Pdms Microfabrication

PDMS microfabrication is the process of creating microscale structures from polydimethylsiloxane, a transparent, flexible, and biocompatible silicone widely used in bioengineering. Typically, liquid PDMS is cast over a patterned mold, cured to form an elastomeric replica, and bonded to glass or another PDMS layer to produce enclosed channels and chambers. This soft-lithography approach supports rapid fabrication of microfluidic devices with controlled fluid flow, surface patterning, and optical access. These platforms enable cell culture, tissue engineering, diagnostics, drug testing, and organ-on-a-chip research while allowing researchers to study biological processes under precisely defined microscale conditions.

Pdms Microfabrication - Related Videos

Education

JoVE Science Education - Engineering

Microfabrication via Photolithography

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2023

The fabrication of BioMEM devices is often done using a microfabrication technique called photolithography. This widely used method utilizes light to transfer a pattern onto a silicon wafer, and provides the basis for the fabrication of many types of BioMEM devices. This video presents the photolithography technique, shows how the process is performed in the cleanroom, and introduces some applications of the process.

Research

JoVE Journal - Bioengineering

Study of Cell Migration in Microfabricated Channels

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Cited by 43 •

2014

A quantitative method to study spontaneous migration of cells in a one-dimensional confined microenvironment is described. This method takes advantage of microfabricated channels and can be used to study migration of large number of cells under different conditions in single experiments.

Stretching Micropatterned Cells on a PDMS Membrane

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Cited by 6 •

2014

This manuscript presents a technique to apply or release forces on adherent cells or tissues using unidirectional stretching.

Microfabricated Platforms for Mechanically Dynamic Cell Culture

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Cited by 3 •

2010

In this protocol, we demonstrate the fabrication of a microactuator array of vertically displaced posts on which the technology is based, and how this base technology can be modified to conduct high-throughput mechanically dynamic cell culture in both two-dimensional and three-dimensional culture paradigms.

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