Perfusion Chamber Imaging

Perfusion chamber imaging is a live-cell microscopy method that visualizes biological samples while culture medium continuously flows through a specialized chamber. A pump or pressure-driven system regulates the delivery of nutrients, gases, and experimental compounds while removing waste and maintaining conditions such as temperature and pH. This controlled environment can also expose cells to defined fluid flow and shear stress, allowing researchers to observe dynamic responses in real time. In biology, the technique supports studies of cell signaling, migration, adhesion, barrier function, and drug effects, while reducing disruption caused by repeated sample handling and medium exchange.

Perfusion Chamber Imaging - Related Videos

Research

JoVE Journal - Biology

Brain Slice Stimulation Using a Microfluidic Network and Standard Perfusion Chamber

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Cited by 8 •

2007

We demonstrate fabrication of a simple microfluidic device that can be integrated with standard electrophysiology setups to expose microscale surfaces of a brain slice in a well controlled manner to different neurotransmitters.

Upright Imaging of Drosophila Egg Chambers

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Cited by 1 •

2015

The upright imaging method described in this protocol allows for the detailed visualization of the poles of a developing Drosophila melanogaster egg. This end-on view provides a new perspective into the arrangements and morphologies of multiple cell types in the follicular epithelium.

Research

JoVE Journal - Developmental Biology
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A Simple Chamber for Long-term Confocal Imaging of Root and Hypocotyl Development

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Cited by 25 •

2017

Presented here is a simple technique for high-resolution confocal time-lapse imaging of root and hypocotyl development for up to 3 days using high numerical-aperture objectives and perfluorodecalin as an immersion medium.

Research

JoVE Journal - Biology
Free Sample

Preparing Individual Drosophila Egg Chambers for Live Imaging

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Cited by 19 •

2012

The Drosophila egg chamber is an excellent model for studying the mechanisms of mRNA localization. In order to capture the dynamic events that underpin the processes of localization, rapid high resolution imaging of live tissue is required. Here, we present a protocol for dissection and imaging of live samples with minimal disruption.

Recording Synaptic Plasticity in Acute Hippocampal Slices Maintained in a Small-volume Recycling-, Perfusion-, and Submersion-type Chamber System

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Cited by 5 •

2018

This protocol describes the stabilization of the oxygen level in a small volume of recycled buffer and methodological aspects of recording activity-dependent synaptic plasticity in submerged acute hippocampal slices.

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