Nanoparticle Delivery

Nanoparticle delivery is a drug-delivery approach that uses nanoscale carriers to transport therapeutic molecules to selected tissues or cells, potentially improving treatment precision and stability. These carriers can encapsulate or bind small-molecule drugs, proteins, or nucleic acids; their size, composition, surface chemistry, and release properties influence circulation, tissue distribution, cellular uptake, and cargo release. In clinical research, nanoparticle delivery supports formulations designed to protect fragile therapeutics, reduce off-target exposure, and improve pharmacokinetics, including applications in cancer treatment, vaccination, and gene-based therapies. Its development connects materials science with pharmacology and may enable safer, more effective treatments for diseases that are difficult to target with conventional formulations.

Nanoparticle Delivery - Related Videos

Research

JoVE Journal - Bioengineering

Manufacture and Drug Delivery Applications of Silk Nanoparticles

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Cited by 49 •

2016

Nanoparticles are emerging as promising drug delivery systems for a broad range of indications. Here, we describe a simple yet powerful method to manufacture silk nanoparticles using reverse engineered Bombyx mori silk. These silk nanoparticles can be readily loaded with a therapeutic payload and subsequently explored for drug delivery applications.

Evaluation of Polymeric Gene Delivery Nanoparticles by Nanoparticle Tracking Analysis and High-throughput Flow Cytometry

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Cited by 9 •

2013

A protocol for nanoparticle tracking analysis (NTA) and high-throughput flow cytometry to evaluate polymeric gene delivery nanoparticles is described. NTA is utilized to characterize the nanoparticle particle size distribution and the plasmid per particle distribution. High-throughput flow cytometry enables quantitative transfection efficacy evaluation for a library of gene delivery biomaterials.

Nanoparticle-Mediated Enhanced Delivery of an Anti-Inflammatory Drug in Microglia-Like Cells

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2025

Take cultures of human monocyte-derived microglia-like cells.Introduce nanoparticles containing an anti-inflammatory drug into the experimental culture and the free drug into the control.The nanoparticles feature a hydrophilic shell and a hydrophobic core encapsulating the lipophilic drug.The cells endocytose the nanoparticles, which release the drug intracellularly, enhancing its delivery.The free drug enters by passive diffusion, a process constrained by the concentration gradient, which...

Focused Ultrasound-Enhanced Nanoparticle Delivery in a Mouse Model for Tumor Therapy

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2025

Begin with an anesthetized tumor-bearing mouse and shave its head.Place it in an MRI scanner integrated with the focused ultrasound system.The initial MRI scan locates the brain tumor and nearby blood vessels.Inject a contrast agent intravenously, then administer fluorescently labeled nanoparticles coated onto gas-filled microbubbles.The contrast agent and microbubbles circulate and reach the brain.Apply focused ultrasound waves to the tumor site.The ultrasound causes the microbubbles to expand...

Targeted Plasma Membrane Delivery of a Hydrophobic Cargo Encapsulated in a Liquid Crystal Nanoparticle Carrier

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Cited by 3 •

2017

A liquid crystal nanoparticle (LCNP) nanocarrier is exploited as a vehicle for the controlled delivery of a hydrophobic cargo to the plasma membrane of living cells.

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