Photo-patterning Method

Photo-patterning methods use spatially controlled light exposure to create defined chemical, physical, or biological patterns on a surface or within a material, enabling researchers to organize cells and signals with high spatial precision. In developmental biology, a light-sensitive material or photoreactive molecule is selectively activated through a mask, projected image, or focused beam, producing regions with different properties such as cell adhesion, stiffness, or signaling activity. These patterned environments help model how position, timing, and tissue interactions guide cell fate, morphogenesis, and organ formation. The approach supports controlled studies of development and can inform engineered tissues and regenerative medicine.

Photo-patterning Method - Related Videos

Research

JoVE Journal - Bioengineering

A Versatile Method of Patterning Proteins and Cells

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Cited by 10 •

2017

This report describes a simple, easy to perform technique, using low pressure vacuum, to fill microfluidic channels with cells and substrates for biological research.

Research

JoVE Journal - Engineering
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In situ Photo-rheology Monitors Viscoelastic Changes in Photo-responsive Polymer Networks

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2025

We describe a procedure used to collect in situ photo-rheology measurements of polymeric materials undergoing photo-responsive liquid-to-solid transitions.

Nanomoulding of Functional Materials, a Versatile Complementary Pattern Replication Method to Nanoimprinting

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Cited by 1 •

2013

We describe a nanomoulding technique which allows low-cost nanoscale patterning of functional materials, materials stacks and full devices. Nanomoulding can be performed on any nanoimprinting setup and can be applied to a wide range of materials and deposition processes.

Predicting Gene Silencing Through the Spatiotemporal Control of siRNA Release from Photo-responsive Polymeric Nanocarriers

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Cited by 6 •

2017

We present a novel method that uses photo-responsive block copolymers for more efficient spatiotemporal control of gene silencing with no detectable off-target effects. Additionally, changes in gene expression can be predicted using straightforward siRNA release assays and simple kinetic modeling.

Preparation of Polyoxometalate-based Photo-responsive Membranes for the Photo-activation of Manganese Oxide Catalysts

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Cited by 2 •

2018

Here, we present a protocol to prepare charge transfer chromophores based on a polyoxometalate/polymer composite membrane.

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