Mechanical Entrapment

Mechanical entrapment is the physical confinement of molecules, ions, or larger particles within a host structure without forming permanent covalent bonds, making it an important strategy in chemistry for controlling molecular mobility. It occurs when a species enters pores, cages, polymer networks, or gel matrices whose openings and internal spaces restrict escape through size, shape, or diffusion barriers. The trapped material can retain its chemical function while the host provides stability, selectivity, or a localized reaction environment. Applications include immobilizing catalysts and enzymes, separating chemical species, developing sensors, and designing controlled-release systems. These systems also support research in supramolecular chemistry and functional materials.

Mechanical Entrapment - Related Videos

Research

JoVE Journal - Chemistry

CN-GELFrEE - Clear Native Gel-eluted Liquid Fraction Entrapment Electrophoresis

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Cited by 11 •

2016

This protocol describes how to prepare and perform clear native gel-eluted liquid fraction entrapment electrophoresis (CN-GELFrEE), a native separation technique for non-covalent biomolecular assemblies and proteins from heterogeneous samples that is compatible with various downstream protein analysis techniques.

Mechanical Stimulation of Chondrocyte-agarose Hydrogels

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Cited by 29 •

2012

The biosynthesis of cartilaginous extracellular matrix by chondrocytes can be affected by application of mechanical stimuli. This method describes the technique of applying dynamic compressive strains to chondrocytes encapsulated in 3D constructs and the evaluation of induced changes in chondrocyte metabolism.

Preparation and Characterization of Individual and Multi-drug Loaded Physically Entrapped Polymeric Micelles

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Cited by 11 •

2015

The goal of this protocol is to describe the preparation and characterization of physically entrapped, poorly water soluble drugs in micellar drug delivery systems composed of amphiphilic block copolymers.

Research

JoVE Journal - Bioengineering
Free Sample

Preparation and Characterization of Nanoliposomes for the Entrapment of Bioactive Hydrophilic Globular Proteins

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Cited by 15 •

2019

This study describes classical hydration using the thin lipid film method for nanoliposome preparation followed by nanoparticle characterization. A 47 kDa-hydrophilic and globular protein, tarin, is successfully encapsulated as a strategy to improve stability, avoid fast clearance, and promote controlled release. The method can be adapted to hydrophobic molecules encapsulation.

Education

JoVE Core - Chemistry

Reaction Mechanisms

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2020

Chemical reactions often occur in a stepwise fashion, involving two or more distinct reactions taking place in a sequence. A balanced equation indicates the reacting species and the product species, but it reveals no details about how the reaction occurs at the molecular level. The reaction mechanism (or reaction path) provides details regarding the precise, step-by-step process by which a reaction occurs. For instance, the decomposition of ozone appears to follow a mechanism with two steps:

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