Flow chamber analysis of size effects in the adhesion of spherical particles
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Summary
The non-specific adhesion of spherical micro- and nano-particles to a cell substrate is investigated in a parallel plate flow chamber and the following hypothesis are generated: use the smallest possible particles in biomedical imaging and use the largest Possible particles in drug delivery.
- Type
- article
- Published
- 2007-12-01
- Cited by
- 49
- References
- 18
- Access
- Open access
- OpenAlex
- https://openalex.org/W77933496
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:11194470
Keywords
Particle size, Materials science, Adhesion, Particle (ecology), Range (aeronautics)
References
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- Effect of Concentration and Intermolecular Forces on the Sedimentation of Polystyrene Spheres
- Synthesis and functional evaluation of DNA-assembled polyamidoamine dendrimer clusters for cancer cell-specific targeting.
- Improvements to parallel plate flow chambers to reduce reagent and cellular requirements
- Nanovector therapeutics.
- Review of Medical Physiology.
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- An Integrated Approach for the Rational Design of NanoVectors for Biomedical Imaging and Therapy
- Role of particle size, shape, and stiffness in design of intravascular drug delivery systems: insights from computations, experiments, and nature.
- Size-Dependent Nanoparticle Margination and Adhesion Propensity in a Microchannel
- Generation of shear adhesion map using SynVivo synthetic microvascular networks.
- Nanomedicine(s) under the microscope.
- Time dependent dispersion of nanoparticles in blood vessels
- Electroless deposition of metal nanoparticle clusters: Effect of pattern distance
- Adhesion Patterns in the Microvasculature are Dependent on Bifurcation Angle
- Selective on site separation and detection of molecules in diluted solutions with super-hydrophobic clusters of plasmonic nanoparticles.
- Computational study of particle size effects on selective binding of nanoparticles in arterial stenosis
- The Five Ws (and one H) of Super-Hydrophobic Surfaces in Medicine
- Flow and Adhesion of Drug Carriers in Blood Vessels Depend on their Shape: A Study using Model Synthetic Microvascular Networks
- Particle Margination and Its Implications on Intravenous Anticancer Drug Delivery
- Characterization of nanoparticle delivery in microcirculation using a microfluidic device
- Direct intercalation of cisplatin into zirconium phosphate nanoplatelets for potential cancer nanotherapy
- Synthetic Tumor Networks for Screening Drug Delivery Systems
- Pharmaceutical Differences Between Block Copolymer Self-Assembled and Cross-Linked Nanoassemblies as Carriers for Tunable Drug Release
- Dynamic Factors Controlling Targeting Nanocarriers to Vascular Endothelium
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