Enhanced intracellular translocation and biodistribution of gold nanoparticles functionalized with a cell-penetrating peptide (VG-21) from vesicular stomatitis virus
Tài liệu tham khảo
Giljohann, 2010, Gold nanoparticles for biology and medicine, Angew Chem Int Ed, 49, 3280, 10.1002/anie.200904359
Tiwari, 2011, Functionalized gold nanoparticles and their biomedical applications, Nanomaterials, 1, 31, 10.3390/nano1010031
Nelson, 2013, Balancing cationic and hydrophobic content of PEGylated siRNA polyplexes enhances endosome escape, stability, blood circulation time, and bioactivity in vivo, ACS Nano, 7, 8870, 10.1021/nn403325f
Hou, 2013, Mechanisms of nanoparticle-mediated siRNA transfection by melittin-derived peptides, ACS Nano, 7, 8605, 10.1021/nn403311c
Jin, 2012, Acid-active cell-penetrating peptides for in vivo tumor-targeted drug delivery, J Am Chem Soc, 135, 933, 10.1021/ja311180x
de la Fuente, 2005, Tat peptide as an efficient molecule to translocate gold nanoparticles into the cell nucleus, Bioconjug Chem, 16, 1176, 10.1021/bc050033+
Chanda, 2010, Bombesin functionalized gold nanoparticles show in vitro and in vivo cancer receptor specificity, Proc Natl Acad Sci, 107, 8760, 10.1073/pnas.1002143107
Bartczak, 2013, Manipulation of in vitro angiogenesis using peptide-coated gold nanoparticles, ACS Nano, 7, 5628, 10.1021/nn402111z
Oyelere, 2007, Peptide-conjugated gold nanorods for nuclear targeting, Bioconjug Chem, 18, 1490, 10.1021/bc070132i
Wang, 2010, Gold nanoparticle-based colorimetric sensor for studying the interactions of beta-amyloid peptide with metallic ions, Talanta, 80, 1626, 10.1016/j.talanta.2009.09.052
Hoyer, 2012, Peptide vectors for the nonviral delivery of nucleic acids, Acc Chem Res, 45, 1048, 10.1021/ar2002304
Deshayes, 2005, Cell-penetrating peptides: tools for intracellular delivery of therapeutics, Cell Mol Life Sci, 62, 1839, 10.1007/s00018-005-5109-0
Hao, 2012, Caveolae-mediated endocytosis of biocompatible gold nanoparticles in living Hela cells, J Phys Condens Matter, 24, 164207, 10.1088/0953-8984/24/16/164207
Trabulo, 2010, Cell-penetrating peptides—mechanisms of cellular uptake and generation of delivery systems, Pharmaceuticals, 3, 961, 10.3390/ph3040961
Frankel, 1988, Cellular uptake of the tat protein from human immunodeficiency virus, Cell, 55, 1189, 10.1016/0092-8674(88)90263-2
Karagiannis, 2013, Rational design of a biomimetic cell penetrating peptide library, ACS Nano, 7, 8616, 10.1021/nn4027382
Crombez, 2009, A new potent secondary amphipathic cell-penetrating peptide for siRNA delivery into mammalian cells, Mol Ther, 17, 95, 10.1038/mt.2008.215
Tran, 2011, Direct synthesis of rev peptide-conjugated gold nanoparticles and their application in cancer therapeutics, Bioconjug Chem, 22, 1394, 10.1021/bc2001215
Sun, 2008, Functional gold nanoparticle–peptide complexes as cell-targeting agents, Langmuir, 24, 10293, 10.1021/la8015063
Scarì, 2012, Gold nanoparticles capped by a GC-containing peptide functionalized with an RGD motif for integrin targeting, Bioconjug Chem, 23, 340, 10.1021/bc200143d
Nakase, 2009, Cell-surface accumulation of flock house virus-derived peptide leads to efficient internalization via macropinocytosis, Mol Ther, 17, 1868, 10.1038/mt.2009.192
Tkachenko, 2004, Cellular trajectories of peptide-modified gold particle complexes: comparison of nuclear localization signals and peptide transduction domains, Bioconjug Chem, 15, 482, 10.1021/bc034189q
Hastie, 2012, Vesicular stomatitis virus as a flexible platform for oncolytic virotherapy against cancer, J Gen Virol, 93, 2529, 10.1099/vir.0.046672-0
Stojdl, 2000, Exploiting tumor-specific defects in the interferon pathway with a previously unknown oncolytic virus, Nat Med, 6, 821, 10.1038/77558
Ammayappan, 2013, Characteristics of oncolytic vesicular stomatitis virus displaying tumor targeting ligands, J Virol, 24, 13543, 10.1128/JVI.02240-13
Özduman, 2008, Systemic vesicular stomatitis virus selectively destroys multifocal glioma and metastatic carcinoma in brain, J Neurosci, 28, 1882, 10.1523/JNEUROSCI.4905-07.2008
Roche, 2008, Structures of vesicular stomatitis virus glycoprotein: membrane fusion revisited, Cell Mol Life Sci, 65, 1716, 10.1007/s00018-008-7534-3
Mironov, 2001, Small cargo proteins and large aggregates can traverse the Golgi by a common mechanism without leaving the lumen of cisternae, J Cell Biol, 155, 1225, 10.1083/jcb.200108073
Hirano, 2013, Highly efficient retrograde gene transfer into motor neurons by a lentiviral vector pseudotyped with fusion glycoprotein, PLoS One, 8, e75896, 10.1371/journal.pone.0075896
Farley, 2007, Factors that influence VSV-G pseudotyping and transduction efficiency of lentiviral vectors-in vitro and in vivo implications, J Gene Med, 9, 345, 10.1002/jgm.1022
Lo, 2007, Production of vesicular stomatitis virus G glycoprotein (VSV-G) pseudotyped retroviral vectors, Curr Protoc Hum Genet, 12
DePolo, 2000, VSV-G pseudotyped lentiviral vector particles produced in human cells are inactivated by human serum, Mol Ther, 2, 218, 10.1006/mthe.2000.0116
Gautam, 2013, In silico approaches for designing highly effective cell penetrating peptides, J Transl Med, 11, 74, 10.1186/1479-5876-11-74
Kaur, 2007, PEPstr: a de novo method for tertiary structure prediction of small bioactive peptides, Protein Pept Lett, 14, 626, 10.2174/092986607781483859
Willard, 2003, VADAR: a web server for quantitative evaluation of protein structure quality, Nucleic Acids Res, 31, 3316, 10.1093/nar/gkg565
Gasteiger, 2005, Protein identification and analysis tools on the ExPASy server, 571
Chithrani, 2006, Determining the size and shape Dependence of gold nanoparticle uptake into mammalian cells, Nano Lett, 6, 662, 10.1021/nl052396o
Si, 2006, pH-controlled reversible assembly of peptide-functionalized gold nanoparticles, Langmuir, 23, 190, 10.1021/la061505r
Albanese, 2011, Effect of gold nanoparticle aggregation on cell uptake and toxicity, ACS Nano, 5, 5478, 10.1021/nn2007496
Bastus, 2009, Peptides conjugated to gold nanoparticles induce macrophage activation, Mol Immunol, 46, 743, 10.1016/j.molimm.2008.08.277
Abdelhalim, 2012, Histological alterations in the liver of rats induced by different gold nanoparticle sizes, doses and exposure duration, J Nanobiotechnol, 10
Mao, 2007, The influence of polycaprolactone coating on the internalization and cytotoxicity of gold nanoparticles, Nanomed Nanotechnol Biol Med, 3, 215, 10.1016/j.nano.2007.04.001
Guterstam, 2009, Elucidating cell-penetrating peptide mechanisms of action for membrane interaction, cellular uptake, and translocation utilizing the hydrophobic counter-anion pyrenebutyrate, Biochim Biophys Acta, 12, 2509, 10.1016/j.bbamem.2009.09.014
Freese, 2012, Size- and coating-dependent uptake of polymer-coated gold nanoparticles in primary human dermal microvascular endothelial cells, Biomacromolecules, 13, 1533, 10.1021/bm300248u
Cho, 2010, The effects of size, shape, and surface functional group of gold nanostructures on their adsorption and internalization by cells, Small, 6, 517, 10.1002/smll.200901622
Krpetić, 2010, Phagocytosis of biocompatible gold nanoparticles, Langmuir, 26, 14799, 10.1021/la102758f
Bhattacharya, 2007, Attaching folic acid on gold nanoparticles using noncovalent interaction via different polyethylene glycol backbones and targeting of cancer cells, Nanomed Nanotechnol Biol Med, 3, 224, 10.1016/j.nano.2007.07.001
Balasubramanian, 2010, Biodistribution of gold nanoparticles and gene expression changes in the liver and spleen after intravenous administration in rats, Biomaterials, 31, 2034, 10.1016/j.biomaterials.2009.11.079
Cho, 2009, Comparison of gene expression profiles in mice liver following intravenous injection of 4 and 100 nm-sized PEG-coated gold nanoparticles, Toxicol Lett, 191, 96, 10.1016/j.toxlet.2009.08.010
Kim, 2012, Gold nanoparticle-mediated gene delivery induces widespread changes in the expression of innate immunity genes, Gene Ther, 19, 347, 10.1038/gt.2011.95
Massich, 2009, Regulating immune response using polyvalent nucleic acid-gold nanoparticle conjugates, Mol Pharm, 6, 1934, 10.1021/mp900172m
Niikura, 2013, Gold nanoparticles as a vaccine platform: influence of size and shape on immunological responses in vitro and in vivo, ACS Nano, 7, 3926, 10.1021/nn3057005