Design Principles for Nanoparticles Enveloped by a Polymer-Tethered Lipid Membrane.
暂无分享,去创建一个
Roland Faller | Mingyang Hu | Francesca Stanzione | Markus Deserno | R. Faller | M. Deserno | A. Sum | Mingyang Hu | Amadeu K Sum | F. Stanzione
[1] Mauro Ferrari,et al. Nanogeometry: beyond drug delivery. , 2008, Nature nanotechnology.
[2] P. Cullis,et al. Drug Delivery Systems: Entering the Mainstream , 2004, Science.
[3] Y. Barenholz. Doxil®--the first FDA-approved nano-drug: lessons learned. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[4] R. Schiffelers,et al. Cancer siRNA therapy by tumor selective delivery with ligand-targeted sterically stabilized nanoparticle. , 2004, Nucleic acids research.
[5] Alexander T Florence,et al. "Targeting" nanoparticles: the constraints of physical laws and physical barriers. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[6] P. G. de Gennes,et al. Polymers at an interface; a simplified view , 1987 .
[7] Clemens Burda,et al. The unique role of nanoparticles in nanomedicine : imaging , drug delivery and therapy , 2012 .
[8] M. Deserno,et al. Determining the Gaussian curvature modulus of lipid membranes in simulations. , 2012, Biophysical journal.
[9] Yu-qiang Ma,et al. Designing nanoparticle translocation through membranes by computer simulations. , 2012, ACS nano.
[10] P. Gennes. Scaling Concepts in Polymer Physics , 1979 .
[11] Fabian Kiessling,et al. Theranostic nanomedicine. , 2020, Accounts of chemical research.
[12] C. Mirkin,et al. Scanometric DNA array detection with nanoparticle probes. , 2000, Science.
[13] Steven P. Armes,et al. Synthesis of Well-Defined, Polymer-Grafted Silica Particles by Aqueous ATRP , 2001 .
[14] Navid B. Saleh,et al. Oil-in-water emulsions stabilized by highly charged polyelectrolyte-grafted silica nanoparticles. , 2005, Langmuir : the ACS journal of surfaces and colloids.
[15] Bruno Dufour,et al. Adsorbed triblock copolymers deliver reactive iron nanoparticles to the oil/water interface. , 2005, Nano letters.
[16] T. Bleha,et al. Stretching of self-interacting wormlike macromolecules , 2007 .
[17] Christine Allen,et al. Computational approaches to the rational design of nanoemulsions, polymeric micelles, and dendrimers for drug delivery. , 2012, Nanomedicine : nanotechnology, biology, and medicine.
[18] Joseph M. DeSimone,et al. Strategies in the design of nanoparticles for therapeutic applications , 2010, Nature Reviews Drug Discovery.
[19] J. Storhoff,et al. A DNA-based method for rationally assembling nanoparticles into macroscopic materials , 1996, Nature.
[20] Gregoria Illya,et al. Coarse-grained simulation studies of peptide-induced pore formation. , 2008, Biophysical journal.
[21] Robert Langer,et al. Formulation of functionalized PLGA-PEG nanoparticles for in vivo targeted drug delivery. , 2007, Biomaterials.
[22] W. Gelbart,et al. A statistical-thermodynamic model of viral budding. , 2004, Biophysical journal.
[23] Weihong Tan,et al. Nanotechnology in therapeutics : a focus on nanoparticles as a drug delivery system Review , 2008 .
[24] S M Moghimi,et al. Factors controlling nanoparticle pharmacokinetics: an integrated analysis and perspective. , 2012, Annual review of pharmacology and toxicology.
[25] R. Faller,et al. Conformational, dynamical. and tensional study of tethered bilayer lipid membranes in coarse-grained molecular simulations. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[26] Á. González-Fernández,et al. Pathogen-mimetic stealth nanocarriers for drug delivery: a future possibility. , 2011, Nanomedicine : nanotechnology, biology, and medicine.
[27] R. Faller,et al. Interactions of lipid bilayers with supports: a coarse-grained molecular simulation study. , 2008, The journal of physical chemistry. B.
[28] Zahi A Fayad,et al. Multifunctional gold nanoparticles for diagnosis and therapy of disease. , 2013, Molecular pharmaceutics.
[29] P. Cullis,et al. Liposomal drug delivery systems: from concept to clinical applications. , 2013, Advanced drug delivery reviews.
[30] Bruce Cornell,et al. Tethered Lipid Bilayer Membranes: Formation and Ionic Reservoir Characterization , 1998 .
[31] Kremer,et al. Molecular dynamics simulation for polymers in the presence of a heat bath. , 1986, Physical review. A, General physics.
[32] M. Ferrari,et al. What does physics have to do with cancer? , 2011, Nature Reviews Cancer.
[33] A. Maritan,et al. Elasticity of Semiflexible Polymers with and without Self-Interactions , 2003 .
[34] Chad A. Mirkin,et al. Oligonucleotide-Modified Gold Nanoparticles for Intracellular Gene Regulation , 2006, Science.
[35] D. Tieleman,et al. The MARTINI force field: coarse grained model for biomolecular simulations. , 2007, The journal of physical chemistry. B.
[36] A. Mark,et al. Coarse grained model for semiquantitative lipid simulations , 2004 .
[37] Matthew I. Hoopes,et al. Coarse-grained modeling of interactions of lipid bilayers with supports. , 2008, The Journal of chemical physics.
[38] S. Nie,et al. In vivo cancer targeting and imaging with semiconductor quantum dots , 2004, Nature Biotechnology.
[39] Mingyang Hu. Designing polymer-tethered membrane-nanoparticle composites , 2013 .
[40] K. Kremer,et al. Aggregation and vesiculation of membrane proteins by curvature-mediated interactions , 2007, Nature.
[41] Nicholas A Peppas,et al. Historical perspective on advanced drug delivery: how engineering design and mathematical modeling helped the field mature. , 2013, Advanced drug delivery reviews.
[42] M. Deserno,et al. Determining the bending modulus of a lipid membrane by simulating buckling. , 2013, The Journal of chemical physics.
[43] J. Storhoff,et al. Selective colorimetric detection of polynucleotides based on the distance-dependent optical properties of gold nanoparticles. , 1997, Science.
[44] V. Torchilin. Recent advances with liposomes as pharmaceutical carriers , 2005, Nature Reviews Drug Discovery.
[45] D. Scheinberg,et al. Conscripts of the infinite armada: systemic cancer therapy using nanomaterials , 2010, Nature Reviews Clinical Oncology.
[46] V. Torchilin,et al. Drug targeting. , 2000, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[47] Sung Yong Park,et al. DNA-programmable nanoparticle crystallization , 2008, Nature.
[48] P. Fromherz. Lipid-vesicle structure: Size control by edge-active agents , 1983 .
[49] D. Tieleman,et al. Perspective on the Martini model. , 2013, Chemical Society reviews.
[50] C. Ohm,et al. Stable insulating tethered bilayer lipid membranes , 2008, Biointerphases.
[51] T. Allen,et al. A new strategy for attachment of antibodies to sterically stabilized liposomes resulting in efficient targeting to cancer cells. , 1995, Biochimica et biophysica acta.
[52] F. John,et al. Stretching DNA , 2022 .
[53] Kinam Park,et al. Analysis on the current status of targeted drug delivery to tumors. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[54] M. Lösche,et al. A new lipid anchor for sparsely tethered bilayer lipid membranes. , 2009, Langmuir : the ACS journal of surfaces and colloids.
[55] T. Patten,et al. Preparation of Structurally Well-Defined Polymer−Nanoparticle Hybrids with Controlled/Living Radical Polymerizations , 1999 .
[56] J. Israelachvili. Intermolecular and surface forces , 1985 .
[57] W. Helfrich. Elastic Properties of Lipid Bilayers: Theory and Possible Experiments , 1973, Zeitschrift fur Naturforschung. Teil C: Biochemie, Biophysik, Biologie, Virologie.
[58] Ki Young Choi,et al. Theranostic nanoplatforms for simultaneous cancer imaging and therapy: current approaches and future perspectives. , 2012, Nanoscale.
[59] Sagar R. Mudshinge,et al. Nanoparticles: Emerging carriers for drug delivery. , 2011, Saudi pharmaceutical journal : SPJ : the official publication of the Saudi Pharmaceutical Society.
[60] P. G. de Gennes,et al. Conformations of Polymers Attached to an Interface , 1980 .
[61] Charles Tanford,et al. The hydrophobic effect , 1980 .
[62] Jin Xie,et al. Nanoparticle-based theranostic agents. , 2010, Advanced drug delivery reviews.
[63] L. Thoma,et al. Core-shell-type lipid-polymer hybrid nanoparticles as a drug delivery platform. , 2013, Nanomedicine : nanotechnology, biology, and medicine.
[64] B. Cornell,et al. A biosensor that uses ion-channel switches , 1997, Nature.
[65] Warren C W Chan,et al. The effect of nanoparticle size, shape, and surface chemistry on biological systems. , 2012, Annual review of biomedical engineering.
[66] S. Wise. Nanocarriers as an emerging platform for cancer therapy , 2007 .
[67] L. Brannon-Peppas,et al. Nanoparticle and targeted systems for cancer therapy. , 2004, Advanced drug delivery reviews.
[68] Subra Suresh,et al. Size‐Dependent Endocytosis of Nanoparticles , 2009, Advanced materials.
[69] W. Helfrich. The size of bilayer vesicles generated by sonication , 1974 .
[70] N A Peppas,et al. Modeling of drug release from delivery systems based on hydroxypropyl methylcellulose (HPMC). , 2001, Advanced drug delivery reviews.
[71] A. S. Moses,et al. Imaging and drug delivery using theranostic nanoparticles. , 2010, Advanced drug delivery reviews.
[72] M. Deserno,et al. Coupling between lipid shape and membrane curvature. , 2006, Biophysical journal.
[73] Solvent-free model for self-assembling fluid bilayer membranes: stabilization of the fluid phase based on broad attractive tail potentials. , 2005, The Journal of chemical physics.
[74] Petra Krystek,et al. Particle size-dependent organ distribution of gold nanoparticles after intravenous administration. , 2008, Biomaterials.
[75] S. Ganta,et al. A review of stimuli-responsive nanocarriers for drug and gene delivery. , 2008, Journal of controlled release : official journal of the Controlled Release Society.
[76] Z. Gomzi,et al. Polydispersity index and molecular weight distributions of polymers , 1996 .
[77] Arezou A Ghazani,et al. Determining the size and shape dependence of gold nanoparticle uptake into mammalian cells. , 2006, Nano letters.
[78] J. Kasianowicz,et al. Molecular-scale structural and functional characterization of sparsely tethered bilayer lipid membranes , 2007, Biointerphases.
[79] P. Schultz,et al. Organization of 'nanocrystal molecules' using DNA , 1996, Nature.
[80] Kurt Kremer,et al. Tunable generic model for fluid bilayer membranes. , 2005, Physical review. E, Statistical, nonlinear, and soft matter physics.
[81] M. L. Wagner,et al. Tethered polymer-supported planar lipid bilayers for reconstitution of integral membrane proteins: silane-polyethyleneglycol-lipid as a cushion and covalent linker. , 2000, Biophysical journal.
[82] S. Parveen,et al. Nanoparticles: a boon to drug delivery, therapeutics, diagnostics and imaging. , 2012, Nanomedicine : nanotechnology, biology, and medicine.
[83] A. Bangham,et al. Diffusion of univalent ions across the lamellae of swollen phospholipids. , 1965, Journal of molecular biology.
[84] Mark E. Davis,et al. Nanoparticle therapeutics: an emerging treatment modality for cancer , 2008, Nature Reviews Drug Discovery.
[85] Markus Deserno,et al. A novel method for measuring the bending rigidity of model lipid membranes by simulating tethers. , 2006, Journal of Chemical Physics.