formation of 25-hydroxycholesterol from endogenous cholesterol after a single meal, dietary cholesterol challenge. , 1994, Journal of lipid research.
[10] E. B. Smith,et al. The relationship between plasma and tissue lipids in human atherosclerosis. , 1974, Advances in lipid research.
[11] C. Machamer,et al. Ceramide Accumulation Uncovers a Cycling Pathway for the cis-Golgi Network Marker, Infectious Bronchitis Virus M Protein , 1997, The Journal of cell biology.
[12] Richard G. W. Anderson,et al. A Role for Caveolin in Transport of Cholesterol from Endoplasmic Reticulum to Plasma Membrane* , 1996, The Journal of Biological Chemistry.
[13] R. Pagano,et al. Inhibition of glycoprotein traffic through the secretory pathway by ceramide. , 1993, The Journal of biological chemistry.
[14] X. Hua,et al. Sterol Resistance in CHO Cells Traced to Point Mutation in SREBP Cleavage–Activating Protein , 1996, Cell.
[15] N. Ridgway,et al. Inhibition of phosphorylation of the oxysterol binding protein by brefeldin A. , 1998, Biochimica et biophysica acta.
[16] M. Evans,et al. Loss of transcriptional activation of three sterol-regulated genes in mutant hamster cells , 1993, Molecular and cellular biology.
[17] E. P. Kennedy,et al. Cellular and enzymic synthesis of sphingomyelin. , 1982, Biochemistry.
[18] J. Slotte,et al. Sphingosine inhibits sphingomyelinase-induced cholesteryl ester formation in cultured fibroblasts. , 1993, Biochimica et biophysica acta.
[19] N. Ridgway,et al. Altered regulation of cholesterol and cholesteryl ester synthesis in Chinese-hamster ovary cells overexpressing the oxysterol-binding protein is dependent on the pleckstrin homology domain. , 1997, The Biochemical journal.
[20] R. Parton,et al. Detergent-insoluble glycolipid microdomains in lymphocytes in the absence of caveolae. , 1994, The Journal of biological chemistry.
[21] R. Kronqvist,et al. The rate of sphingomyelin synthesis de novo is influenced by the level of cholesterol in cultured human skin fibroblasts. , 1998, The Biochemical journal.
[22] Deborah A. Brown,et al. Cholesterol and Sphingolipid Enhance the Triton X-100 Insolubility of Glycosylphosphatidylinositol-anchored Proteins by Promoting the Formation of Detergent-insoluble Ordered Membrane Domains* , 1998, The Journal of Biological Chemistry.
[23] I. Björkhem,et al. Elimination of Cholesterol in Macrophages and Endothelial Cells by the Sterol 27-Hydroxylase Mechanism , 1997, The Journal of Biological Chemistry.
[24] S. Chatterjee. Neutral sphingomyelinase action stimulates signal transduction of tumor necrosis factor-alpha in the synthesis of cholesteryl esters in human fibroblasts. , 1994, The Journal of biological chemistry.
[25] D. Vance,et al. Sphingolipid Biosynthesis de Novo by Rat Hepatocytes in Culture. , 1995, The Journal of Biological Chemistry.
[26] R. G. Anderson. The caveolae membrane system. , 1998, Annual review of biochemistry.
[27] N. Ridgway,et al. Cholesterol regulates oxysterol binding protein (OSBP) phosphorylation and Golgi localization in Chinese hamster ovary cells: correlation with stimulation of sphingomyelin synthesis by 25-hydroxycholesterol. , 1998, The Biochemical journal.
[28] D. Mangelsdorf,et al. Activation of the orphan nuclear receptor steroidogenic factor 1 by oxysterols. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[29] R. Bittman,et al. Interaction of cholesterol with sphingomyelin in monolayers and vesicles. , 1994, Biochemistry.
[30] P. Dawson,et al. Translocation of oxysterol binding protein to Golgi apparatus triggered by ligand binding , 1992, The Journal of cell biology.
[31] Richard G. W. Anderson,et al. Cholesterol Depletion of Caveolae Causes Hyperactivation of Extracellular Signal-related Kinase (ERK)* , 1998, The Journal of Biological Chemistry.
[32] K. Williams,et al. Lipoprotein lipase and sphingomyelinase synergistically enhance the association of atherogenic lipoproteins with smooth muscle cells and extracellular matrix. A possible mechanism for low density lipoprotein and lipoprotein(a) retention and macrophage foam cell formation. , 1993, The Journal of biological chemistry.
[33] P. Elias,et al. Parallel regulation of sterol regulatory element binding protein-2 and the enzymes of cholesterol and fatty acid synthesis but not ceramide synthesis in cultured human keratinocytes and murine epidermis. , 1998, Journal of lipid research.
[34] S. Gatt,et al. Sphingomyelin suppresses the binding and utilization of low density lipoproteins by skin fibroblasts. , 1980, The Journal of biological chemistry.
[35] N. Ridgway. 25-Hydroxycholesterol stimulates sphingomyelin synthesis in Chinese hamster ovary cells. , 1995, Journal of lipid research.
[36] R. Rousson,et al. Free sphingoid bases in tissues from patients with type C Niemann-Pick disease and other lysosomal storage disorders. , 1994, Biochimica et biophysica acta.
[37] F. Maxfield,et al. Sphingomyelinase Treatment Induces ATP-independent Endocytosis , 1998, The Journal of cell biology.
[38] D. Sillence,et al. The subcellular sites of sphingomyelin synthesis in BHK cells. , 1997, Biochimica et biophysica acta.
[39] D. Hoessli,et al. Effects of cholesterol depletion by cyclodextrin on the sphingolipid microdomains of the plasma membrane. , 1998, The Biochemical journal.
[40] M. Swaisgood,et al. Plasma membranes contain half the phospholipid and 90% of the cholesterol and sphingomyelin in cultured human fibroblasts. , 1989, The Journal of biological chemistry.
[41] W. Schmalix,et al. SWH1 from yeast encodes a candidate nuclear factor containing ankyrin repeats and showing homology to mammalian oxysterol-binding protein. , 1994, Biochimica et Biophysica Acta.
[42] Masashi Yamada,et al. Maternal Pumilio acts together with Nanos in germline development in Drosophila embryos , 1999, Nature Cell Biology.
[43] J M Guileyardo,et al. cDNA cloning of cholesterol 24-hydroxylase, a mediator of cholesterol homeostasis in the brain. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[44] J. Jiménez,et al. A Drosophila homologue of oxysterol binding protein (OSBP)--implications for the role of OSBP. , 1998, Biochimica et biophysica acta.
[45] M. Fang,et al. Kes1p shares homology with human oxysterol binding protein and participates in a novel regulatory pathway for yeast Golgi‐derived transport vesicle biogenesis. , 1996, The EMBO journal.
[46] P. Pentchev,et al. Differential accumulation of cholesterol in Golgi compartments of normal and Niemann-Pick type C fibroblasts incubated with LDL: a cytochemical freeze-fracture study. , 1993, Journal of lipid research.
[47] P. Oh,et al. Separation of caveolae from associated microdomains of GPI-anchored proteins , 1995, Science.
[48] D. Brown,et al. Structure and Origin of Ordered Lipid Domains in Biological Membranes , 1998, The Journal of Membrane Biology.
[49] J. Slotte,et al. Effects of sphingomyelin degradation on cell cholesterol oxidizability and steady-state distribution between the cell surface and the cell interior. , 1989, Biochimica et biophysica acta.
[50] N. Ridgway,et al. Differential Effects of Sphingomyelin Hydrolysis and Cholesterol Transport on Oxysterol-binding Protein Phosphorylation and Golgi Localization* , 1998, The Journal of Biological Chemistry.
[51] D. Russell,et al. Nuclear Orphan Receptors Control Cholesterol Catabolism , 1999, Cell.
[52] D. D. Jones,et al. An update of the enzymology and regulation of sphingomyelin metabolism. , 1990, Biochimica et biophysica acta.
[53] F. Palmer,et al. A new Zn2+-stimulated sphingomyelinase in fetal bovine serum. , 1989, The Journal of biological chemistry.
[54] A. Diehl,et al. Tumor necrosis factor-alpha stimulates the maturation of sterol regulatory element binding protein-1 in human hepatocytes through the action of neutral sphingomyelinase. , 1998, The Journal of biological chemistry.
[55] D. Needham,et al. Structure and cohesive properties of sphingomyelin/cholesterol bilayers. , 1992, Biochemistry.
[56] R. Pagano,et al. Ceramide As a Modulator of Endocytosis (*) , 1995, The Journal of Biological Chemistry.
[57] J. Albers,et al. Effect of positively charged sphingomyelin liposomes on cholesterol metabolism of cells in culture. , 1983, Atherosclerosis.
[58] T. Steck,et al. Cholesterol homeostasis. Modulation by amphiphiles. , 1994, The Journal of biological chemistry.
[59] J. Chin,et al. The Fate of Cholesterol Exiting Lysosomes* , 1997, The Journal of Biological Chemistry.
[60] B. Stieger,et al. Sphingomyelin synthesis in rat liver occurs predominantly at the cis and medial cisternae of the Golgi apparatus. , 1990, The Journal of biological chemistry.
[61] J. Slotte,et al. Cholesterol transport from plasma membranes to intracellular membranes is inhibited by 3 beta-[2-(diethylamino)ethoxy]androst-5-en-17-one. , 1994, Biochimica et biophysica acta.
[62] A. Gupta,et al. Sphingomyelinase treatment of low density lipoprotein and cultured cells results in enhanced processing of LDL which can be modulated by sphingomyelin. , 1992, Journal of lipid research.
[63] P. Oh,et al. Organized Endothelial Cell Surface Signal Transduction in Caveolae Distinct from Glycosylphosphatidylinositol-anchored Protein Microdomains* , 1997, The Journal of Biological Chemistry.
[64] R. Brown,et al. Sphingolipid organization in biomembranes: what physical studies of model membranes reveal. , 1998, Journal of cell science.
[65] Elizabeth R. Smith,et al. Differential Roles of de Novo Sphingolipid Biosynthesis and Turnover in the "Burst" of Free Sphingosine and Sphinganine, and Their 1-Phosphates and N-Acyl-Derivatives, That Occurs upon Changing the Medium of Cells in Culture (*) , 1995, The Journal of Biological Chemistry.
[66] A. Bist,et al. Caveolin mRNA levels are up-regulated by free cholesterol and down-regulated by oxysterols in fibroblast monolayers. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[67] C. Slaughter,et al. cDNA cloning and expression of oxysterol-binding protein, an oligomer with a potential leucine zipper. , 1989, The Journal of biological chemistry.
[68] Y. Hannun,et al. Sphingomyelin Synthase, a Potential Regulator of Intracellular Levels of Ceramide and Diacylglycerol during SV40 Transformation , 1998, The Journal of Biological Chemistry.
[69] R. Parton,et al. Molecular Characterization of Caveolin Association with the Golgi Complex: Identification of a Cis-Golgi Targeting Domain in the Caveolin Molecule , 1999, The Journal of cell biology.
[70] T. A. Spencer,et al. Accumulation of regulatory oxysterols, 32-oxolanosterol and 32-hydroxylanosterol in mevalonate-treated cell cultures. , 1987, The Journal of biological chemistry.
[71] N. Ridgway. Inhibition of acyl-CoA:cholesterol acyltransferase in Chinese hamster ovary (CHO) cells by short-chain ceramide and dihydroceramide. , 1995, Biochimica et biophysica acta.
[72] D. Russell,et al. cDNA Cloning of Mouse and Human Cholesterol 25-Hydroxylases, Polytopic Membrane Proteins That Synthesize a Potent Oxysterol Regulator of Lipid Metabolism* , 1998, The Journal of Biological Chemistry.
[73] P. Dawson,et al. Genetic distinction between sterol-mediated transcriptional and posttranscriptional control of 3-hydroxy-3-methylglutaryl-coenzyme A reductase. , 1991, The Journal of biological chemistry.
[74] M. Lisanti,et al. Caveolins, a Family of Scaffolding Proteins for Organizing “Preassembled Signaling Complexes” at the Plasma Membrane* , 1998, The Journal of Biological Chemistry.
[75] M. Brown,et al. Sphingomyelin depletion in cultured cells blocks proteolysis of sterol regulatory element binding proteins at site 1. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[76] S. Munro,et al. The pleckstrin homology domain of oxysterol-binding protein recognises a determinant specific to Golgi membranes , 1998, Current Biology.
[77] F. Wieland,et al. Sphingomyelin is synthesized in the cis Golgi , 1990, FEBS letters.
[78] R. Verdery,et al. Regulation of sphingomyelin long chain base synthesis in human fibroblasts in culture. Role of lipoproteins and the low density lipoprotein receptor. , 1982, The Journal of biological chemistry.
[79] I. Tabas. Free cholesterol-induced cytotoxicity a possible contributing factor to macrophage foam cell necrosis in advanced atherosclerotic lesions. , 1997, Trends in cardiovascular medicine.
[80] A. Merrill. Characterization of serine palmitoyltransferase activity in Chinese hamster ovary cells. , 1983, Biochimica et biophysica acta.
[81] G. Schmitz,et al. Regulation of phospholipid biosynthesis during cholesterol influx and high density lipoprotein-mediated cholesterol efflux in macrophages. , 1990, Journal of lipid research.
[82] A. Bist,et al. Two sterol regulatory element-like sequences mediate up-regulation of caveolin gene transcription in response to low density lipoprotein free cholesterol. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[83] F. Maxfield,et al. The Distal Pathway of Lipoprotein-induced Cholesterol Esterification, but Not Sphingomyelinase-induced Cholesterol Esterification, Is Energy-dependent* , 1996, The Journal of Biological Chemistry.
[84] R. Brady,et al. Type C Niemann-Pick disease: a murine model of the lysosomal cholesterol lipidosis accumulates sphingosine and sphinganine in liver. , 1992, Biochimica et biophysica acta.
[85] L Orci,et al. Heterogeneous distribution of filipin--cholesterol complexes across the cisternae of the Golgi apparatus. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[86] L. Cantley,et al. A Comparative Analysis of the Phosphoinositide Binding Specificity of Pleckstrin Homology Domains* , 1997, The Journal of Biological Chemistry.
[87] K. Simons,et al. The differential miscibility of lipids as the basis for the formation of functional membrane rafts. , 1998, Biochimica et biophysica acta.
[88] A. Gupta,et al. Plasma membrane sphingomyelin and the regulation of HMG-CoA reductase activity and cholesterol biosynthesis in cell cultures. , 1991, Journal of lipid research.
[89] M. Patterson,et al. The Niemann-Pick C1 Protein Resides in a Vesicular Compartment Linked to Retrograde Transport of Multiple Lysosomal Cargo* , 1999, The Journal of Biological Chemistry.
[90] T. Steck,et al. Quantitation of the Pool of Cholesterol Associated with Acyl-CoA:Cholesterol Acyltransferase in Human Fibroblasts* , 1997, The Journal of Biological Chemistry.
[91] J. Slotte,et al. Depletion of plasma-membrane sphingomyelin rapidly alters the distribution of cholesterol between plasma membranes and intracellular cholesterol pools in cultured fibroblasts. , 1988, The Biochemical journal.
[92] I. Tabas,et al. Regulation of the threshold for lipoprotein-induced acyl-CoA:cholesterol O-acyltransferase stimulation in macrophages by cellular sphingomyelin content. , 1994, Journal of lipid research.
[93] F. Field,et al. Cholesterol and sphingomyelin syntheses are regulated independently in cultured human intestinal cells, CaCo-2: role of membrane cholesterol and sphingomyelin content. , 1993, Journal of lipid research.
[94] V. Stevens,et al. Sphingolipid biosynthesis by rat liver cells: effects of serine, fatty acids and lipoproteins. , 1989, The Journal of nutrition.
[95] J. Pitha,et al. Intracellular Trafficking of Cholesterol Monitored with a Cyclodextrin* , 1996, The Journal of Biological Chemistry.
[96] R. Rousson,et al. Type C Niemann-Pick disease: biochemical aspects and phenotypic heterogeneity. , 1991, Developmental neuroscience.
[97] P. Conrad,et al. Caveolin moves from caveolae to the Golgi apparatus in response to cholesterol oxidation , 1994, The Journal of cell biology.
[98] R. Brady,et al. Type-C Niemann-Pick disease: low density lipoprotein uptake is associated with premature cholesterol accumulation in the Golgi complex and excessive cholesterol storage in lysosomes. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[99] I. Tabas,et al. Free cholesterol loading of macrophages stimulates phosphatidylcholine biosynthesis and up-regulation of CTP: phosphocholine cytidylyltransferase. , 1994, The Journal of biological chemistry.
[100] E. Ikonen,et al. Functional rafts in cell membranes , 1997, Nature.
[101] Y. Lange,et al. Analysis of the distribution of cholesterol in the intact cell. , 1983, The Journal of biological chemistry.
[102] P. Dawson,et al. A 25-hydroxycholesterol-resistant cell line deficient in acyl-CoA: cholesterol acyltransferase. , 1991, The Journal of biological chemistry.
[103] K. Iwabuchi,et al. Separation of “Glycosphingolipid Signaling Domain” from Caveolin-containing Membrane Fraction in Mouse Melanoma B16 Cells and Its Role in Cell Adhesion Coupled with Signaling* , 1998, The Journal of Biological Chemistry.
[104] L. Liscum,et al. Intracellular cholesterol transport. , 1992, Journal of lipid research.
[105] Catherine C. Y. Chang,et al. Activation of Acyl-Coenzyme A:Cholesterol Acyltransferase by Cholesterol or by Oxysterol in a Cell-free System (*) , 1995, The Journal of Biological Chemistry.
[106] Charles R.scriver,et al. The Metabolic basis of inherited disease , 1989 .
[107] R. Bittman,et al. Interaction of cholesterol with sphingomyelin in bilayer membranes: evidence that the hydroxy group of sphingomyelin does not modulate the rate of cholesterol exchange between vesicles. , 1991, Biochemistry.
[108] T. A. Spencer,et al. Oxysterol regulators of 3-hydroxy-3-methylglutaryl-CoA reductase in liver. Effect of dietary cholesterol. , 1989, The Journal of biological chemistry.
[109] F. Taylor,et al. Identification of regulatory oxysterols, 24(S),25-epoxycholesterol and 25-hydroxycholesterol, in cultured fibroblasts. , 1985, The Journal of biological chemistry.
[110] E. London,et al. Interactions between saturated acyl chains confer detergent resistance on lipids and glycosylphosphatidylinositol (GPI)-anchored proteins: GPI-anchored proteins in liposomes and cells show similar behavior. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[111] D. Warnock,et al. Determination of plasma membrane lipid mass and composition in cultured Chinese hamster ovary cells using high gradient magnetic affinity chromatography. , 1993, The Journal of biological chemistry.
[112] D. Brown,et al. On the origin of sphingolipid/cholesterol-rich detergent-insoluble cell membranes: physiological concentrations of cholesterol and sphingolipid induce formation of a detergent-insoluble, liquid-ordered lipid phase in model membranes. , 1997, Biochemistry.
[113] Y. Hannun. Functions of Ceramide in Coordinating Cellular Responses to Stress , 1996, Science.
[114] R. Pagano,et al. Both Sphingolipids and Cholesterol Participate in the Detergent Insolubility of Alkaline Phosphatase, a Glycosylphosphatidylinositol-anchored Protein, in Mammalian Membranes (*) , 1995, The Journal of Biological Chemistry.
[115] R. Palmiter,et al. Late endosomal membranes rich in lysobisphosphatidic acid regulate cholesterol transport , 1999, Nature Cell Biology.
[116] R. G. Anderson,et al. Lowering the cholesterol content of MA104 cells inhibits receptor- mediated transport of folate , 1992, The Journal of cell biology.
[117] W. Rosoff,et al. Acyl coenzyme A:cholesterol acyl transferase in macrophages utilizes a cellular pool of cholesterol oxidase-accessible cholesterol as substrate. , 1988, The Journal of biological chemistry.
[118] T. Katsumoto,et al. Accumulation of cholesterol and GM2 ganglioside in cells cultured in the presence of progesterone: an implication for the basic defect in Niemann-Pick disease type C , 1998, Brain and Development.
[119] Y. Ying,et al. Characterization of a Cytosolic Heat-shock Protein-Caveolin Chaperone Complex , 1998, The Journal of Biological Chemistry.
[120] O. Larsson,et al. Low density lipoprotein (LDL) cholesterol is converted to 27-hydroxycholesterol in human fibroblasts. Evidence that 27-hydroxycholesterol can be an important intracellular mediator between LDL and the suppression of cholesterol production , 1995, The Journal of Biological Chemistry.
[121] G. Bloom,et al. Caveolin cycles between plasma membrane caveolae and the Golgi complex by microtubule-dependent and microtubule-independent steps , 1995, The Journal of cell biology.
[122] X. Wang,et al. Cleavage of sterol regulatory element binding proteins (SREBPs) by CPP32 during apoptosis. , 1996, The EMBO journal.
[123] D. Harris,et al. Glycolipid-anchored proteins in neuroblastoma cells form detergent- resistant complexes without caveolin , 1995, The Journal of cell biology.
[124] N. Ridgway,et al. Chinese hamster ovary cells overexpressing the oxysterol binding protein (OSBP) display enhanced synthesis of sphingomyelin in response to 25-hydroxycholesterol. , 1999, Journal of lipid research.
[125] K. Sandhoff,et al. cis-4-Methylsphingosine Decreases Sphingolipid Biosynthesis by Specifically Interfering with Serine Palmitoyltransferase Activity in Primary Cultured Neurons* , 1997, The Journal of Biological Chemistry.
[126] F. Taylor,et al. Correlation between oxysterol binding to a cytosolic binding protein and potency in the repression of hydroxymethylglutaryl coenzyme A reductase. , 1984, Journal of Biological Chemistry.
[127] Deborah A. Brown,et al. Sorting of GPI-anchored proteins to glycolipid-enriched membrane subdomains during transport to the apical cell surface , 1992, Cell.
[128] K. Williams,et al. Secretory Sphingomyelinase, a Product of the Acid Sphingomyelinase Gene, Can Hydrolyze Atherogenic Lipoproteins at Neutral pH , 1998, The Journal of Biological Chemistry.
[129] K. Sandhoff,et al. Sphingolipid biosynthesis in cultured neurons. Down-regulation of serine palmitoyltransferase by sphingoid bases. , 1991, European journal of biochemistry.
[130] K. Williams,et al. Zn2+-stimulated Sphingomyelinase Is Secreted by Many Cell Types and Is a Product of the Acid Sphingomyelinase Gene* , 1996, The Journal of Biological Chemistry.
[131] T. E. Thompson,et al. Interaction of cholesterol with various glycerophospholipids and sphingomyelin. , 1990, Biochemistry.