Biomedical Engineering Reference
In-Depth Information
Seibel, P., et al., Transfection of mitochondria: strategy towards a gene therapy of mitochondrial
DNA diseases. Nucleic Acids Res, 1995. 23 (1): p. 10-7.
Seksek, O., J. Biwersi, and A.S. Verkman, Translational diffusion of macromolecule-sized solutes
in cytoplasm and nucleus. J Cell Biol, 1997. 138 (1): p. 131-42.
Sharma, A., U.S. Sharma, and R.M. Straubinger, Paclitaxel-liposomes for intracavitary therapy of
intraperitoneal P388 leukemia. Cancer Lett, 1996. 107 (2): p. 265-72.
Sharma, A., et al., Activity of paclitaxel liposome formulations against human ovarian tumor
xenografts. Int J Cancer, 1997. 71 (1): p. 103-7.
Shiraishi, T. and P.E. Nielsen, Enhanced delivery of cell-penetrating peptide-peptide nucleic acid
conjugates by endosomal disruption. Nat Protoc, 2006. 1 (2): p. 633-6.
Smith, R.A., et al., Delivery of bioactive molecules to mitochondria in vivo. Proc Natl Acad Sci
U S A, 2003. 100 (9): p. 5407-12.
Song, W.J., et al., Gold nanoparticles capped with polyethyleneimine for enhanced siRNA delivery .
Small, 2010. 6 (2): 239-46.
Stathopoulos, G.P., Liposomal Cisplatin: a new cisplatin formulation . Anticancer Drugs, 2010.
21 (8): p. 732-6.
Stoffler, D., B. Fahrenkrog, and U. Aebi, The nuclear pore complex: from molecular architecture
to functional dynamics. Curr Opin Cell Biol, 1999. 11 (3): p. 391-401.
Stoorvogel, W., H.J. Geuze, and G.J. Strous, Sorting of endocytosed transferrin and asialogly-
coprotein occurs immediately after internalization in HepG2 cells. J Cell Biol, 1987. 104 (5):
p. 1261-8.
Suh, J., et al., PEGylation of nanoparticles improves their cytoplasmic transport. Int J
Nanomedicine, 2007. 2 (4): p. 735-41.
Tahara, K., et al., Chitosan-modified poly(D,L-lactide-co-glycolide) nanospheres for improving
siRNA delivery and gene-silencing effects . Eur J Pharm Biopharm, 2010. 74 (3): p. 421-6.
Tarrago-Trani, M.T. and B. Storrie, Alternate routes for drug delivery to the cell interior: path-
ways to the Golgi apparatus and endoplasmic reticulum. Adv Drug Deliv Rev, 2007. 59 (8):
p. 782-97.
Tate, B.A. and P.M. Mathews, Targeting the role of the endosome in the pathophysiology of
Alzheimer's disease: a strategy for treatment. Sci Aging Knowledge Environ, 2006.
2006 (10): p. re2.
Tkachenko, A.G., et al., Cellular trajectories of peptide-modified gold particle complexes: com-
parison of nuclear localization signals and peptide transduction domains. Bioconjug Chem,
2004. 15 (3): p. 482-90.
Torchilin, V.P., Recent approaches to intracellular delivery of drugs and DNA and organelle tar-
geting. Annu Rev Biomed Eng, 2006. 8 : p. 343-75.
Torchilin, V.P., et al., TAT peptide on the surface of liposomes affords their efficient intracellular
delivery even at low temperature and in the presence of metabolic inhibitors. Proc Natl Acad
Sci U S A, 2001. 98 (15): p. 8786-91.
Torchilin, V.P., Nanotechnology for Intracellular Delivery and Targeting , in Nanotechnology in
Drug Delivery , M.M. de Villiers, G.S. Kwon, and P. Aramwit, Editors. 2009, Springer
Publications: New York. p. 313-348.
Trinder, D. and E. Baker, Transferrin receptor 2: a new molecule in iron metabolism. Int J
Biochem Cell Biol, 2003. 35 (3): p. 292-6.
Vaidya, B.P., R., Rai, S., Khatri, K., Goyal, A.K., Mishra, N., Vyas, S.P., Cell-selective mitochon-
drial targeting: A new approach for cancer therapy. Cancer Therapy, 2009. 7 : p. 141-148.
Vale, R.D., Intracellular transport using microtubule-based motors. Annu Rev Cell Biol, 1987. 3 :
p. 347-78.
Walter, P., et al., The protein translocation machinery of the endoplasmic reticulum. Philos Trans
R Soc Lond B Biol Sci, 1982. 300 (1099): p. 225-8.
Weissig, V., Mitochondrial-targeted drug and DNA delivery. Crit Rev Ther Drug Carrier Syst,
2003. 20 (1): p. 1-62.
Weissig, V., Targeted drug delivery to mammalian mitochondria in living cells. Expert Opin Drug
Deliv, 2005. 2 (1): p. 89-102.
Search WWH ::




Custom Search