يعرض 1 - 20 نتائج من 44 نتيجة بحث عن '"Nothwehr, Steven F"', وقت الاستعلام: 0.48s تنقيح النتائج
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    المساهمون: Summer Undergraduate Research and Creative Achievements Forum (2005 : University of Missouri--Columbia), University of Missouri-Columbia. Office of Undergraduate Research

    Relation: 2005 Summer Undergraduate Research and Creative Achievements Forum (MU); University of Missouri-Columbia. Office of Undergraduate Research. Undergraduate Research and Creative Achievements Forum; http://hdl.handle.net/10355/2137

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    Conference

    المؤلفون: Faust, Tyler, Nothwehr, Steven F.

    المساهمون: Summer Undergraduate Research and Creative Achievements Forum (2007 : University of Missouri--Columbia), University of Missouri-Columbia. Office of Undergraduate Research

    مصطلحات موضوعية: cell biology, intracellular protein trafficking

    Relation: University of Missouri-Columbia. Office of Undergraduate Research. Undergraduate Research and Creative Achievements Forum; http://hdl.handle.net/10355/1007

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    المساهمون: Summer Undergraduate Research and Creative Achievements Forum (2007 : University of Missouri--Columbia), University of Missouri-Columbia. Office of Undergraduate Research

    مصطلحات موضوعية: eukaryotic cells, amino acids

    Relation: University of Missouri-Columbia. Office of Undergraduate Research. Undergraduate Research and Creative Achievements Forum; http://hdl.handle.net/10355/1148

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    المصدر: Protein Targeting, Transport, and Translocation ; page 322-357 ; ISBN 9780122007316

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    المساهمون: Division of Metabolism, Endocrinology & Diabetes, University of Michigan, 5560 MSRB2, 1150 W. Medical Center Drive, Ann Arbor, MI 48109, USA, Division of Biological Sciences, University of Missouri, 401 Tucker Hall, Columbia, MO 65211, USA, Ophthalmology and Visual Sciences, University of Wisconsin Medical School, 406 Science Drive, Madison, WI 53711, USA, Institute of Technical Biochemistry, University of Stuttgart, Allmandring 31, D-70569 Stuttgart, Germany

    وصف الملف: 835399 bytes; 3109 bytes; application/pdf; text/plain

    Relation: Zhao, Xiang; Nothwehr, Steven; Lara-Lemus, Roberto; Zhang, Bao-yan; Peter, Harald; Arvan, Peter (2007). "Dominant-Negative Behavior of Mammalian Vps35 in Yeast Requires a Conserved PRLYL Motif Involved in Retromer Assembly." Traffic 8(12): 1829-1840.; https://hdl.handle.net/2027.42/71462; http://www.ncbi.nlm.nih.gov/sites/entrez?cmd=retrieve&db=pubmed&list_uids=17916227&dopt=citation; Traffic; Zhang B-y, Chang A, Kjeldsen TB, Arvan P. Intracellular retention of newly-synthesized insulin in yeast is caused by endoproteolytic processing in the Golgi complex. J Cell Biol 2001; 153: 1187 – 1197.; Seaman MN. Recycle your receptors with retromer. Trends Cell Biol 2005; 15: 68 – 75.; Hettema EH, Lewis MJ, Black MW, Pelham HR. Retromer and the sorting nexins Snx4/41/42 mediate distinct retrieval pathways from yeast endosomes. EMBO J 2003; 22: 548 – 557.; Griffin CT, Trejo J, Magnuson T. Genetic evidence for a mammalian retromer complex containing sorting nexins 1 and 2. Proc Natl Acad Sci U S A 2005; 102: 15173 – 15177.; Seaman MN, McCaffery JM, Emr SD. A membrane coat complex essential for endosome-to-Golgi retrograde transport in yeast. J Cell Biol 1998; 142: 665 – 681.; Seaman MN, Williams HP. Identification of the functional domains of yeast sorting nexins Vps5p and Vps17p. Mol Biol Cell 2002; 13: 2826 – 2840.; Nothwehr SF, Ha SA, Bruinsma P. Sorting of yeast membrane proteins into an endosome-to-Golgi pathway involves direct interaction of their cytosolic domains with Vps35p. J Cell Biol 2000; 151: 297 – 310.; Arighi CN, Hartnell LM, Aguilar RC, Haft CR, Bonifacino JS. Role of the mammalian retromer in sorting of the cation-independent mannose 6-phosphate receptor. J Cell Biol 2004; 165: 123 – 133.; Reddy JV, Seaman MN. Vps26p, a component of retromer, directs the interactions of Vps35p in endosome-to-Golgi retrieval. Mol Biol Cell 2001; 12: 3242 – 3256.; Coudreuse DY, Roel G, Betist MC, Destree O, Korswagen HC. Wnt gradient formation requires retromer function in Wnt-producing cells. Science 2006; 312: 921 – 924.; Prasad BC, Clark SG. Wnt signaling establishes anteroposterior neuronal polarity and requires retromer in C. elegans. Development 2006; 133: 1757 – 1766.; Edgar AJ, Polak JM. Human homologues of yeast vacuolar protein sorting 29 and 35. Biochem Biophys Res Commun 2000; 277: 622 – 630.; Oliviusson P, Heinzerling O, Hillmer S, Hinz G, Tse YC, Jiang L, Robinsona DG. Plant retromer, localized to the prevacuolar compartment and microvesicles in Arabidopsis, may interact with vacuolar sorting receptors. Plant Cell 2006; 18: 1239 – 1252.; Seaman MN. Cargo-selective endosomal sorting for retrieval to the Golgi requires retromer. J Cell Biol 2004; 165: 111 – 122.; Haft CR, de la Luz Sierra M, Bafford R, Lesniak MA, Barr VA, Taylor SI. Human orthologs of yeast vacuolar protein sorting proteins Vps26, 29, and 35: assembly into multimeric complexes. Mol Biol Cell 2000; 11: 4105 – 4116.; Collins BM, Skinner CF, Watson PJ, Seaman MN, Owen DJ. Vps29 has a phosphoesterase fold that acts as a protein interaction scaffold for retromer assembly. Nat Struct Mol Biol 2005; 12: 594 – 602.; Restrepo R, Zhao X, Peter H, Zhang B-y, Arvan P, Nothwehr SF. Structural features of Vps35p involved in interaction with other subunits of the retromer complex. Traffic 2007; doi:10.1111/j.1600-0854.2007.00659.x.; Seaman MN, Marcusson EG, Cereghino JL, Emr SD. Endosome to Golgi retrieval of the vacuolar protein sorting receptor, Vps10p, requires the function of the VPS29, VPS30, and VPS35 gene products. J Cell Biol 1997; 137: 79 – 92.; Verges M, Luton F, Gruber C, Tiemann F, Reinders LG, Huang L, Burlingame AL, Haft CR, Mostov KE. The mammalian retromer regulates transcytosis of the polymeric immunoglobulin receptor. Nat Cell Biol 2004; 6: 763 – 769.; Ferraro F, Eipper BA, Mains RE. Retrieval and reuse of pituitary secretory granule proteins. J Biol Chem 2005; 280: 25424 – 25441.; Milgram SL, Mains RE, Eipper BA. Identification of routing determinants in the cytosolic domain of a secretory granule-associated integral membrane protein. J Biol Chem 1996; 271: 17526 – 17535.; Wasmeier C, Hutton JC. Molecular cloning of phogrin, a protein-tyrosine phosphatase homologue localized to insulin secretory granule membranes. J Biol Chem 1996; 271: 18161 – 18170.; Sherman F, Hicks JB, Fink GR. Methods in Yeast Genetics: A Laboratory Manual. Cold Spring Harbor, NY: Cold Spring Harbor Laboratory Press; 1986.; Nothwehr SF, Conibear E, Stevens TH. Golgi and vacuolar membrane proteins reach the vacuole in vps1 mutant yeast cells via the plasma membrane. J Cell Biol 1995; 129: 35 – 46.; Longtine MS, McKenzie A, Demarini DJ, Shah NG, Wach A, Brachat A, Philippsen P, Pringle JR. Additional modules for versatile and economical PCR-based gene deletion and modification in Saccharomyces cerevisiae. Yeast 1998; 14: 953 – 961.; Spelbrink RG, Nothwehr SF. The yeast GRD20 gene is required for protein sorting in the trans-Golgi network/endosomal system and for polarization of the actin cytoskeleton. Mol Biol Cell 1999; 10: 4263 – 4281.; Schneider BL, Seufert W, Steiner B, Yang QH, Futcher AB. Use of polymerase chain reaction epitope tagging for protein tagging in Saccharomyces cerevisiae. Yeast 1995; 11: 1265 – 1274.; Sikorski RS, Hieter P. A system of shuttle vectors and yeast host strains designed for efficient manipulation of DNA in Saccharomyces cerevisiae. Genetics 1989; 122: 19 – 27.; Warner JR. Labeling of RNA and phosphoproteins in Saccharomyces cerevisiae. Methods Enzymol 1991; 194: 423 – 428.; Nothwehr SF, Hindes AE. The yeast VPS5/GRD2 gene encodes a sorting nexin-1-like protein required for localizing membrane proteins to the late Golgi. J Cell Sci 1997; 110: 1063 – 1072.; Chang A, Slayman CW. Maturation of the yeast plasma membrane [H+]ATPase involves phosphorylation during intracellular transport. J Cell Biol 1991; 115: 289 – 295.; Asfari M, Janjic D, Meda P, Li G, Halban PA, Wollheim CB. Establishment of 2-mercaptoethanol-dependent differentiated insulin-secreting cell lines. Endocrinology 1992; 130: 167 – 178.; Johnston HD, Foote C, Santeford A, Nothwehr SF. Golgi-to-late endosome trafficking of the yeast pheromone processing enzyme Ste13p is regulated by a phosphorylation site in its cytosolic domain. Mol Biol Cell 2005; 16: 1456 – 1468.; Thomas BJ, Rothstein R. Elevated recombination rates in transcriptionally active DNA. Cell 1989; 56: 619 – 630.; Kornitzer D, Raboy B, Kulka RG, Fink GR. Regulated degradation of the transcription factor Gcn4. EMBO J 1994; 13: 6021 – 6030.; Luo W, Chang A. Novel genes involved in endosomal traffic in yeast revealed by suppression of a targeting-defective plasma membrane ATPase mutant. J Cell Biol 1997; 138: 731 – 746.

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