Cationic Nanoparticles Have Superior Transvascular Flux into Solid Tumors: Insights from a Mathematical Model
暂无分享,去创建一个
Dai Fukumura | Rakesh K. Jain | Triantafyllos Stylianopoulos | Konstantinos Soteriou | R. Jain | D. Fukumura | T. Stylianopoulos | Konstantinos Soteriou
[1] Erkki Ruoslahti,et al. Tissue-penetrating delivery of compounds and nanoparticles into tumors. , 2009, Cancer cell.
[2] R K Jain,et al. Openings between defective endothelial cells explain tumor vessel leakiness. , 2000, The American journal of pathology.
[3] M. Bednarski,et al. Tumor Regression by Targeted Gene Delivery to the Neovasculature , 2002, Science.
[4] R. Jain,et al. Oncotic pressure in solid tumors is elevated. , 2000, Cancer research.
[5] R. Jain,et al. Microvascular permeability and interstitial penetration of sterically stabilized (stealth) liposomes in a human tumor xenograft. , 1994, Cancer research.
[6] Rakesh K. Jain,et al. Normalizing tumor vasculature with anti-angiogenic therapy: A new paradigm for combination therapy , 2001, Nature Medicine.
[7] R. Jain,et al. Viscous resistance to blood flow in solid tumors: effect of hematocrit on intratumor blood viscosity. , 1989, Cancer research.
[8] R. Jain,et al. Role of extracellular matrix assembly in interstitial transport in solid tumors. , 2000, Cancer research.
[9] Mauro Ferrari,et al. Design maps for nanoparticles targeting the diseased microvasculature. , 2008, Biomaterials.
[10] Dai Fukumura,et al. A nanoparticle size series for in vivo fluorescence imaging. , 2010, Angewandte Chemie.
[11] Triantafyllos Stylianopoulos,et al. Delivery of molecular and nanoscale medicine to tumors: transport barriers and strategies. , 2011, Annual review of chemical and biomolecular engineering.
[12] Ming-Zher Poh,et al. Diffusion of particles in the extracellular matrix: the effect of repulsive electrostatic interactions. , 2010, Biophysical journal.
[13] Howard Brenner,et al. The motion of a closely-fitting sphere in a fluid-filled tube , 1973 .
[14] Andrew Yeckel,et al. Permeability calculations in three-dimensional isotropic and oriented fiber networks. , 2008, Physics of fluids.
[15] Marc Dellian,et al. Neovascular targeting therapy: paclitaxel encapsulated in cationic liposomes improves antitumoral efficacy. , 2003, Clinical cancer research : an official journal of the American Association for Cancer Research.
[16] R. Jain. Normalization of Tumor Vasculature: An Emerging Concept in Antiangiogenic Therapy , 2005, Science.
[17] R K Jain,et al. Transport of fluid and macromolecules in tumors. III. Role of binding and metabolism. , 1991 .
[18] Hemant Sarin,et al. Physiologic upper limits of pore size of different blood capillary types and another perspective on the dual pore theory of microvascular permeability , 2010, Journal of angiogenesis research.
[19] R K Jain,et al. Determinants of tumor blood flow: a review. , 1988, Cancer research.
[20] Erkki Ruoslahti,et al. Targeting of drugs and nanoparticles to tumors , 2010, The Journal of cell biology.
[21] R K Jain,et al. Transport of fluid and macromolecules in tumors. II. Role of heterogeneous perfusion and lymphatics. , 1990, Microvascular research.
[22] Rakesh K. Jain,et al. Transport of molecules across tumor vasculature , 2004, Cancer and Metastasis Reviews.
[23] R K Jain,et al. Extravascular diffusion in normal and neoplastic tissues. , 1984, Cancer research.
[24] R. Jain,et al. Losartan inhibits collagen I synthesis and improves the distribution and efficacy of nanotherapeutics in tumors , 2011, Proceedings of the National Academy of Sciences.
[25] R. Jain,et al. Microvascular permeability of normal and neoplastic tissues. , 1986, Microvascular research.
[26] R. Jain,et al. Delivering nanomedicine to solid tumors , 2010, Nature Reviews Clinical Oncology.
[27] Ou Chen,et al. Fluorescent nanorods and nanospheres for real-time in vivo probing of nanoparticle shape-dependent tumor penetration. , 2011, Angewandte Chemie.
[28] R K Jain,et al. Microvascular pressure is the principal driving force for interstitial hypertension in solid tumors: implications for vascular collapse. , 1992, Cancer research.
[29] R K Jain,et al. Vascular permeability and microcirculation of gliomas and mammary carcinomas transplanted in rat and mouse cranial windows. , 1994, Cancer research.
[30] R. Jain,et al. Normalization of tumour blood vessels improves the delivery of nanomedicines in a size-dependent manner , 2012, Nature nanotechnology.
[31] R. Jain,et al. Regulation of transport pathways in tumor vessels: role of tumor type and microenvironment. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[32] Frank G. Smith,et al. Electrostatic effects on the partitioning of spherical colloids between dilute bulk solution and cylindrical pores , 1983 .
[33] S. McDougall,et al. Mathematical modelling of dynamic adaptive tumour-induced angiogenesis: clinical implications and therapeutic targeting strategies. , 2006, Journal of theoretical biology.
[34] Rakesh K. Jain,et al. Vascular Normalization by Vascular Endothelial Growth Factor Receptor 2 Blockade Induces a Pressure Gradient Across the Vasculature and Improves Drug Penetration in Tumors , 2004, Cancer Research.
[35] P. Choyke,et al. Clearance properties of nano-sized particles and molecules as imaging agents: considerations and caveats. , 2008, Nanomedicine.
[36] R K Jain,et al. Vascular permeability in a human tumor xenograft: molecular size dependence and cutoff size. , 1995, Cancer research.
[37] R K Jain,et al. Vascular permeability in a human tumour xenograft: molecular charge dependence , 2000, British Journal of Cancer.
[38] Dai Fukumura,et al. Multistage nanoparticle delivery system for deep penetration into tumor tissue , 2011, Proceedings of the National Academy of Sciences.
[39] K. Hamad-Schifferli,et al. Evaluation of Hydrodynamic Size and Zeta-Potential of Surface-Modified Au Nanoparticle-DNA Conjugates via Ferguson Analysis , 2008 .
[40] R. B. Campbell,et al. Role of tumor–host interactions in interstitial diffusion of macromolecules: Cranial vs. subcutaneous tumors , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[41] Gaiping Zhao,et al. Coupled modeling of blood perfusion in intravascular, interstitial spaces in tumor microvasculature. , 2008, Journal of biomechanics.
[42] W. Deen. Hindered transport of large molecules in liquid‐filled pores , 1987 .
[43] Vladimir P Torchilin,et al. Cationic charge determines the distribution of liposomes between the vascular and extravascular compartments of tumors. , 2002, Cancer research.
[44] R. Jain,et al. Interstitial transport of rabbit and sheep antibodies in normal and neoplastic tissues. , 1990, Cancer research.
[45] R. Jain,et al. Transmural coupling of fluid flow in microcirculatory network and interstitium in tumors. , 1997, Microvascular research.
[46] V. Torchilin. Targeted pharmaceutical nanocarriers for cancer therapy and imaging , 2007, The AAPS Journal.