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Ainscough, R., Abbott, A., Bardill, S., Abu-Threideh, J., Barlow, K., Ahrens, C., Basham, V., Alexander, E., Baynes, C., Ali, J. et al (1998). Genome sequence of the nematode C. elegans: A platform for investigating biology the C. elegans sequencing consortium [In Process Citation]. Science 282, 2012-2018.[Abstract/Free Full Text]

Argraves, K. M., Battey, F. D., MacCalman, C. D., McCrae, K. R., G\214fvels, M., Kozarsky, K. F., Chappell, D. A., Strauss, J. F. and Strickland, D. K (1995). The very low density lipoprotein receptor mediates the cellularcatabolism of lipoprotein lipase and urokinase-plasminogen activator inhibitor type I complexes. J. Biol. Chem 270, 26550-26557.[Abstract/Free Full Text]

Argraves, K. M., Kozarsky, K. F., Fallon, J. T., Harpel, P. C. and Strickland, D. K (1997). The atherogenic lipoprotein Lp(a) is internalized and degraded in a process mediated by the VLDL receptor. J. Clin. Invest 100, 2170-2181.[Medline]

Ashcom, J. D., Tiller, S. E., Dickerson, K., Cravens, J. L., Argraves, W. S. and Strickland, D. K (1990). The human2-macroglobulin receptor: identification of a 420-kD cell surface glycoprotein specific for the activated conformation of 2-macroglobulin. J. Cell Biol 110, 1041-1048.[Abstract/Free Full Text]

Battey, F., G\214fvels, M. E., Fitzgerald, D. J., Argraves, W. S., Chappell, D. A., Strauss III, J. F. and Strickland, D. K (1994). The 39 kDa receptor associated protein regulates ligand binding by the very low density lipoprotein receptor. J. Biol. Chem 269, 23268-23273.[Abstract/Free Full Text]

Biemesderfer, D., Dekan, G., Aronson, P. S. and Farquhar, M. G (1993). Biosynthesis of the gp330/44-kDa Heymann nephritis antigenic complex: assembly takes place in the ER. Am. J. Physiol 264, 1011-.

Brown, M. S. and Goldstein, J. L (1979). Receptor-mediated endocytosis: Insights from the lipoprotein receptor system. Proc. Nat. Acad. Sci. USA 76, 3330-3337.[Abstract/Free Full Text]

Bu, G., Geuze, H. J., Strous, G. J. and Schwartz, A. L (1995). 39 kDa receptor-associated protein is an ER resident protein and molecular chaperone for LDL receptor-related protein. EMBO J 14, 2269-2280.[Medline]

Bu, G. and Rennke, S (1996). Receptor-associated protein is a folding chaperone for low density lipoprotein receptor-related protein. J. Biol. Chem 271, 22218-22224.[Abstract/Free Full Text]

Bujo, H., Hermann, M., Kaderli, M. O., Jacobsen, L., Sugawara, S., Nimpf, J., Yamamoto, T. and Schneider, W. J (1994). Chicken oocyte growth is mediated by an eight ligand binding repeat member of the LDL receptor family. EMBO J 13, 5165-5175.[Medline]

Christie, R. H., Chung, H., Rebeck, G. W., Strickland, D., Hyman, B. T (1996). Expression of the very low-density lipoprotein receptor (VLDL-r), an apolipoprotein-E receptor, in the central nervous system and in Alzheimer's disease. J. Neuropathol. Exp. Neurol 55, 491-498.[Medline]

Daly, N. L., Scanlon, M. J., Djordjevic, J. T., Kroon, P. A. and Smith, R (1995). Three-dimensional structure of a cysteine-rich repeat from the low-density lipoprotein receptor. Proc. Nat. Acad. Sci. USA 92, 6334-6338.[Abstract/Free Full Text]

Davis, C. G., Goldstein, J. L., Sudhof, T. C., Anderson, R. G. W., Russell, D. W. and Brown, M. S (1987). Acid-dependent ligand dissociation and recylcing of LDL receptor mediated by growth factor homology region. Nature 326, 760-765.[Medline]

Fass, D., Blacklow, S., Kim, P. S. and Berger, J. M (1997). Molecular basis of familial hypercholesterolaemia from structure of LDL receptor module [see comments]. Nature 388, 691-693.[Medline]

Frykman, P. K., Brown, M. S., Yamamoto, T., Goldstein, J. L. and Herz, J (1995). Normal plasma lipoproteins and fertility in gene-targeted mice homozygous for a disruption in the gene encoding very low density lipoprotein receptor. Proc. Nat. Acad. Sci. USA 92, 8453-8457.[Abstract/Free Full Text]

Geisow, M. J., D'Arcy, H. P. and Young, M. R (1981). Temporal changes of lysosome and phagosome pH during phagolysosome formation in macrophages: studies by fluorescence spectroscopy. J. Cell Biol 89, 645-652.[Abstract/Free Full Text]

Heegaard, C. W., Simonsen, A. C. W., Oka, K., Kjoller, L., Christensen, A., Madsen, B., Ellgaard, L., Chan, L. and Andreasen, P. A (1995). Very low density lipoprotein receptor binds and mediates endocytosis of urokinase-type plasminogen activator-type-1 plasminogen activator inhibitor complex. J. Biol. Chem 270, 20855-20861.[Abstract/Free Full Text]

Herz, J., Goldstein, J. L., Strickland, D. K., Ho, Y. K. and Brown, M. S (1991). 39-kDa protein modulates binding of ligands to low density lipoprotein receptor-related protein/2-macroglobulin receptor. J. Biol. Chem 266, 21232-21238.[Abstract/Free Full Text]

Hofmann, S. L., Eaton, D. L., Brown, M. S., McConathy, W. J., Goldstein, J. L. and Hammer, R. E (1990). Overexpression of human low density lipoprotein receptors leads to accelerated catabolism of Lp(a) lipoprotein in transgenic mice. J. Clin. Invest 85, 1542-1547.

Hoock, T. C., Peters, L. L. and Lux, S. E (1997). Isoforms of ankyrin-3 that lack the NH2-terminal repeats associate with mouse macrophage lysosomes. J. Cell Biol 136, 1059-1070.[Abstract/Free Full Text]

Horn, I. R., van den Berg, B. M. M., van der Meijden, P. Z., Pannekoek, H. and van Zonneveld, A.-J (1997). Molecular analysis of ligand binding to the second cluster of complement-type repeats fothe low density lipoprotein receptor-related protein: Evidence for an allosteric componentin receptor-associated protein mediated inhibition of ligand binding. J. Biol. Chem 272, 13608-13613.[Abstract/Free Full Text]

Iijima, H., Miyazawa, M., Sakai, J., Magoori, K., Ito, M. R., Suzuki, H., Nose, M., Kawarabayasi, Y. and Yamamoto, T. T (1998). Expression and characterization of a very low density lipoprotein receptor variant lacking the O-linked sugar region generated by alternate splicing. J. Biochem 124, 747-755.

Jensen, P. H., Moestrup, S. K. and Gliemann, J (1989). Purification of the human placental2-macroglobulin receptor. FEBS Lett 255, 275-280.[Medline]

Kounnas, M. Z., Morris, R. E., Thompson, M. R., Fitzgerald, D. J., Strickland, D. K. and Saelinger, C. B (1992). The2-macroglobulin receptor/low density lipoprotein receptor-related protein binds and internalizes Pseudomonas exotoxin A. J. Biol. Chem 267, 12420-12423.[Abstract/Free Full Text]

Kounnas, M. Z., Argraves, W. S. and Strickland, D. K (1992). The 39-kDa receptor-associated protein interacts with two members of the low density lipoprotein receptor family,2-macroglobulin receptor and glycoprotein 330. J. Biol. Chem 267, 21162-21166.[Abstract/Free Full Text]

Kounnas, M. Z., Church, F. C., Argraves, W. S. and Strickland, D. K (1996). Cellular internalization and degradation of antithrombin III-thrombin, heparin cofactor II-thrombin, and1-antitrypsin-trypsin complexes is mediated by the low density lipoprotein receptor-related protein. J. Biol. Chem 271, 6523-6529.[Abstract/Free Full Text]

Mikhailenko, I., Kounnas, M. Z. and Strickland, D. K (1995). Low density lipoprotein receptor-related protein/2-macroglobulin receptor mediates the cellular internalization and degradation of thrombospondin. A process facilitated by cell-surface proteoglycans. J. Biol. Chem 270, 9543-9549.[Abstract/Free Full Text]

Mikhailenko, I., Krylov, D., Argraves, K. M., Roberts, D. D., Liau, G. and Strickland, D. K (1997). Cellular internalization and degradation of thrombospondin-1 is mediated by the amino-terminal heparin binding domain (HBD) \320 High affinity interaction of dimeric HBD with the low density lipoprotein receptor-related protein. J. Biol. Chem 272, 6784-6791.[Abstract/Free Full Text]

Multhaupt, H. A. B., Gafvels, M. E., Kariko, K., Jin, H., Arenas-Elliott, C., Goldman, B. I., Strauss, J. F. I., Angelin, B., Warhol, M. J. and McCrae, K. R (1996). Expression of very low density lipoprotein receptor in the vascular wall: Analysis of human tissues by in situ hybridizaiton and immunohistochemistry. Am. J. Pathol 148, 1985-1997.[Abstract]

Rettenberger, P. M., Oka, K., Ellgaard, L., Petersen, H. H., Christensen, A., Martensen, P. M., Monard, D., Etzerodt, M., Chan, L. and Andreasen, P. A (1999). Ligand binding properties of the very low density lipoprotein receptor. Absence of the third complement-type repeat endoded by exon 4 is associated with reduced binding of Mr 40, 000 receptor associated protein. J. Biol. Chem 274, 8973-8980.[Abstract/Free Full Text]

Russell, D. W., Brown, M. S. and Goldstein, J. L (1989). Different commbinations of cyteine-rich repeats mediate binding of LDL receptor to different proteins. J. Biol. Chem 264, 21682-21688.[Abstract/Free Full Text]

Sakai, J., Hoshino, A., Takahashi, S., Miura, Y., Ishii, H., Suzuki, H., Kawarabayasi, Y. and Yamamoto, T (1994). Structure, chromosome location, and expression of the human very low density lipoprotein receptor gene. J. Biol. Chem 269, 2173-2182.[Abstract/Free Full Text]

Schwartz, A., Fridovich, S. E. and Lodish, H. F (1982). Kinetics of Internalization and Recycling of the Asialoglycoprotein Receptor in a Hepatoma Cell Line. J. Biol. Chem 257, 4230-4237.[Free Full Text]

Simmons, T., Newhouse, Y. M., Arnold, K. S., Innerarity, T. L. and Weisgraber, K. H (1997). Human low density lipoprotein receptor fragment. Successful refolding of a functionally active ligand-binding domain produced in Escherichia coli. J. Biol. Chem 272, 25531-25536.[Abstract/Free Full Text]

Simonsen, A. C. W., Heegard, C. W., Rasmussen, L. K., Ellgaard, L., Kjoller, L., Christensen, A., Etzerodt, M. and Andreasen, P. A (1994). Very low density lipoprotein receptor from mammary gland and mammary epithelial cell lines binds and mediates endocytosis of Mr 40000 receptor associated protein. FEBS Lett 354, 279-283.[Medline]

Takahashi, S., Kawarabayasi, Y., Nakai, T., Sakai, J. and Yamamoto, T (1992). Rabbit very low density lipoprotein receptor: a low density lipoprotein receptor-like protein with distinct ligand specificity. Proc. Nat. Acad. Sci. USA 89, 9252-9256.[Abstract/Free Full Text]

Takahashi, S., Suzuki, J., Kohno, M., Oida, K., Tamai, T., Miyabo, S., Yamamoto, T. and Nakai, T (1995). Enhancement of the binding of triglyceride-rich lipoproteins to the very low density lipoprotein receptor by apolipoprotein E and lipoprotein lipase. J. Biol. Chem 270, 15747-15754.[Abstract/Free Full Text]

Webb, J. C., Sun, X.-M., Patel, D. D., McCarthy, S. N., Knight, B. L. and Soutar, A. K (1992). Characterization of two new point mutations in the low density lipoprotein receptor genes of an English patient with homozygous familial hypercholesterolemia. J. Lipid Res 33, 689-698.[Abstract]

Williams, S. E., Ashcom, J. D., Argraves, W. S. and Strickland, D. K (1992). A novel mechanism for controlling the activity of2-macroglobulin receptor/low density lipoprotein receptor-related protein. Multiple regulatory sites for 39-kDa receptor-associated protein. J. Biol. Chem 267, 9035-9040.[Abstract/Free Full Text]

Willnow, T. E., Armstrong, S. A., Hammer, R. E. and Herz, J (1995). Functional expression of low density lipoprotein receptor-related protein is controlled by receptro-associated protein in vivo. Proc. Nat. Acad Sci. USA 92, 4537-4541.[Abstract/Free Full Text]

Wittmaack, F. M., G\214fvels, M., Bronner, M., Matsuo, H., McCrae, K., Tomaszewski, J., Robinson, S. L., Strickland, D. K. and Strauss, J. F. I (1995). Localization and regulation of the human VLDL/ApoE receptor: Trophoblast expression predicts a role for the receptor in placental lipid transport. Endocrinology 136, 340-348.[Abstract]

Wyne, K. L., Pathak, K., Seabra, M. C. and Hobbs, H. H (1996). Expression of the VLDL receptor in endothelial cells. Arterioscler. Thromb Vasc. Biol 16, 407-415.[Abstract/Free Full Text]

Yochem, J. and Greenwald, I (1993). A gene for a low density lipoprotein receptor-related protein in the nematode Caenorhabditis elegans. Proc. Nat. Acad. Sci. USA 90, 4572-4576.[Abstract/Free Full Text]




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