Pet-raft

PET-RAFT, or photoinduced electron/energy transfer reversible addition–fragmentation chain-transfer polymerization, is a light-mediated method for producing polymers with controlled molecular architectures. In this process, a photocatalyst absorbs light and transfers energy or an electron to initiate radicals, while a chain-transfer agent reversibly regulates radical addition and fragmentation to limit uncontrolled growth. Chemists can use PET-RAFT to tune polymer molecular weight, composition, and functionality under relatively mild conditions. The method supports the synthesis of advanced materials for coatings, biomaterials, nanostructures, and responsive polymer systems, linking photochemistry with precision polymer design.

Pet-raft - Related Videos

Research

JoVE Journal - Immunology and Infection

Generation of Organotypic Raft Cultures from Primary Human Keratinocytes

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Cited by 47 •

2012

An in vitro method to mimic in vivo epithelial differentiation is described. Many viruses target epithelial cells as part of their viral life cycle, and this method provides a means of examining virus:host interactions that more closely resembles that which occurs in vivo. This technique can be used with primary keratinocytes, established cell lines, as well as normal or diseased biopsy tissue.

Research

JoVE Journal - Chemistry
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Facile and Efficient Preparation of Tri-component Fluorescent Glycopolymers via RAFT-controlled Polymerization

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2015

An efficient, three-step synthesis of RAFT-based fluorescent glycopolymers, consisting of glycomonomer preparation, copolymerization, and post-modification, is demonstrated. This protocol can be used to prepare RAFT-based statistical glycopolymers with desired structures.

Determination of Lipid Raft Partitioning of Fluorescently-tagged Probes in Living Cells by Fluorescence Correlation Spectroscopy (FCS)

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Cited by 9 •

2012

A technique to probe the lipid raft partitioning of fluorescent proteins at the plasma membrane of living cells is described. It takes advantage of the disparity in diffusion times of proteins located inside or outside of lipid rafts. Acquisition can be performed dynamically in control conditions or after drug addition.

Esophageal 3D Raft Culture Model: An In Vitro Culture Technique to Generate Human Esophageal Mucosa Model

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2023

This video describes an in vitro culture technique to generate human organotypic esophageal constructs by co-culturing primary human esophageal fibroblast and squamous epithelial cells within a decellularized porcine scaffold. These 3D culture models mimic the function and physiology of their in vivo tissue counterparts.

Simultaneous PET/MRI Imaging During Mouse Cerebral Hypoxia-ischemia

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Cited by 4 •

2015

The method presented here uses simultaneous positron emission tomography and magnetic resonance imaging. In the cerebral hypoxia-ischemia model, dynamic changes in diffusion and glucose metabolism occur during and after injury. The evolving and irreproducible damage in this model necessitates simultaneous acquisition if meaningful multi-modal imaging data are to be acquired.

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