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324 peer-reviewed articles • 83,579 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1How the JCI’s most-cited paper sparked the field of lipoprotein research10.61Citations (PDF)
2Phosphorylation of Insig-2 mediates inhibition of fatty acid synthesis by polyunsaturated fatty acids7.511Citations (PDF)
3Akira Endo, who discovered a “penicillin” for heart attacks (1933 to 2024)7.50Citations (PDF)
4Interplay between Asters/GRAMD1s and phosphatidylserine in intermembrane transport of LDL cholesterol7.540Citations (PDF)
5Unexpected role for IGF-1 in starvation: Maintenance of blood glucose7.528Citations (PDF)
6Scap structures highlight key role for rotation of intertwined luminal loops in cholesterol sensing
Cell, 2021, 184, 3689-3701.e22
33.638Citations (PDF)
7Last step in the path of LDL cholesterol from lysosome to plasma membrane to ER is governed by phosphatidylserine7.5132Citations (PDF)
8Growth hormone acts on liver to stimulate autophagy, support glucose production, and preserve blood glucose in chronically starved mice7.540Citations (PDF)
9Retrospective on Cholesterol Homeostasis: The Central Role of Scap17.4476Citations (PDF)
10Cholesterol-induced conformational changes in the sterol-sensing domain of the Scap protein suggest feedback mechanism to control cholesterol synthesis
Journal of Biological Chemistry, 2017, 292, 8729-8737
2.238Citations (PDF)
11Triazoles inhibit cholesterol export from lysosomes by binding to NPC17.570Citations (PDF)
12Insulin induction of SREBP-1c in rodent liver requires LXRα-C/EBPβ complex7.577Citations (PDF)
13Direct Demonstration That Loop1 of Scap Binds to Loop7
Journal of Biological Chemistry, 2016, 291, 12888-12896
2.219Citations (PDF)
14Reduced autophagy in livers of fasted, fat-depleted, ghrelin-deficient mice: Reversal by growth hormone7.573Citations (PDF)
15A Century of Cholesterol and Coronaries: From Plaques to Genes to Statins
Cell, 2015, 161, 161-172
33.61,127Citations (PDF)
16Induced Ablation of Ghrelin Cells in Adult Mice Does Not Decrease Food Intake, Body Weight, or Response to High-Fat Diet
Cell Metabolism, 2014, 20, 54-60
25.2146Citations (PDF)
17Use of mutant 125 I-Perfringolysin O to probe transport and organization of cholesterol in membranes of animal cells7.5121Citations (PDF)
18Point Mutation in Luminal Loop 7 of Scap Protein Blocks Interaction with Loop 1 and Abolishes Movement to Golgi
Journal of Biological Chemistry, 2013, 288, 14059-14067
2.229Citations (PDF)
19Insulin stimulation of SREBP-1c processing in transgenic rat hepatocytes requires p70 S6-kinase7.5265Citations (PDF)
20Profound Hypoglycemia in Starved, Ghrelin-deficient Mice Is Caused by Decreased Gluconeogenesis and Reversed by Lactate or Fatty Acids
Journal of Biological Chemistry, 2012, 287, 17942-17950
2.2119Citations (PDF)
21Scientific Side Trips: Six Excursions from the Beaten Path
Journal of Biological Chemistry, 2012, 287, 22418-22435
2.27Citations (PDF)
22The Scap/SREBP Pathway Is Essential for Developing Diabetic Fatty Liver and Carbohydrate-Induced Hypertriglyceridemia in Animals
Cell Metabolism, 2012, 15, 240-246
25.2304Citations (PDF)
23Surviving Starvation: Essential Role of the Ghrelin-Growth Hormone Axis1.6108Citations (PDF)
24Identification of Luminal Loop 1 of Scap Protein as the Sterol Sensor That Maintains Cholesterol Homeostasis
Journal of Biological Chemistry, 2011, 286, 18002-18012
2.287Citations (PDF)
25Amino acid substitution in NPC1 that abolishes cholesterol binding reproduces phenotype of complete NPC1 deficiency in mice7.544Citations (PDF)
26Hair Growth Defects in Insig-Deficient Mice Caused by Cholesterol Precursor Accumulation and Reversed by Simvastatin2.353Citations (PDF)
27Ghrelin secretion stimulated by β 1 -adrenergic receptors in cultured ghrelinoma cells and in fasted mice7.5186Citations (PDF)
28Ghrelin O -acyltransferase (GOAT) is essential for growth hormone-mediated survival of calorie-restricted mice7.5412Citations (PDF)
29LXR-SREBP-1c-Phospholipid Transfer Protein Axis Controls Very Low Density Lipoprotein (VLDL) Particle Size
Journal of Biological Chemistry, 2010, 285, 6801-6810
2.290Citations (PDF)
30Bifurcation of insulin signaling pathway in rat liver: mTORC1 required for stimulation of lipogenesis, but not inhibition of gluconeogenesis7.5682Citations (PDF)
31Identification of Surface Residues on Niemann-Pick C2 Essential for Hydrophobic Handoff of Cholesterol to NPC1 in Lysosomes
Cell Metabolism, 2010, 12, 166-173
25.2218Citations (PDF)
32Cyclodextrin overcomes deficient lysosome-to-endoplasmic reticulum transport of cholesterol in Niemann-Pick type C cells7.5172Citations (PDF)
33Accelerated Fatty Acid Oxidation in Muscle Averts Fasting-induced Hepatic Steatosis in SJL/J Mice
Journal of Biological Chemistry, 2009, 284, 24644-24652
2.262Citations (PDF)
34Regulated Endoplasmic Reticulum-associated Degradation of a Polytopic Protein
Journal of Biological Chemistry, 2009, 284, 34889-34900
2.235Citations (PDF)
35Familial Hypercholesterolemia: Defective Binding of Lipoproteins to Cultured Fibroblasts Associated with Impaired Regulation of 3-Hydroxy-3-Methylglutaryl Coenzyme A Reductase Activity
Nutrition Reviews, 2009, 43, 279-282
5.60Citations (PDF)
36The LDL Receptor6.01,250Citations (PDF)
37Structure of N-Terminal Domain of NPC1 Reveals Distinct Subdomains for Binding and Transfer of Cholesterol
Cell, 2009, 137, 1213-1224
33.6649Citations (PDF)
38Identification of the Acyltransferase that Octanoylates Ghrelin, an Appetite-Stimulating Peptide Hormone
Cell, 2008, 132, 387-396
33.61,122Citations (PDF)
39Switch-like Control of SREBP-2 Transport Triggered by Small Changes in ER Cholesterol: A Delicate Balance
Cell Metabolism, 2008, 8, 512-521
25.2536Citations (PDF)
40Purified NPC1 Protein
Journal of Biological Chemistry, 2008, 283, 1052-1063
2.2206Citations (PDF)
41Purified NPC1 Protein
Journal of Biological Chemistry, 2008, 283, 1064-1075
2.2215Citations (PDF)
42NPC2 facilitates bidirectional transfer of cholesterol between NPC1 and lipid bilayers, a step in cholesterol egress from lysosomes7.5462Citations (PDF)
43Inhibition of ghrelin O -acyltransferase (GOAT) by octanoylated pentapeptides7.5186Citations (PDF)
44From fatty streak to fatty liver: 33 years of joint publications in the JCI
Journal of Clinical Investigation, 2008, 118, 1220-1222
10.633Citations (PDF)
45Sterol-regulated transport of SREBPs from endoplasmic reticulum to Golgi: Oxysterols block transport by binding to Insig7.5552Citations (PDF)
46Sterol-regulated transport of SREBPs from endoplasmic reticulum to Golgi: Insig renders sorting signal in Scap inaccessible to COPII proteins7.5276Citations (PDF)
47The Central Role of Insig Proteins in Regulating Cholesterol Homeostasis
FASEB Journal, 2007, 21,
0.60Citations (PDF)
48Protein Sensors for Membrane Sterols
Cell, 2006, 124, 35-46
33.61,581Citations (PDF)
49Sterol-regulated ubiquitination and degradation of Insig-1 creates a convergent mechanism for feedback control of cholesterol synthesis and uptake
Cell Metabolism, 2006, 3, 15-24
25.2243Citations (PDF)
50Juxtamembranous aspartic acid in Insig-1 and Insig-2 is required for cholesterol homeostasis7.551Citations (PDF)
51Severe facial clefting in Insig-deficient mouse embryos caused by sterol accumulation and reversed by lovastatin
Journal of Clinical Investigation, 2006, 116, 2356-2365
10.677Citations (PDF)
52Insig Required for Sterol-mediated Inhibition of Scap/SREBP Binding to COPII Proteins in Vitro*♦
Journal of Biological Chemistry, 2005, 280, 26483-26490
2.2225Citations (PDF)
53Intramembrane aspartic acid in SCAP protein governs cholesterol-induced conformational change7.544Citations (PDF)
54Identification of FBL2 As a Geranylgeranylated Cellular Protein Required for Hepatitis C Virus RNA Replication
Molecular Cell, 2005, 18, 425-434
13.3276Citations (PDF)
55Compensatory increase in fatty acid synthesis in adipose tissue of mice with conditional deficiency of SCAP in liver
Cell Metabolism, 2005, 1, 41-51
25.264Citations (PDF)
56Schoenheimer effect explained - feedback regulation of cholesterol synthesis in mice mediated by Insig proteins
Journal of Clinical Investigation, 2005, 115, 2489-2498
10.6200Citations (PDF)
57Membrane Topology of Human Insig-1, a Protein Regulator of Lipid Synthesis
Journal of Biological Chemistry, 2004, 279, 8487-8496
2.291Citations (PDF)
58Central role for liver X receptor in insulin-mediated activation of Srebp-1c transcription and stimulation of fatty acid synthesis in liver7.5505Citations (PDF)
59Cholesterol and 25-Hydroxycholesterol Inhibit Activation of SREBPs by Different Mechanisms, Both Involving SCAP and Insigs
Journal of Biological Chemistry, 2004, 279, 52772-52780
2.2419Citations (PDF)
60The effect of natal experience on habitat preferences6.3474Citations (PDF)
61Direct Binding of Cholesterol to the Purified Membrane Region of SCAP
Molecular Cell, 2004, 15, 259-268
13.3315Citations (PDF)
62A tribute to Akira Endo, discoverer of a “Penicillin” for cholesterol3.145Citations (PDF)
63LOWERING PLASMA CHOLESTEROL BY RAISING LDL RECEPTORS3.118Citations (PDF)
64Mevinolin and colestipol stimulate receptor-mediated clearance of low density lipoprotein from plasma in familial hypercholeserolemia heterozygotes3.17Citations (PDF)
65Overexpression of Insig-1 in the livers of transgenic mice inhibits SREBP processing and reduces insulin-stimulated lipogenesis
Journal of Clinical Investigation, 2004, 113, 1168-1175
10.649Citations (PDF)
66Overexpression of Insig-1 in the livers of transgenic mice inhibits SREBP processing and reduces insulin-stimulated lipogenesis
Journal of Clinical Investigation, 2004, 113, 1168-1175
10.6242Citations (PDF)
67Accelerated Degradation of HMG CoA Reductase Mediated by Binding of Insig-1 to Its Sterol-Sensing Domain
Molecular Cell, 2003, 11, 25-33
13.3344Citations (PDF)
68Combined analysis of oligonucleotide microarray data from transgenic and knockout mice identifies direct SREBP target genes7.51,345Citations (PDF)
69Reconstitution of Sterol-regulated Endoplasmic Reticulum-to-Golgi Transport of SREBP-2 in Insect Cells by Co-expression of Mammalian SCAP and Insigs
Journal of Biological Chemistry, 2003, 278, 35837-35843
2.236Citations (PDF)
70Cholesterol-induced conformational change in SCAP enhanced by Insig proteins and mimicked by cationic amphiphiles7.5101Citations (PDF)
71Disruption of hepatitis C virus RNA replication through inhibition of host protein geranylgeranylation7.5352Citations (PDF)
72Liver-specific mRNA for Insig-2 down-regulated by insulin: Implications for fatty acid synthesis7.5274Citations (PDF)
73Insig-dependent Ubiquitination and Degradation of Mammalian 3-Hydroxy-3-methylglutaryl-CoA Reductase Stimulated by Sterols and Geranylgeraniol
Journal of Biological Chemistry, 2003, 278, 52479-52490
2.2278Citations (PDF)
74Characterization of Mouse Short-chain Aldehyde Reductase (SCALD), an Enzyme Regulated by Sterol Regulatory Element-binding Proteins
Journal of Biological Chemistry, 2003, 278, 32380-32389
2.251Citations (PDF)
75Insig-2, a second endoplasmic reticulum protein that binds SCAP and blocks export of sterol regulatory element-binding proteins7.5502Citations (PDF)
76Regulation of SREBP Processing and Membrane Lipid Production by Phospholipids in Drosophila
Science, 2002, 296, 879-883
36.2311Citations (PDF)
77Mutant Mammalian Cells as Tools to Delineate the Sterol Regulatory Element-Binding Protein Pathway for Feedback Regulation of Lipid Synthesis2.8223Citations (PDF)
78Diminished Hepatic Response to Fasting/Refeeding and Liver X Receptor Agonists in Mice with Selective Deficiency of Sterol Regulatory Element-binding Protein-1c
Journal of Biological Chemistry, 2002, 277, 9520-9528
2.2601Citations (PDF)
79Crucial Step in Cholesterol Homeostasis
Cell, 2002, 110, 489-500
33.6937Citations (PDF)
80Cholesterol Addition to ER Membranes Alters Conformation of SCAP, the SREBP Escort Protein that Regulates Cholesterol Metabolism
Molecular Cell, 2002, 10, 237-245
13.3382Citations (PDF)
81The SREBP Pathway in Drosophila
Developmental Cell, 2002, 2, 229-238
7.7188Citations (PDF)
82Structure of the LDL Receptor Extracellular Domain at Endosomal pH
Science, 2002, 298, 2353-2358
36.2459Citations (PDF)
83Unsaturated fatty acids inhibit transcription of the sterol regulatory element-binding protein-1c (SREBP-1c) gene by antagonizing ligand-dependent activation of the LXR7.5437Citations (PDF)
84Expression of sterol regulatory element-binding protein 1c (SREBP-1c) mRNA in rat hepatoma cells requires endogenous LXR ligands7.5228Citations (PDF)
85SREBP cleavage-activating protein (SCAP) is required for increased lipid synthesis in liver induced by cholesterol deprivation and insulin elevation
Genes and Development, 2001, 15, 1206-1216
4.6305Citations (PDF)
86Decreased lipid synthesis in livers of mice with disrupted Site-1 protease gene7.5230Citations (PDF)
87Insulin inhibits transcription of IRS-2 gene in rat liver through an insulin response element (IRE) that resembles IREs of other insulin-repressed genes7.5103Citations (PDF)
88Unsaturated Fatty Acids Down-regulate SREBP Isoforms 1a and 1c by Two Mechanisms in HEK-293 Cells
Journal of Biological Chemistry, 2001, 276, 4365-4372
2.2408Citations (PDF)
89Overexpression of Membrane Domain of SCAP Prevents Sterols from Inhibiting SCAP·SREBP Exit from Endoplasmic Reticulum
Journal of Biological Chemistry, 2000, 275, 29881-29886
2.277Citations (PDF)
90Asparagine-proline sequence within membrane-spanning segment of SREBP triggers intramembrane cleavage by Site-2 protease7.5139Citations (PDF)
91Molecular Characterization of Human Acetyl-CoA Synthetase, an Enzyme Regulated by Sterol Regulatory Element-binding Proteins
Journal of Biological Chemistry, 2000, 275, 26458-26466
2.2254Citations (PDF)
92Regulation of mouse sterol regulatory element-binding protein-1c gene (SREBP-1c) by oxysterol receptors, LXRα and LXRβ
Genes and Development, 2000, 14, 2819-2830
4.61,576Citations (PDF)
93Decreased IRS-2 and Increased SREBP-1c Lead to Mixed Insulin Resistance and Sensitivity in Livers of Lipodystrophic and ob/ob Mice
Molecular Cell, 2000, 6, 77-86
13.3777Citations (PDF)
94ER Stress Induces Cleavage of Membrane-Bound ATF6 by the Same Proteases that Process SREBPs
Molecular Cell, 2000, 6, 1355-1364
13.31,767Citations (PDF)
95Regulated Step in Cholesterol Feedback Localized to Budding of SCAP from ER Membranes
Cell, 2000, 102, 315-323
33.6326Citations (PDF)
96Regulated Intramembrane Proteolysis
Cell, 2000, 100, 391-398
33.61,322Citations (PDF)
97Decreased IRS-2 and Increased SREBP-1c Lead to Mixed Insulin Resistance and Sensitivity in Livers of Lipodystrophic and ob/ob Mice
Molecular Cell, 2000, 6, 77-86
13.3229Citations (PDF)
98Presentation of the Kober Medal for 1999 to Jean D. Wilson Physician‐Scientist Exemplar3.01Citations (PDF)
99Insulin selectively increases SREBP-1c mRNA in the livers of rats with streptozotocin-induced diabetes7.5716Citations (PDF)
100Membrane Topology of S2P, a Protein Required for Intramembranous Cleavage of Sterol Regulatory Element-binding Proteins
Journal of Biological Chemistry, 1999, 274, 21973-21980
2.2108Citations (PDF)
101Autocatalytic Processing of Site-1 Protease Removes Propeptide and Permits Cleavage of Sterol Regulatory Element-binding Proteins
Journal of Biological Chemistry, 1999, 274, 22795-22804
2.2168Citations (PDF)
102Sterols regulate cycling of SREBP cleavage-activating protein (SCAP) between endoplasmic reticulum and Golgi7.5228Citations (PDF)
103A proteolytic pathway that controls the cholesterol content of membranes, cells, and blood7.51,243Citations (PDF)
104Secreted Site-1 Protease Cleaves Peptides Corresponding to Luminal Loop of Sterol Regulatory Element-binding Proteins
Journal of Biological Chemistry, 1999, 274, 22805-22812
2.269Citations (PDF)
105Failure to Cleave Sterol Regulatory Element-binding Proteins (SREBPs) Causes Cholesterol Auxotrophy in Chinese Hamster Ovary Cells with Genetic Absence of SREBP Cleavage-activating Protein
Journal of Biological Chemistry, 1999, 274, 28549-28556
2.2162Citations (PDF)
106Burgers, Chips, and Genes4.01Citations (PDF)
107Leptin reverses insulin resistance and diabetes mellitus in mice with congenital lipodystrophy
Nature, 1999, 401, 73-76
37.9986Citations (PDF)
108Transport-Dependent Proteolysis of SREBP
Cell, 1999, 99, 703-712
33.6311Citations (PDF)
109Disruption of LDL receptor gene in transgenic SREBP-1a mice unmasks hyperlipidemia resulting from production of lipid-rich VLDL
Journal of Clinical Investigation, 1999, 103, 1067-1076
10.6178Citations (PDF)
110Molecular Identification of the Sterol-Regulated Luminal Protease that Cleaves SREBPs and Controls Lipid Composition of Animal Cells
Molecular Cell, 1998, 2, 505-514
13.3391Citations (PDF)
111Cleavage of Sterol Regulatory Element-binding Proteins (SREBPs) at Site-1 Requires Interaction with SREBP Cleavage-activating Protein
Journal of Biological Chemistry, 1998, 273, 5785-5793
2.2206Citations (PDF)
112Differential Stimulation of Cholesterol and Unsaturated Fatty Acid Biosynthesis in Cells Expressing Individual Nuclear Sterol Regulatory Element-binding Proteins
Journal of Biological Chemistry, 1998, 273, 26138-26148
2.2208Citations (PDF)
113Isolation of Cholesterol-requiring Mutant Chinese Hamster Ovary Cells with Defects in Cleavage of Sterol Regulatory Element-binding Proteins at Site 1
Journal of Biological Chemistry, 1998, 273, 28261-28269
2.287Citations (PDF)
114Second-site Cleavage in Sterol Regulatory Element-binding Protein Occurs at Transmembrane Junction as Determined by Cysteine Panning
Journal of Biological Chemistry, 1998, 273, 17801-17809
2.2139Citations (PDF)
115Sterols regulate processing of carbohydrate chains of wild-type SREBP cleavage-activating protein (SCAP), but not sterol-resistant mutants Y298C or D443N7.5128Citations (PDF)
116Topology of SREBP Cleavage-activating Protein, a Polytopic Membrane Protein with a Sterol-sensing Domain
Journal of Biological Chemistry, 1998, 273, 17243-17250
2.2179Citations (PDF)
117Insulin resistance and diabetes mellitus in transgenic mice expressing nuclear SREBP-1c in adipose tissue: model for congenital generalized lipodystrophy
Genes and Development, 1998, 12, 3182-3194
4.6733Citations (PDF)
118Sterol Regulatory Element Binding Proteins (SREBPs): Controllers of Lipid Synthesis and Cellular Uptake
Nutrition Reviews, 1998, 56, S1-S3
5.694Citations (PDF)
119Activation of cholesterol synthesis in preference to fatty acid synthesis in liver and adipose tissue of transgenic mice overproducing sterol regulatory element-binding protein-2.
Journal of Clinical Investigation, 1998, 101, 2331-2339
10.6639Citations (PDF)
120Cleavage Site for Sterol-regulated Protease Localized to a Leu-Ser Bond in the Lumenal Loop of Sterol Regulatory Element-binding Protein-2
Journal of Biological Chemistry, 1997, 272, 12778-12785
2.2162Citations (PDF)
121Identification of Complexes between the COOH-terminal Domains of Sterol Regulatory Element-binding Proteins (SREBPs) and SREBP Cleavage-Activating Protein
Journal of Biological Chemistry, 1997, 272, 20213-20221
2.2211Citations (PDF)
122Sphingomyelin depletion in cultured cells blocks proteolysis of sterol regulatory element binding proteins at site 17.5117Citations (PDF)
123Complementation Cloning of S2P, a Gene Encoding a Putative Metalloprotease Required for Intramembrane Cleavage of SREBPs
Molecular Cell, 1997, 1, 47-57
13.3458Citations (PDF)
124The SREBP Pathway: Regulation of Cholesterol Metabolism by Proteolysis of a Membrane-Bound Transcription Factor
Cell, 1997, 89, 331-340
33.63,606Citations (PDF)
125Cholesterol feeding reduces nuclear forms of sterol regulatory element binding proteins in hamster liver7.5141Citations (PDF)
126Differential expression of exons 1a and 1c in mRNAs for sterol regulatory element binding protein-1 in human and mouse organs and cultured cells.10.6700Citations (PDF)
127Isoform 1c of sterol regulatory element binding protein is less active than isoform 1a in livers of transgenic mice and in cultured cells.10.6768Citations (PDF)
128Elevated levels of SREBP-2 and cholesterol synthesis in livers of mice homozygous for a targeted disruption of the SREBP-1 gene.
Journal of Clinical Investigation, 1997, 100, 2115-2124
10.6415Citations (PDF)
129Sterol-Regulated Release of SREBP-2 from Cell Membranes Requires Two Sequential Cleavages, One Within a Transmembrane Segment
Cell, 1996, 85, 1037-1046
33.6520Citations (PDF)
130Sterol Resistance in CHO Cells Traced to Point Mutation in SREBP Cleavage–Activating Protein
Cell, 1996, 87, 415-426
33.6466Citations (PDF)
131Overproduction of cholesterol and fatty acids causes massive liver enlargement in transgenic mice expressing truncated SREBP-1a.10.6776Citations (PDF)
132Recurrent G-to-A substitution in a single codon of SREBP cleavage-activating protein causes sterol resistance in three mutant Chinese hamster ovary cell lines7.555Citations (PDF)
133Cleavage of sterol regulatory element binding proteins (SREBPs) by CPP32 during apoptosis.
EMBO Journal, 1996, 15, 1012-1020
7.3293Citations (PDF)
134Resistance of K-RasBV12 proteins to farnesyltransferase inhibitors in Rat1 cells.7.5161Citations (PDF)
135Purification and cDNA cloning of a second apoptosis-related cysteine protease that cleaves and activates sterol regulatory element binding proteins.7.570Citations (PDF)
136Complementation of Mutation in Acyl-CoA:Cholesterol Acyltransferase (ACAT) Fails to Restore Sterol Regulation in ACAT-defective Sterol-resistant Hamster Cells
Journal of Biological Chemistry, 1996, 271, 14642-14648
2.250Citations (PDF)
137Regulated Cleavage of Sterol Regulatory Element Binding Proteins Requires Sequences on Both Sides of the Endoplasmic Reticulum Membrane
Journal of Biological Chemistry, 1996, 271, 10379-10384
2.2195Citations (PDF)
138Independent regulation of sterol regulatory element-binding proteins 1 and 2 in hamster liver.7.5299Citations (PDF)
139Normal plasma lipoproteins and fertility in gene-targeted mice homozygous for a disruption in the gene encoding very low density lipoprotein receptor.7.5248Citations (PDF)
140Polylysine and CVIM Sequences of K-RasB Dictate Specificity of Prenylation and Confer Resistance to Benzodiazepine Peptidomimetic in Vitro
Journal of Biological Chemistry, 1995, 270, 6221-6226
2.2255Citations (PDF)
141Hairpin Orientation of Sterol Regulatory Element-binding Protein-2 in Cell Membranes as Determined by Protease Protection
Journal of Biological Chemistry, 1995, 270, 29422-29427
2.2141Citations (PDF)
142CAAX Geranylgeranyl Transferase Transfers Farnesyl as Efficiently as Geranylgeranyl to RhoB
Journal of Biological Chemistry, 1995, 270, 7864-7868
2.2138Citations (PDF)
143cDNA Cloning of MCT2, a Second Monocarboxylate Transporter Expressed in Different Cells than MCT1
Journal of Biological Chemistry, 1995, 270, 1843-1849
2.2325Citations (PDF)
144Three Different Rearrangements in a Single Intron Truncate Sterol Regulatory Element Binding Protein-2 and Produce Sterol-resistant Phenotype in Three Cell Lines
Journal of Biological Chemistry, 1995, 270, 12152-12161
2.292Citations (PDF)
145Purification of an Interleukin-1β Converting Enzyme-related Cysteine Protease That Cleaves Sterol Regulatory Element-binding Proteins between the Leucine Zipper and Transmembrane Domains
Journal of Biological Chemistry, 1995, 270, 18044-18050
2.2134Citations (PDF)
146Structure of the human gene encoding sterol regulatory element binding protein-1 (SREBF1) and localization of SREBF1 and SREBF2 to chromosomes 17p11.2 and 22q13
Genomics, 1995, 25, 667-673
2.8271Citations (PDF)
147Sterol-resistant transcription in CHO cells caused by gene rearrangement that truncates SREBP-2.
Genes and Development, 1994, 8, 1910-1919
4.699Citations (PDF)
148Gene therapy for cholesterol
Nature Genetics, 1994, 7, 349-350
25.241Citations (PDF)
149SREBP-1, a membrane-bound transcription factor released by sterol-regulated proteolysis
Cell, 1994, 77, 53-62
33.6991Citations (PDF)
150Molecular characterization of a membrane transporter for lactate, pyruvate, and other monocarboxylates: Implications for the Cori cycle
Cell, 1994, 76, 865-873
33.6571Citations (PDF)
151The two-receptor model of lipoprotein clearance: tests of the hypothesis in "knockout" mice lacking the low density lipoprotein receptor, apolipoprotein E, or both proteins.7.5406Citations (PDF)
152Benzodiazepine peptidomimetic BZA-5B interrupts the MAP kinase activation pathway in H-Ras-transformed Rat-1 cells, but not in untransformed cells.
Journal of Biological Chemistry, 1994, 269, 27705-27714
2.297Citations (PDF)
153Massive xanthomatosis and atherosclerosis in cholesterol-fed low density lipoprotein receptor-negative mice.10.6657Citations (PDF)
154cDNA Cloning of the Two Subunits of Human CAAX Farnesyltransferase and Chromosomal Mapping of FNTA and FNTB Loci and Related Sequences
Genomics, 1993, 18, 105-112
2.824Citations (PDF)
155cDNA cloning of component A of Rab geranylgeranyl transferase and demonstration of its role as a Rab escort protein
Cell, 1993, 73, 1091-1099
33.6332Citations (PDF)
156SREBP-1, a basic-helix-loop-helix-leucine zipper protein that controls transcription of the low density lipoprotein receptor gene
Cell, 1993, 75, 187-197
33.6886Citations (PDF)
157SREBP-2, a second basic-helix-loop-helix-leucine zipper protein that stimulates transcription by binding to a sterol regulatory element.7.5603Citations (PDF)
158Replacement of serine-871 of hamster 3-hydroxy-3-methylglutaryl-CoA reductase prevents phosphorylation by AMP-activated kinase and blocks inhibition of sterol synthesis induced by ATP depletion.7.5165Citations (PDF)
159SREBP-1, a basic-helix-loop-helix-leucine zipper protein that controls transcription of the low density lipoprotein receptor gene
Cell, 1993, 75, 187-197
33.6261Citations (PDF)
160Hypercholesterolemia in low density lipoprotein receptor knockout mice and its reversal by adenovirus-mediated gene delivery.10.61,480Citations (PDF)
161Cytoplasmic sequence required for basolateral targeting of LDL receptor in livers of transgenic mice
Journal of Cell Biology, 1992, 117, 39-46
5.489Citations (PDF)
162Purification of component A of Rab geranylgeranyl transferase: Possible identity with the choroideremia gene product
Cell, 1992, 70, 1049-1057
33.6302Citations (PDF)
163Koch's postulates for cholesterol
Cell, 1992, 71, 187-188
33.677Citations (PDF)
164Molecular genetics of the LDL receptor gene in familial hypercholesterolemia
Human Mutation, 1992, 1, 445-466
4.51,101Citations (PDF)
165Protein farnesyltransferase and geranylgeranyltransferase share a common α subunit
Cell, 1991, 65, 429-434
33.6396Citations (PDF)
166cDNA cloning and expression of the peptide-binding β subunit of rat p21rasfarnesyltransferase, the counterpart of yeast DPR1/RAM1
Cell, 1991, 66, 327-334
33.6199Citations (PDF)
167The low-density lipoprotein receptor-related protein: double agent or decoy?3.9159Citations (PDF)
168Regulation of the mevalonate pathway
Nature, 1990, 343, 425-430
37.95,275Citations (PDF)
169Purification of ras farnesyl:Protein transferase
Methods, 1990, 1, 241-245
3.534Citations (PDF)
170Inhibition of purified p21ras farnesyl:protein transferase by Cys-AAX tetrapeptides
Cell, 1990, 62, 81-88
33.6847Citations (PDF)
171cDNA cloning of human oxysterol-binding protein and localization of the gene to human chromosome 11 and mouse chromosome 19
Genomics, 1990, 7, 65-74
2.884Citations (PDF)
172THE LDL RECEPTOR LOCUS IN FAMILIAL HYPERCHOLESTEROLEMIA: Mutational Analysis of a Membrane Protein
Annual Review of Genetics, 1990, 24, 133-170
7.2680Citations (PDF)
173Low density lipoprotein receptor-related protein mediates endocytosis of monoclonal antibodies in cultured cells and rabbit liver.
Journal of Biological Chemistry, 1990, 265, 21355-21362
2.2117Citations (PDF)
174Apolipoprotein C-I modulates the interaction of apolipoprotein E with beta-migrating very low density lipoproteins (beta-VLDL) and inhibits binding of beta-VLDL to low density lipoprotein receptor-related protein.
Journal of Biological Chemistry, 1990, 265, 22453-22459
2.2211Citations (PDF)
175Opposing effects of apolipoproteins E and C on lipoprotein binding to low density lipoprotein receptor-related protein.
Journal of Biological Chemistry, 1990, 265, 10771-10779
2.2429Citations (PDF)
176NPXY, a sequence often found in cytoplasmic tails, is required for coated pit-mediated internalization of the low density lipoprotein receptor.
Journal of Biological Chemistry, 1990, 265, 3116-3123
2.2858Citations (PDF)
177Identification of nucleotides responsible for enhancer activity of sterol regulatory element in low density lipoprotein receptor gene.
Journal of Biological Chemistry, 1990, 265, 2306-2310
2.2216Citations (PDF)
178Overexpression of human low density lipoprotein receptors leads to accelerated catabolism of Lp(a) lipoprotein in transgenic mice.10.6186Citations (PDF)
179Low density lipoprotein receptor-related protein mediates uptake of cholesteryl esters derived from apoprotein E-enriched lipoproteins.7.5567Citations (PDF)
180Stoichiometric Binding of Low Density Lipoprotein (LDL) and Monoclonal Antibodies to Ldl Receptors in a Solid Phase Assay
Journal of Biological Chemistry, 1989, 264, 9533-9538
2.234Citations (PDF)
181Purification of Oxysterol Binding Protein from Hamster Liver Cytosol
Journal of Biological Chemistry, 1989, 264, 9046-9052
2.2112Citations (PDF)
182Purification of a sarcoplasmic reticulum protein that binds Ca2+ and plasma lipoproteins
Journal of Biological Chemistry, 1989, 264, 8260-8270
2.258Citations (PDF)
183Molecular cloning of a histidine-rich Ca2+-binding protein of sarcoplasmic reticulum that contains highly conserved repeated elements
Journal of Biological Chemistry, 1989, 264, 18083-18090
2.284Citations (PDF)
184cDNA cloning and expression of oxysterol-binding protein, an oligomer with a potential leucine zipper
Journal of Biological Chemistry, 1989, 264, 16798-16803
2.2144Citations (PDF)
185Loss of transcriptional repression of three sterol-regulated genes in mutant hamster cells
Journal of Biological Chemistry, 1989, 264, 15634-15641
2.2148Citations (PDF)
186Different combinations of cysteine-rich repeats mediate binding of low density lipoprotein receptor to two different proteins
Journal of Biological Chemistry, 1989, 264, 21682-21688
2.2290Citations (PDF)
187Evidence for a dominant gene that suppresses hypercholesterolemia in a family with defective low density lipoprotein receptors.10.6134Citations (PDF)
188Multiple genes encode nuclear factor 1-like proteins that bind to the promoter for 3-hydroxy-3-methylglutaryl-coenzyme A reductase.7.5178Citations (PDF)
189Localization of mRNA for low density lipoprotein receptor and a cholesterol synthetic enzyme in rabbit nervous system by in situ hybridization.7.574Citations (PDF)
190Purification of a protein doublet that binds to six TGG-containing sequences in the promoter for hamster 3-hydroxy-3-methylglutaryl-coenzyme A reductase.
Journal of Biological Chemistry, 1988, 263, 19009-19019
2.247Citations (PDF)
191Mutational analysis of the ligand binding domain of the low density lipoprotein receptor.
Journal of Biological Chemistry, 1988, 263, 13282-13290
2.2269Citations (PDF)
192Multivalent control of 3-hydroxy-3-methylglutaryl coenzyme A reductase. Mevalonate-derived product inhibits translation of mRNA and accelerates degradation of enzyme.
Journal of Biological Chemistry, 1988, 263, 8929-8937
2.2307Citations (PDF)
193Human low density lipoprotein receptor expressed in Xenopus oocytes. Conserved signals for O-linked glycosylation and receptor-mediated endocytosis.
Journal of Biological Chemistry, 1988, 263, 7838-7845
2.238Citations (PDF)
194Sterol-dependent repression of low density lipoprotein receptor promoter mediated by 16-base pair sequence adjacent to binding site for transcription factor Sp1.
Journal of Biological Chemistry, 1988, 263, 3372-3379
2.2259Citations (PDF)
195Operator constitutive mutation of 3-hydroxy-3-methylglutaryl coenzyme A reductase promoter abolishes protein binding to sterol regulatory element.
Journal of Biological Chemistry, 1988, 263, 3380-3387
2.2186Citations (PDF)
196Multiple sterol regulatory elements in promoter for hamster 3-hydroxy-3-methylglutaryl-coenzyme A synthase.
Journal of Biological Chemistry, 1988, 263, 18480-18487
2.2152Citations (PDF)
197Multiple crm- mutations in familial hypercholesterolemia. Evidence for 13 alleles, including four deletions.10.669Citations (PDF)
198Optional exon in the 5'-untranslated region of 3-hydroxy-3-methylglutaryl coenzyme A synthase gene: conserved sequence and splicing pattern in humans and hamsters.7.539Citations (PDF)
199mRNA for low density lipoprotein receptor in brain and spinal cord of immature and mature rabbits.7.562Citations (PDF)
200Identification of promoter elements required for in vitro transcription of hamster 3-hydroxy-3-methylglutaryl coenzyme A reductase gene.7.582Citations (PDF)
201Duplication of seven exons in LDL receptor gene caused by Alu-Alu recombination in a subject with familial hypercholesterolemia
Cell, 1987, 48, 827-835
33.6312Citations (PDF)
202Deletion in the Gene for the Low-Density-Lipoprotein Receptor in a Majority of French Canadians with Familial Hypercholesterolemia34.5293Citations (PDF)
20342 bp element from LDL receptor gene confers end-product repression by sterols when inserted into viral TK promoter
Cell, 1987, 48, 1061-1069
33.6229Citations (PDF)
204Acid-dependent ligand dissociation and recycling of LDL receptor mediated by growth factor homology region
Nature, 1987, 326, 760-765
37.9420Citations (PDF)
205First cysteine-rich repeat in ligand-binding domain of low density lipoprotein receptor binds Ca2+ and monoclonal antibodies, but not lipoproteins.
Journal of Biological Chemistry, 1987, 262, 17443-17449
2.2117Citations (PDF)
206Self-association of the low density lipoprotein receptor mediated by the cytoplasmic domain.
Journal of Biological Chemistry, 1987, 262, 16127-16134
2.294Citations (PDF)
207Purification of catalytic subunit of low density lipoprotein receptor kinase and identification of heat-stable activator protein.
Journal of Biological Chemistry, 1987, 262, 9367-9373
2.219Citations (PDF)
208Three direct repeats and a TATA-like sequence are required for regulated expression of the human low density lipoprotein receptor gene.
Journal of Biological Chemistry, 1987, 262, 10773-10779
2.2171Citations (PDF)
209Phosphorylation of serine 833 in cytoplasmic domain of low density lipoprotein receptor by a high molecular weight enzyme resembling casein kinase II.
Journal of Biological Chemistry, 1987, 262, 1344-1351
2.257Citations (PDF)
210The Lebanese allele at the low density lipoprotein receptor locus. Nonsense mutation produces truncated receptor that is retained in endoplasmic reticulum.2.2253Citations (PDF)
211The J. D. mutation in familial hypercholesterolemia: Amino acid substitution in cytoplasmic domain impedes internalization of LDL receptors
Cell, 1986, 45, 15-24
33.6384Citations (PDF)
212Increased mRNA for low density lipoprotein receptor in livers of rabbits treated with 17 alpha-ethinyl estradiol.7.5201Citations (PDF)
213Exon-Alu recombination deletes 5 kilobases from the low density lipoprotein receptor gene, producing a null phenotype in familial hypercholesterolemia.7.5155Citations (PDF)
214Mevinolin, an inhibitor of cholesterol synthesis, induces mRNA for low density lipoprotein receptor in livers of hamsters and rabbits.7.5316Citations (PDF)
215A Receptor-Mediated Pathway for Cholesterol Homeostasis(Nobel Lecture)4.759Citations (PDF)
216Ein Rezeptor-vermittelter Stoffwechselweg für die Cholesterin-Homöostase (Nobel-Vortrag)
Angewandte Chemie, 1986, 98, 579-599
1.414Citations (PDF)
217Cytoplasmic 3-hydroxy-3-methylglutaryl coenzyme A synthase from the hamster. I. Isolation and sequencing of a full-length cDNA.
Journal of Biological Chemistry, 1986, 261, 3710-3716
2.2106Citations (PDF)
218Cytoplasmic 3-hydroxy-3-methylglutaryl coenzyme A synthase from the hamster. II. Isolation of the gene and characterization of the 5' flanking region.
Journal of Biological Chemistry, 1986, 261, 3717-3724
2.251Citations (PDF)
219Deletion of clustered O-linked carbohydrates does not impair function of low density lipoprotein receptor in transfected fibroblasts.
Journal of Biological Chemistry, 1986, 261, 2828-2838
2.2166Citations (PDF)
220Deletion of exon encoding cysteine-rich repeat of low density lipoprotein receptor alters its binding specificity in a subject with familial hypercholesterolemia.
Journal of Biological Chemistry, 1986, 261, 13114-13120
2.2127Citations (PDF)
221The LDL Receptor in Familial Hypercholesterolemia: Use of Human Mutations to Dissect a Membrane Protein1.643Citations (PDF)
222On the origin and prevention of PAIDS (Paralyzed Academic Investigator's Disease Syndrome).10.658Citations (PDF)
223Familial Hypercholesterolemia: A Genetic Receptor Disease
Hospital Practice (1995), 1985, 20, 35-46
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224Receptor-Mediated Endocytosis: Concepts Emerging from the LDL Receptor System39.81,601Citations (PDF)
225Membrane-bound domain of HMG CoA reductase is required for sterol-enhanced degradation of the enzyme
Cell, 1985, 41, 249-258
33.6375Citations (PDF)
226The Receptor Model for Transport of Cholesterol in Plasmaa4.029Citations (PDF)
227Internalization-defective LDL receptors produced by genes with nonsense and frameshift mutations that truncate the cytoplasmic domain
Cell, 1985, 41, 735-743
33.6317Citations (PDF)
2285′ end of hmg CoA reductase gene contains sequences responsible for cholesterol-mediated inhibition of transcription
Cell, 1985, 42, 203-212
33.6193Citations (PDF)
229Multiple mRNAs for 3-hydroxy-3-methylglutaryl coenzyme A reductase determined by multiple transcription initiation sites and intron splicing sites in the 5'-untranslated region.
Journal of Biological Chemistry, 1985, 260, 10369-10377
2.2120Citations (PDF)
230Domain structure of 3-hydroxy-3-methylglutaryl coenzyme A reductase, a glycoprotein of the endoplasmic reticulum.2.2290Citations (PDF)
231Sterols Accelerate Degradation of Hamster 3-Hydroxy-3-Methylglutaryl Coenzyme A Reductase Encoded by a Constitutively Expressed cDNA2.539Citations (PDF)
232Liver Transplantation to Provide Low-Density-Lipoprotein Receptors and Lower Plasma Cholesterol in a Child with Homozygous Familial Hypercholesterolemia
New England Journal of Medicine, 1984, 311, 1658-1664
34.5463Citations (PDF)
233Nucleotide sequence of 3-hydroxy-3-methyl-glutaryl coenzyme A reductase, a glycoprotein of endoplasmic reticulum
Nature, 1984, 308, 613-617
37.9278Citations (PDF)
234How LDL Receptors Influence Cholesterol and Atherosclerosis
Scientific American, 1984, 251, 58-66
0.1365Citations (PDF)
235HMG CoA reductase: A negatively regulated gene with unusual promoter and 5′ untranslated regions
Cell, 1984, 38, 275-285
33.6564Citations (PDF)
236Increase in membrane cholesterol: A possible trigger for degradation of HMG CoA reductase and crystalloid endoplasmic reticulum in UT-1 cells
Cell, 1984, 36, 835-845
33.6117Citations (PDF)
237Domain map of the LDL receptor: Sequence homology with the epidermal growth factor precursor
Cell, 1984, 37, 577-585
33.6391Citations (PDF)
238The human LDL receptor: A cysteine-rich protein with multiple Alu sequences in its mRNA
Cell, 1984, 39, 27-38
33.61,480Citations (PDF)
239Assignment of the human gene for the low density lipoprotein receptor to chromosome 19: synteny of a receptor, a ligand, and a genetic disease.7.5119Citations (PDF)
240Visualization of acidic organelles in intact cells by electron microscopy.7.5255Citations (PDF)
241Imaging of hepatic low density lipoprotein receptors by radionuclide scintiscanning in vivo.7.528Citations (PDF)
242Progress in understanding the LDL receptor and HMG-CoA reductase, two membrane proteins that regulate the plasma cholesterol
Journal of Lipid Research, 1984, 25, 1450-1461
3.6353Citations (PDF)
243Use of monoclonal anti-receptor antibodies to probe the expression of the low density lipoprotein receptor in tissues of normal and Watanabe heritable hyperlipidemic rabbits.10.656Citations (PDF)
244LIPOPROTEIN METABOLISM IN THE MACROPHAGE: Implications for Cholesterol Deposition in Atherosclerosis17.42,254Citations (PDF)
245Recycling receptors: The round-trip itinerary of migrant membrane proteins
Cell, 1983, 32, 663-667
33.6808Citations (PDF)
246The LDL receptor locus in familial hypercholesterolemia: Multiple mutations disrupt transport and processing of a membrane receptor
Cell, 1983, 32, 941-951
33.6278Citations (PDF)
247Defective Lipoprotein Receptors and Atherosclerosis34.5480Citations (PDF)
2483-Hydroxy-3-methylglutaryl-CoA reductase: a transmembrane glycoprotein of the endoplasmic reticulum with N-linked "high-mannose" oligosaccharides.7.5143Citations (PDF)
249cDNA cloning of the bovine low density lipoprotein receptor: feedback regulation of a receptor mRNA.7.5159Citations (PDF)
250Mevinolin and colestipol stimulate receptor-mediated clearance of low density lipoprotein from plasma in familial hypercholesterolemia heterozygotes.7.5505Citations (PDF)
251Biosynthesis of N- and O-linked oligosaccharides of the low density lipoprotein receptor.
Journal of Biological Chemistry, 1983, 258, 15261-15273
2.2346Citations (PDF)
252Mutant clone of Chinese hamster ovary cells lacking 3-hydroxy-3 -methylglutaryl coenzyme A reductase.
Journal of Biological Chemistry, 1983, 258, 13875-13881
2.260Citations (PDF)
253Visualization of lipoprotein receptors by ligand blotting.
Journal of Biological Chemistry, 1983, 258, 4606-4611
2.2256Citations (PDF)
254Regulation of 3-hydroxy-3-methylglutaryl coenzyme A reductase and its mRNA in rat liver as studied with a monoclonal antibody and a cDNA probe.
Journal of Biological Chemistry, 1983, 258, 8450-8455
2.2192Citations (PDF)
255Amplification of the gene for 3-hydroxy-3-methylglutaryl coenzyme A reductase, but not for the 53-kDa protein, in UT-1 cells.
Journal of Biological Chemistry, 1983, 258, 8462-8469
2.2185Citations (PDF)
256Cholesterol synthesis in vivo and in vitro in the WHHL rabbit, an animal with defective low density lipoprotein receptors
Journal of Lipid Research, 1983, 24, 469-480
3.688Citations (PDF)
257Lipoprotein receptors in the liver. Control signals for plasma cholesterol traffic.10.6503Citations (PDF)
258Ultrastructural analysis of crystalloid endoplasmic reticulum in ut-1 cells and its disappearance in response to cholesterol
Journal of Cell Science, 1983, 63, 1-20
2.493Citations (PDF)
259Delayed clearance of very low density and intermediate density lipoproteins with enhanced conversion to low density lipoprotein in WHHL rabbits.7.5197Citations (PDF)
260The LDL Receptor Defect in Familial Hypercholesterolemia: Implications for Pathogenesis and Therapy3.1186Citations (PDF)
261Molecular cloning of 3-hydroxy-3-methylglutaryl coenzyme a reductase and evidence for regulation of its mRNA.7.5144Citations (PDF)
262Recycling of Cell-surface Receptors: Observations from the LDL Receptor System1.670Citations (PDF)
263Regulation of synthesis and degradation of 3-hydroxy-3-methylglutaryl-coenzyme A reductase by low density lipoprotein and 25-hydroxycholesterol in UT-1 cells.7.5205Citations (PDF)
264Appearance of crystalloid endoplasmic reticulum in compactin-resistant Chinese hamster cells with a 500-fold increase in 3-hydroxy-3-methylglutaryl-coenzyme A reductase.7.5247Citations (PDF)
265Hepatic uptake of chylomicron remnants in WHHL rabbits: a mechanism genetically distinct from the low density lipoprotein receptor.7.5252Citations (PDF)
266Identification of a cholesterol-regulated 53,000-dalton cytosolic protein in UT-1 cells and cloning of its cDNA.7.530Citations (PDF)
267Posttranslational processing of the LDL receptor and its genetic disruption in familial hypercholesterolemia
Cell, 1982, 30, 715-724
33.6250Citations (PDF)
268Immunoblot analysis of low density lipoprotein receptors in fibroblasts from subjects with familial hypercholesterolemia.
Journal of Biological Chemistry, 1982, 257, 13150-13156
2.2163Citations (PDF)
269Biochemical and genetic studies of the apoprotein E secreted by mouse macrophages and human monocytes.
Journal of Biological Chemistry, 1982, 257, 9788-9795
2.2278Citations (PDF)
270Purification of the low density lipoprotein receptor, an acidic glycoprotein of 164,000 molecular weight.
Journal of Biological Chemistry, 1982, 257, 2664-2673
2.2348Citations (PDF)
271Isolation of Chinese hamster cell mutants defective in the receptor-mediated endocytosis of low density lipoprotein
Journal of Molecular Biology, 1981, 150, 167-184
4.1127Citations (PDF)
272Mouse macrophages synthesize and secrete a protein resembling apolipoprotein E.7.5297Citations (PDF)
273Deficiency of low density lipoprotein receptors in liver and adrenal gland of the WHHL rabbit, an animal model of familial hypercholesterolemia.7.5236Citations (PDF)
274Regulatory role for hepatic low density lipoprotein receptors in vivo in the dog.7.5394Citations (PDF)
275Saturation and suppression of hepatic lipoprotein receptors: a mechanism for the hypercholesterolemia of cholesterol-fed rabbits.7.5289Citations (PDF)
276Feedback Regulation of 3-Hydroxy-3-Methylglutaryl Coenzyme A Reductase in Livers of Mice Treated with Mevinolin, a Competitive Inhibitor of the Reductase10.6294Citations (PDF)
277.beta.-Carotene as a probe of lipid domains of reconstituted human plasma low-density lipoprotein: induced circular dichroism
Biochemistry, 1980, 19, 4706-4712
2.416Citations (PDF)
278The LDL Receptor Locus and the Genetics of Familial Hypercholesterolemia
Annual Review of Genetics, 1979, 13, 259-289
7.2224Citations (PDF)
279Low Density Lipoprotein Receptors in Bovine Adrenal Cortex. I. Receptor-Mediated Uptake of Low Density Lipoprotein and Utilization of Its Cholesterol for Steroid Synthesis in Cultured Adrenocortical Cells*
Endocrinology, 1979, 104, 599-609
2.5170Citations (PDF)
280Low Density Lipoprotein Receptors in Bovine Adrenal Cortex. II. Low Density Lipoprotein Binding to Membranes Prepared from Fresh Tissue*
Endocrinology, 1979, 104, 610-616
2.5174Citations (PDF)
281Synthesis of ubiquinone and cholesterol in human fibroblasts: Regulation of a branched pathway2.8155Citations (PDF)
282Binding site on macrophages that mediates uptake and degradation of acetylated low density lipoprotein, producing massive cholesterol deposition7.52,284Citations (PDF)
283Demonstration of low density lipoprotein receptors in mouse teratocarcinoma stem cells and description of a method for producing receptor-deficient mutant mice7.527Citations (PDF)
284Squalene synthetase activity in human fibroblasts: Regulation via the low density lipoprotein receptor7.593Citations (PDF)
285Active and inactive forms of 3-hydroxy-3-methylglutaryl coenzyme A reductase in the liver of the rat. Comparison with the rate of cholesterol synthesis in different physiological states.
Journal of Biological Chemistry, 1979, 254, 5144-5149
2.2304Citations (PDF)
286Separate mechanisms for the uptake of high and low density lipoproteins by mouse adrenal gland in vivo.
Journal of Biological Chemistry, 1979, 254, 5498-5505
2.2144Citations (PDF)
287Occurrence of low density lipoprotein receptors within large pits on the surface of human fibroblasts as demonstrated by freeze-etching3.1109Citations (PDF)
288Howard Hughes Medical Institute
New England Journal of Medicine, 1978, 299, 1278-1280
34.50Citations (PDF)
289Inhibition of cholesteryl ester formation in human fibroblasts by an analogue of 7-ketocholesterol and by progesterone7.581Citations (PDF)
290Receptor-mediated uptake of low density lipoprotein reconstituted with 25-hydroxycholesteryl oleate suppresses 3-hydroxy-3-methylglutaryl-coenzyme A reductase and inhibits growth of human fibroblasts7.547Citations (PDF)
291Regulation of cholesterol synthesis in rat adrenal gland through coordinate control of 3-hydroxy-3-methylglutaryl coenzyme A synthase and reductase activities.7.597Citations (PDF)
292Specific, saturable, and high affinity binding of 125I-low density lipoprotein to glass beads2.142Citations (PDF)
293Role of the coated endocytic vesicle in the uptake of receptor-bound low density lipoprotein in human fibroblasts
Cell, 1977, 10, 351-364
33.6667Citations (PDF)
294Genetics of the LDL receptor: Evidence that the mutations affecting binding and internalization are allelic
Cell, 1977, 12, 629-641
33.6167Citations (PDF)
295Atherosclerosis: The low-density lipoprotein receptor hypothesis9.1353Citations (PDF)
296Lipoprotein-mediated regulation of 3-hydroxy-3-methylglutaryl coenzyme A reductase activity and cholesteryl ester metabolism in the adrenal gland of the rat.
Journal of Biological Chemistry, 1977, 252, 1771-1779
2.2197Citations (PDF)
297The low density lipoprotein pathway in human fibroblasts6.73Citations (PDF)
298The low density lipoprotein pathway in human fibroblasts6.713Citations (PDF)
299Analysis of a mutant strain of human fibroblasts with a defect in the internalization of receptor-bound low density lipoprotein
Cell, 1976, 9, 663-674
33.6228Citations (PDF)
300Heterozygous familial hypercholesterolemia: Failure of normal allele to compensate for mutant allele at a regulated genetic locus
Cell, 1976, 9, 195-203
33.677Citations (PDF)
301Release of low density lipoprotein from its cell surface receptor by sulfated glycosaminoglycans
Cell, 1976, 7, 85-95
33.6635Citations (PDF)
302Evidence for regulation of 3-hydroxy-3-methylglutaryl coenzyme A reductase activity and cholesterol synthesis in nonhepatic tissues of rat.7.575Citations (PDF)
303Familial Hypercholesterolemia: A Genetic Defect in the Low-Density Lipoprotein Receptor
New England Journal of Medicine, 1976, 294, 1386-1390
34.5194Citations (PDF)
304Familial pseudomembranous colitis and its relation to lincomycin therapy0.810Citations (PDF)
305Genetic and hormonal control of male sexual differentiation4.134Citations (PDF)
306Prolonged hypouricemia associated with acute chlorprothixene ingestion
Arthritis and Rheumatism, 1975, 18, 739-742
6.19Citations (PDF)
307Regulation of the activity of the low density lipoprotein receptor in human fibroblasts
Cell, 1975, 6, 307-316
33.6478Citations (PDF)
308Familial hypercholesterolemia
American Journal of Medicine, 1975, 58, 147-150
2.0113Citations (PDF)
309Linkage investigation of a large family with Reifenstein's syndrome
Clinical Genetics, 1975, 7, 342-344
2.14Citations (PDF)
310Familial Incomplete Male Pseudohermaphroditism, Type 1
New England Journal of Medicine, 1974, 290, 1097-1103
34.5202Citations (PDF)
311Familial Incomplete Male Pseudohermaphroditism, Type 234.5634Citations (PDF)
312Familial hypercholesterolemia: Defective binding of lipoproteins to cultured fibroblasts associated with impaired regulation of 3-hydroxy-3-methylglutaryl coenzyme a reductase activity7.5565Citations (PDF)
313Esterification of Low Density Lipoprotein Cholesterol in Human Fibroblasts and Its Absence in Homozygous Familial Hypercholesterolemia7.5283Citations (PDF)
314Suppression of 3-Hydroxy-3-methylglutaryl Coenzyme A Reductase Activity and Inhibition of Growth of Human Fibroblasts by 7-Ketocholesterol
Journal of Biological Chemistry, 1974, 249, 7306-7314
2.2478Citations (PDF)
315Binding and Degradation of Low Density Lipoproteins by Cultured Human Fibroblasts
Journal of Biological Chemistry, 1974, 249, 5153-5162
2.21,393Citations (PDF)
316Regulation of 3-Hydroxy-3-methylglutaryl Coenzyme A Reductase Activity in Cultured Human Fibroblasts2.2526Citations (PDF)
317Regulation of 3-Hydroxy-3-Methylglutaryl Coenzyme A Reductase Activity in Human Fibroblasts by Lipoproteins7.5333Citations (PDF)
318Familial Hypercholesterolemia: Identification of a Defect in the Regulation of 3-Hydroxy-3-Methylglutaryl Coenzyme A Reductase Activity Associated with Overproduction of Cholesterol7.5427Citations (PDF)
319Genetic Aspects of Hyperlipidemia in Coronary Heart Disease
Hospital Practice (1995), 1973, 8, 53-65
1.011Citations (PDF)
320Studies on the pathogenesis of the pseudohermaphroditism in the mouse with testicular feminization10.6150Citations (PDF)
321Three pools of plasma membrane cholesterol and their relation to cholesterol homeostasis
ELife, 0, 3,
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322BHLHE40, a third transcription factor required for insulin induction of SREBP-1c mRNA in rodent liver
ELife, 0, 7,
0.731Citations (PDF)
323Identification of NPC1 as the target of U18666A, an inhibitor of lysosomal cholesterol export and Ebola infection
ELife, 0, 4,
0.7329Citations (PDF)
324Lysosomal cholesterol export reconstituted from fragments of Niemann-Pick C1
ELife, 0, 7,
0.743Citations (PDF)