Niemann-Pick C1 Affects the Gene Delivery Efficacy of Degradable Polymeric Nanoparticles
暂无分享,去创建一个
Gaurav Sahay | Daniel G. Anderson | J. Cunningham | G. Sahay | Ahmed A. Eltoukhy | James M. Cunningham
[1] Johnny Yang,et al. The Characteristics and Mechanisms of Uptake of PLGA Nanoparticles in Rabbit Conjunctival Epithelial Cell Layers , 2004, Pharmaceutical Research.
[2] Daniel G. Anderson,et al. Nanoparticles for gene transfer to human embryonic stem cell colonies. , 2008, Nano letters.
[3] S. Gale,et al. The Sterol-sensing Domain of the Niemann-Pick C1 (NPC1) Protein Regulates Trafficking of Low Density Lipoprotein Cholesterol* , 2005, Journal of Biological Chemistry.
[4] Daniel G. Anderson,et al. Nanoparticulate delivery of suicide DNA to murine prostate and prostate tumors , 2007, The Prostate.
[5] M. Scott,et al. Dynamic movements of organelles containing Niemann-Pick C1 protein: NPC1 involvement in late endocytic events. , 2001, Molecular biology of the cell.
[6] K. Higaki,et al. Accumulation of cholera toxin and GM1 ganglioside in the early endosome of Niemann–Pick C1-deficient cells , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[7] L. Liscum,et al. Characterization of Chinese hamster ovary cells that are resistant to 3-beta-[2-(diethylamino)ethoxy]androst-5-en-17-one inhibition of low density lipoprotein-derived cholesterol metabolism. , 1991, The Journal of biological chemistry.
[8] Daniel G. Anderson,et al. Small‐Molecule End‐Groups of Linear Polymer Determine Cell‐type Gene‐Delivery Efficacy , 2009, Advanced materials.
[9] R. Dwek,et al. Accumulation of Glycosphingolipids in Niemann-Pick C Disease Disrupts Endosomal Transport* , 2004, Journal of Biological Chemistry.
[10] Daniel G. Anderson,et al. Effect of molecular weight of amine end-modified poly(β-amino ester)s on gene delivery efficiency and toxicity. , 2012, Biomaterials.
[11] M. Patterson,et al. Niemann-Pick C variant detection by altered sphingolipid trafficking and correlation with mutations within a specific domain of NPC1. , 2001, American journal of human genetics.
[12] Jayanth Panyam,et al. Dynamics of Endocytosis and Exocytosis of Poly(D,L-Lactide-co-Glycolide) Nanoparticles in Vascular Smooth Muscle Cells , 2003, Pharmaceutical Research.
[13] F. Maxfield,et al. Sterol, Protein and Lipid Trafficking in Chinese Hamster Ovary Cells with Niemann‐Pick Type C1 Defect , 2007, Traffic.
[14] Shiroh Futaki,et al. High Density of Octaarginine Stimulates Macropinocytosis Leading to Efficient Intracellular Trafficking for Gene Expression* , 2006, Journal of Biological Chemistry.
[15] R. Jankowiak,et al. Electrochemically deposited metal nanoparticles for enhancing the performance of microfluidic MEMS in biochemical analysis , 2009 .
[16] Mauro Giacca,et al. Virus-mediated gene delivery for human gene therapy. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[17] Daniel G. Anderson,et al. Degradable Terpolymers with Alkyl Side Chains Demonstrate Enhanced Gene Delivery Potency and Nanoparticle Stability , 2013, Advanced materials.
[18] Markus Rimann,et al. Cellular uptake and intracellular pathways of PLL-g-PEG-DNA nanoparticles. , 2008, Bioconjugate chemistry.
[19] H. McMahon,et al. Mechanisms of endocytosis. , 2009, Annual review of biochemistry.
[20] Seung‐Woo Cho,et al. Gene delivery to human adult and embryonic cell-derived stem cells using biodegradable nanoparticulate polymeric vectors , 2009, Gene Therapy.
[21] S. Mitragotri,et al. Endocytic pathway rapidly delivers internalized molecules to lysosomes: an analysis of vesicle trafficking, clustering and mass transfer. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[22] Gaurav Sahay,et al. Endocytosis of nanomedicines. , 2010, Journal of controlled release : official journal of the Controlled Release Society.
[23] R. Cenedella. Concentration-dependent effects of AY-9944 and U18666A on sterol synthesis in brain. Variable sensitivities of metabolic steps. , 1980, Biochemical pharmacology.
[24] F. Sharom,et al. Characterization of Fluorescent Sterol Binding to Purified Human NPC1* , 2009, Journal of Biological Chemistry.
[25] D. Ory,et al. Niemann-Pick Type C1 (NPC1) Overexpression Alters Cellular Cholesterol Homeostasis* , 2000, The Journal of Biological Chemistry.
[26] Athena W Wong,et al. DNA Internalized via Caveolae Requires Microtubule-dependent, Rab7-independent Transport to the Late Endocytic Pathway for Delivery to the Nucleus* , 2007, Journal of Biological Chemistry.
[27] D. Lauffenburger,et al. Gene Delivery Properties of End-Modified Poly(β-amino ester)s , 2007 .
[28] W. Hennink,et al. Cellular Uptake of Cationic Polymer-DNA Complexes Via Caveolae Plays a Pivotal Role in Gene Transfection in COS-7 Cells , 2007, Pharmaceutical Research.
[29] L. Liscum. Pharmacological inhibition of the intracellular transport of low-density lipoprotein-derived cholesterol in Chinese hamster ovary cells. , 1990, Biochimica et biophysica acta.
[30] T. Steck,et al. Cholesterol Movement in Niemann-Pick Type C Cells and in Cells Treated with Amphiphiles* , 2000, The Journal of Biological Chemistry.
[31] Robert Langer,et al. Parallel synthesis and biophysical characterization of a degradable polymer library for gene delivery. , 2003, Journal of the American Chemical Society.
[32] Elina Ikonen,et al. Cellular cholesterol trafficking and compartmentalization , 2008, Nature Reviews Molecular Cell Biology.
[33] R. Sexton,et al. Regulation of 3-hydroxy-3-methylglutaryl coenzyme A reductase by oxysterol by-products of cholesterol biosynthesis. Possible mediators of low density lipoprotein action. , 1984, The Journal of biological chemistry.
[34] D. Lauffenburger,et al. Combinatorial Modification of Degradable Polymers Enables Transfection of Human Cells Comparable to Adenovirus , 2007 .
[35] R. Parton,et al. Annexin II regulates multivesicular endosome biogenesis in the degradation pathway of animal cells , 2003, The EMBO journal.
[36] N. Hooper. Detergent-insoluble glycosphingolipid/cholesterol-rich membrane domains, lipid rafts and caveolae (review). , 1999, Molecular membrane biology.
[37] Daniel G. Anderson,et al. Biodegradable polymeric vectors for gene delivery to human endothelial cells. , 2006, Bioconjugate chemistry.
[38] J. Avigan,et al. Inhibition of Cholesterol Biosynthesis in the Rat by 3β-(2-diethylaminoethoxy)androst-5-en-17-one, hydrochloride , 1963 .
[39] Robert Langer,et al. Genetic engineering of human stem cells for enhanced angiogenesis using biodegradable polymeric nanoparticles , 2009, Proceedings of the National Academy of Sciences.
[40] A. Ivanov,et al. Pharmacological inhibition of endocytic pathways: is it specific enough to be useful? , 2008, Methods in molecular biology.
[41] R. Sexton,et al. Effects of 3 beta-[2-(diethylamino)ethoxy]androst-5-en-17-one on the synthesis of cholesterol and ubiquinone in rat intestinal epithelial cell cultures. , 1983, Biochemistry.
[42] Kathryn A. Whitehead,et al. Lipid-like materials for low-dose, in vivo gene silencing , 2010, Proceedings of the National Academy of Sciences.
[43] M. Conese,et al. Role of clathrin- and caveolae-mediated endocytosis in gene transfer mediated by lipo- and polyplexes. , 2005, Molecular therapy : the journal of the American Society of Gene Therapy.
[44] Daniel G. Anderson,et al. Structure/property studies of polymeric gene delivery using a library of poly(β-amino esters). , 2005, Molecular therapy : the journal of the American Society of Gene Therapy.
[45] L. Liscum,et al. The intracellular transport of low density lipoprotein-derived cholesterol is inhibited in Chinese hamster ovary cells cultured with 3-beta-[2-(diethylamino)ethoxy]androst-5-en-17-one. , 1989, The Journal of biological chemistry.
[46] Meredith A Mintzer,et al. Nonviral vectors for gene delivery. , 2009, Chemical reviews.
[47] M. Conese,et al. Gene Transfer by Means of Lipo- and Polyplexes: Role of Clathrin and Caveolae-Mediated Endocytosis , 2006, Journal of liposome research.
[48] Robert Langer,et al. A polymer library approach to suicide gene therapy for cancer. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[49] R. Langer,et al. Accelerated discovery of synthetic transfection vectors: parallel synthesis and screening of a degradable polymer library. , 2001, Journal of the American Chemical Society.
[50] Richard G. W. Anderson,et al. Caveolin targeting to late endosome/lysosomal membranes is induced by perturbations of lysosomal pH and cholesterol content , 2012, Molecular biology of the cell.
[51] Robert Langer,et al. Efficiency of siRNA delivery by lipid nanoparticles is limited by endocytic recycling , 2013, Nature Biotechnology.
[52] Robert Langer,et al. Rapid Optimization of Gene Delivery by Parallel End-modification of Poly(β-amino ester)s. , 2007, Molecular therapy : the journal of the American Society of Gene Therapy.
[53] Leaf Huang,et al. Recent advances in nonviral vectors for gene delivery. , 2012, Accounts of chemical research.
[54] Akin Akinc,et al. Synthesis of poly (β-amino ester)s optimized for highly effective gene delivery , 2003 .
[55] V. Labhasetwar,et al. Quantification of the force of nanoparticle-cell membrane interactions and its influence on intracellular trafficking of nanoparticles. , 2008, Biomaterials.
[56] K Kobylarz,et al. Acute cholesterol depletion inhibits clathrin-coated pit budding. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[57] M. Monsigny,et al. Potocytosis and Cellular Exit of Complexes as Cellular Pathways for Gene Delivery by Polycations , 2005 .
[58] E. Miele,et al. Albumin-bound formulation of paclitaxel (Abraxane® ABI-007) in the treatment of breast cancer , 2009, International journal of nanomedicine.
[59] Gaurav Sahay,et al. The exploitation of differential endocytic pathways in normal and tumor cells in the selective targeting of nanoparticulate chemotherapeutic agents. , 2010, Biomaterials.
[60] M. Kay. State-of-the-art gene-based therapies: the road ahead , 2011, Nature Reviews Genetics.
[61] J. Dye,et al. Ebola virus entry requires the cholesterol transporter Niemann-Pick C1 , 2011, Nature.
[62] Robert Langer,et al. Degradable Poly(β-amino esters): Synthesis, Characterization, and Self-Assembly with Plasmid DNA , 2000 .
[63] B. Deurs,et al. Extraction of cholesterol with methyl-beta-cyclodextrin perturbs formation of clathrin-coated endocytic vesicles. , 1999, Molecular biology of the cell.
[64] Daniel G. Anderson,et al. Nanoparticle-delivered suicide gene therapy effectively reduces ovarian tumor burden in mice. , 2009, Cancer research.
[65] Ernst Wagner,et al. The internalization route resulting in successful gene expression depends on both cell line and polyethylenimine polyplex type. , 2006, Molecular therapy : the journal of the American Society of Gene Therapy.
[66] Daniel G. Anderson,et al. Semi-automated synthesis and screening of a large library of degradable cationic polymers for gene delivery. , 2003, Angewandte Chemie.
[67] H. Ninomiya,et al. [Niemann-Pick disease type C]. , 2001, Nihon rinsho. Japanese journal of clinical medicine.
[68] R. Pagano,et al. Distinct mechanisms of clathrin-independent endocytosis have unique sphingolipid requirements. , 2006, Molecular biology of the cell.