Pathway for polyarginine entry into mammalian cells.
暂无分享,去创建一个
[1] R. Dwek,et al. Glycobiology , 2018, Biochimie.
[2] R. Parekh,et al. Biochemical characterization of the active heterodimer form of human heparanase (Hpa1) protein expressed in insect cells. , 2003, The Biochemical journal.
[3] M. Johansson,et al. Cell surface adherence and endocytosis of protein transduction domains. , 2003, Molecular therapy : the journal of the American Society of Gene Therapy.
[4] J. Whitton,et al. "Translocatory proteins" and "protein transduction domains": a critical analysis of their biological effects and the underlying mechanisms. , 2003, Molecular therapy : the journal of the American Society of Gene Therapy.
[5] E. Le Cam,et al. The Cationic Amphipathic α-Helix of HIV-1 Viral Protein R (Vpr) Binds to Nucleic Acids, Permeabilizes Membranes, and Efficiently Transfects Cells* , 2003, The Journal of Biological Chemistry.
[6] M. Lindsay,et al. Protein transduction domains: are they delivering? , 2003, Trends in pharmacological sciences.
[7] S. Dowdy,et al. Protein transduction technology offers novel therapeutic approach for brain ischemia. , 2003, Trends in pharmacological sciences.
[8] Jean-Philippe Richard,et al. Cellular uptake and intracellular fate of antisense oligonucleotides. , 2003, Current opinion in molecular therapeutics.
[9] E. Vivés,et al. TAT peptide internalization: seeking the mechanism of entry. , 2003, Current protein & peptide science.
[10] M. Belting. Heparan sulfate proteoglycan as a plasma membrane carrier. , 2003, Trends in biochemical sciences.
[11] B. L. Wylie,et al. Oligocarbamate molecular transporters: design, synthesis, and biological evaluation of a new class of transporters for drug delivery. , 2002, Journal of the American Chemical Society.
[12] P. Dervan,et al. Cellular uptake of N-methylpyrrole/N-methylimidazole polyamide-dye conjugates. , 2002, Bioorganic & medicinal chemistry.
[13] Simon C Watkins,et al. Efficiency of Protein Transduction Is Cell Type-dependent and Is Enhanced by Dextran Sulfate* , 2002, The Journal of Biological Chemistry.
[14] J. Chmielewski,et al. Cellular import mediated by nuclear localization signal Peptide sequences. , 2002, Chemistry & biology.
[15] B. L. Wylie,et al. Arginine-rich molecular transporters for drug delivery: role of backbone spacing in cellular uptake. , 2002, Journal of medicinal chemistry.
[16] S. Futaki,et al. Translocation of branched-chain arginine peptides through cell membranes: flexibility in the spatial disposition of positive charges in membrane-permeable peptides. , 2002, Biochemistry.
[17] T. Itagaki,et al. Effect of replacing the aspartic acid/glutamic acid residues of bullfrog sialic acid binding lectin with asparagine/glutamine and arginine on the inhibition of cell proliferation in murine leukemia P388 cells. , 2002, Biological & pharmaceutical bulletin.
[18] K. Przekop,et al. Molecular vehicles for targeted drug delivery. , 2002, Bioconjugate chemistry.
[19] L. Plesniak,et al. Transient vesicle leakage initiated by a synthetic apoptotic peptide derived from the death domain of neurotrophin receptor, p75NTR. , 2002, The journal of peptide research : official journal of the American Peptide Society.
[20] D. Seebach,et al. Cellular Uptake Studies with β‐Peptides , 2002 .
[21] M. Johansson,et al. Positively charged DNA-binding proteins cause apparent cell membrane translocation. , 2002, Biochemical and biophysical research communications.
[22] S. Futaki,et al. Possible Existence of Common Internalization Mechanisms among Arginine-rich Peptides* , 2002, The Journal of Biological Chemistry.
[23] Ronald T. Raines,et al. Translocation of a beta-peptide across cell membranes. , 2002, Journal of the American Chemical Society.
[24] T. Bártfai,et al. Cargo delivery kinetics of cell-penetrating peptides. , 2001, Biochimica et biophysica acta.
[25] M. Caffrey,et al. Heparin binding by the HIV‐1 tat protein transduction domain , 2001, Protein science : a publication of the Protein Society.
[26] L. Yang,et al. Barrel-stave model or toroidal model? A case study on melittin pores. , 2001, Biophysical journal.
[27] R. Iozzo,et al. Heparan sulfate proteoglycans: intricate molecules with intriguing functions. , 2001, The Journal of clinical investigation.
[28] H. Inokuchi,et al. Protein Transduction Domain of HIV-1 Tat Protein Promotes Efficient Delivery of DNA into Mammalian Cells* , 2001, The Journal of Biological Chemistry.
[29] M. Giacca,et al. Internalization of HIV-1 Tat Requires Cell Surface Heparan Sulfate Proteoglycans* , 2001, The Journal of Biological Chemistry.
[30] R. Sasisekharan,et al. Heparin and heparan sulfate: biosynthesis, structure and function. , 2000, Current opinion in chemical biology.
[31] K. Pattabiraman,et al. The design, synthesis, and evaluation of molecules that enable or enhance cellular uptake: peptoid molecular transporters. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[32] J. Rothbard,et al. Polyarginine enters cells more efficiently than other polycationic homopolymers. , 2000, The journal of peptide research : official journal of the American Peptide Society.
[33] B. Nordén,et al. The Antennapedia peptide penetratin translocates across lipid bilayers – the first direct observation , 2000, FEBS letters.
[34] T. Bártfai,et al. Cellular translocation of proteins by transportan , 2000, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[35] A. Prochiantz. Messenger proteins: homeoproteins, TAT and others. , 2000, Current opinion in cell biology.
[36] R. Fåhraeus,et al. Structure-activity relationship of truncated and substituted analogues of the intracellular delivery vector Penetratin. , 2000, The journal of peptide research : official journal of the American Peptide Society.
[37] S. Schwarze,et al. In vivo protein transduction: intracellular delivery of biologically active proteins, compounds and DNA. , 2000, Trends in pharmacological sciences.
[38] P. Wingfield,et al. Identification and dynamics of a heparin-binding site in hepatocyte growth factor. , 1999, Biochemistry.
[39] S. Schwarze,et al. In vivo protein transduction: delivery of a biologically active protein into the mouse. , 1999, Science.
[40] Carolyn R. Bertozzi,et al. Essentials of Glycobiology , 1999 .
[41] Yao-Zhong Lin,et al. Genetic engineering of proteins with cell membrane permeability , 1998, Nature Biotechnology.
[42] M. Yanagishita. Cellular Catabolism of Heparan Sulfate Proteoglycans , 1998 .
[43] O. Hashimoto,et al. Follistatin and its role as an activin-binding protein. , 1997, The journal of medical investigation : JMI.
[44] Priscille Brodin,et al. A Truncated HIV-1 Tat Protein Basic Domain Rapidly Translocates through the Plasma Membrane and Accumulates in the Cell Nucleus* , 1997, The Journal of Biological Chemistry.
[45] Y. Hayashi,et al. A Novel Role of Follistatin, an Activin-binding Protein, in the Inhibition of Activin Action in Rat Pituitary Cells , 1997, The Journal of Biological Chemistry.
[46] A. Prochiantz,et al. Cell Internalization of the Third Helix of the Antennapedia Homeodomain Is Receptor-independent* , 1996, The Journal of Biological Chemistry.
[47] A. Lander,et al. Mapping the heparin-binding sites on type I collagen monomers and fibrils , 1994, The Journal of cell biology.
[48] J Barsoum,et al. Tat-mediated delivery of heterologous proteins into cells. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[49] J. Massagué,et al. A single mutation affects both N-acetylglucosaminyltransferase and glucuronosyltransferase activities in a Chinese hamster ovary cell mutant defective in heparan sulfate biosynthesis. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[50] C. Biswas,et al. Identification and characterization of heparan sulfate-binding proteins from human lung carcinoma cells. , 1990, Journal of Biological Chemistry.
[51] Carl O. Pabo,et al. Cellular uptake of the tat protein from human immunodeficiency virus , 1988, Cell.
[52] Maurice Green,et al. Autonomous functional domains of chemically synthesized human immunodeficiency virus tat trans-activator protein , 1988, Cell.
[53] J. Esko,et al. Animal cell mutants defective in glycosaminoglycan biosynthesis. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[54] V. Hascall,et al. Metabolism of proteoglycans in rat ovarian granulosa cell culture. Multiple intracellular degradative pathways and the effect of chloroquine. , 1984, The Journal of biological chemistry.
[55] R. Hancock,et al. Histones and Basic Polyamino Acids Stimulate the Uptake of Albumin by Tumor Cells in Culture , 1965, Science.
[56] R. Sasisekharan,et al. The Sweet Science of Glycobiology , 2003, American Scientist.
[57] M. Giacca,et al. Different mechanisms for cellular internalization of the HIV-1 Tat-derived cell penetrating peptide and recombinant proteins fused to Tat. , 2002, European journal of biochemistry.
[58] E. Vivés,et al. Cell-penetrating Peptides A REEVALUATION OF THE MECHANISM OF CELLULAR UPTAKE* , 2002 .
[59] G. V. Sperinde,et al. Mechanisms of fibroblast growth factor 2 intracellular processing: a kinetic analysis of the role of heparan sulfate proteoglycans. , 2000, Biochemistry.
[60] M. Götte,et al. Functions of cell surface heparan sulfate proteoglycans. , 1999, Annual review of biochemistry.
[61] B. Ames. ASSAY OF INORGANIC PHOSPHATE, TOTAL PHOSPHATE AND PHOSPHATASE , 1966 .