Microfluidic Cell Culture

Microfluidic cell culture is a technique that maintains living cells in precisely controlled, miniature fluidic environments, enabling researchers to study cellular behavior with limited sample and reagent volumes. Microchannels regulate the delivery of nutrients, gases, signaling molecules, and mechanical cues through continuous or programmed flow, while channel geometry and surface properties help organize cells and create defined gradients. In developmental biology, these systems can model tissue patterning, morphogen signaling, cell migration, and interactions between neighboring cell populations under conditions that more closely reproduce local tissue environments. Their small scale and experimental control support reproducible studies of development and the design of increasingly complex tissue and organ models.

Microfluidic Cell Culture - Related Videos

Research

JoVE Journal - Bioengineering

A Microfluidic Platform for High-throughput Single-cell Isolation and Culture

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Cited by 7 •

2016

Here, we present a protocol for isolating and culturing single cells with a microfluidic platform, which utilizes a new microwell design concept to allow for high-efficiency single cell isolation and long-term clonal culture.

Microfluidic Co-culture of Epithelial Cells and Bacteria for Investigating Soluble Signal-mediated Interactions

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Cited by 17 •

2010

This protocol describes a microfluidic co-culture model for simultaneous and localized culture of epithelial cells and bacteria. This model can be used for investigating the role of different soluble molecular signals on pathogenesis as well as screen the effectiveness of putative probiotic bacterial strains.

Preparation of a Microfluidic Plate with Bacterial Cells

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2025

Source: Sutlief, A. L., et al. Live Cell Analysis of Shear Stress on Pseudomonas aeruginosa Using an Automated Higher-Throughput Microfluidic System. J. Vis. Exp. (2019).This video demonstrates the preparation of a microfluidic plate for shear stress studies in bacterial cultures. After priming the channels with media, bacterial cells are introduced into the experimental channel and incubated for attachment. Residual media and culture are removed to prepare the system for subsequent shear...

Analyzing Tooth Germ and Trigeminal Ganglia Interactions Using a Microfluidic Co-culture System

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2025

This video demonstrates the utilization of a microfluidic device to study the interactions between tooth germ pulp and trigeminal ganglia. It showcases the placement of tissues inside the microfluidic device and provides a detailed visualization of trigeminal neurite growth toward the tooth germ through the device's microgrooves. Additionally, it highlights the role of tooth-derived molecular factors in promoting or inhibiting neurite extension into the tooth germ pulp, which is crucial for...

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