Gas-filled Microbubbles

Gas-filled microbubbles are micron-scale gas spheres enclosed by stabilizing lipid, protein, or polymer shells, commonly used as ultrasound contrast agents and as tools for targeted delivery. When exposed to an ultrasound field, they oscillate, compress, and expand; at appropriate acoustic pressures, this motion enhances ultrasound scattering and can produce mechanical effects in nearby tissue. In neuroscience, focused ultrasound paired with microbubbles can transiently increase blood-brain barrier permeability, allowing selected molecules or imaging agents to reach brain tissue without permanent disruption. This approach supports vascular imaging, studies of neurovascular function, and investigation of noninvasive therapies for neurological disease.

Gas-filled Microbubbles - Related Videos

Research

JoVE EoE - Rodent Models

Injection of Microbubbles into Isolated Mouse Embryos: A Technique to Deliver Microbubble Contrast Agents into the Vasculature of Living Murine Embryos

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2025

This video demonstrates a procedure to inject microbubble contrast agents into an isolated late gestation stage mouse embryo. The microbubble contrast agent-based ultrasound imaging helps visualize and characterize the vascular environment of the embryo.

Introduction to the Ultrasound Targeted Microbubble Destruction Technique

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Cited by 19 •

2011

Ultrasound Targeted Microbubble Destruction (UTMD) can be used to direct site-specific delivery of bioactive molecules, including therapeutic genes, to target organs accessible to ultrasound, such as the heart and liver1-6.

Manufacture of Concentrated, Lipid-based Oxygen Microbubble Emulsions by High Shear Homogenization and Serial Concentration

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Cited by 12 •

2014

We describe methods for the manufacture of large volumes of lipid-based oxygen microbubbles (LOMs) designed for intravenous oxygen delivery using high-shear homogenization and serial concentration.

Microbubble Fabrication of Concave-porosity PDMS Beads

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Cited by 2 •

2015

Procedures used to generate microstructured concave-porosity polydimethylsiloxane beads are presented. Effects of electrolyte concentration and identity within the aqueous phase are particularly emphasized.

Education

JoVE Lab Manual - Chemistry

Ideal Gas Law - Concepts

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2020

Derivation of the Ideal Gas Law Gases are a fundamental state of matter. A gas is a collection of molecules that have a significant distance between their molecules. Due to this distance, colorless gases are invisible to the human eye and are studied using four measurable parameters: pressure (P), volume (V), number of moles (n), and temperature (T). The ideal gas law is a mathematical equation that relates all of these parameters. It is a combination of several different laws that describe the...

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