Multi-layered Beads

Multi-layered beads are engineered spherical particles built from a core and one or more surrounding layers, allowing their physical and chemical properties to be tailored for medical use. Each layer can provide a distinct function, such as carrying an active compound, controlling diffusion, protecting sensitive contents, or presenting molecules at the bead surface; layer-by-layer fabrication determines how these functions interact. In medicine, multi-layered beads support controlled drug delivery, cell encapsulation, biosensing, and separation technologies. Their tunable composition, permeability, and surface chemistry can improve treatment localization, protect therapeutic agents, and enable more precise control over biological interactions.

Multi-layered Beads - Related Videos

Research

JoVE Journal - Bioengineering

Synthetic, Multi-Layer, Self-Oscillating Vocal Fold Model Fabrication

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Cited by 49 •

2011

The methodology for fabricating synthetic vocal fold models is described. The models are life-sized and mimic the multi-layer structure of the human vocal folds. Results show the models to self-oscillate at pressures comparable to lung pressure and demonstrate flow-induced vibratory responses that are similar to those of human vocal folds.

Immobilization of Multi-biocatalysts in Alginate Beads for Cofactor Regeneration and Improved Reusability

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Cited by 16 •

2016

Presented is the protocol for co-immobilizing whole-cell biocatalysts for cofactor regeneration and improved reusability, using the production of L-xylulose as an example. The cofactor regeneration is achieved by coupling two Escherichia coli strains expressing functionally complementary enzymes; the whole-cell biocatalyst immobilization is achieved by cell encapsulation in calcium alginate beads.

Research

JoVE Journal - Bioengineering
Free Sample

Separating Beads and Cells in Multi-channel Microfluidic Devices Using Dielectrophoresis and Laminar Flow

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Cited by 8 •

2011

Dielectrophoresis (DEP) is an effective method to manipulate cells. Printed circuit boards (PCB) can provide inexpensive, reusable and effective electrodes for contact-free cell manipulation within microfluidic devices. By combining PDMS-based microfluidic channels with coverslips on PCBs, we demonstrate bead and cell manipulation and separation within multichannel microfluidic devices.

Characterization Of Multi-layered Fish Scales (Atractosteus spatula) Using Nanoindentation, X-ray CT, FTIR, and SEM

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Cited by 15 •

2014

This paper presents the methods used for probing spatially correlated chemical, structural, and mechanical properties of the multilayered scale of Atractosteus spatula (A. spatula) using nanoindentation, Fourier transform infrared (FTIR) spectroscopy, scanning electron microscopy (SEM), and X-ray computed tomography (X-ray CT). The experimental results have been used to investigate the design principles of protective biological materials.

Assessing Bacteria-Host Cell Interactions Using Biomimetic Beads

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2025

Source: Stones, D. H., et al. Biomimetic Materials to Characterize Bacteria-host Interactions. J. Vis. Exp. (2015)This video demonstrates the use of bacteriomimetic beads to quantify bacterial adhesion to host epithelial cells under competitive conditions. It outlines the steps involved in treating the cells, lysing them, and plating serial dilutions to measure colony-forming units.

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