Peg-mal Functionalization

PEG-MAL functionalization is a chemical strategy that modifies polyethylene glycol (PEG) materials with maleimide groups, enabling selective attachment of biological or synthetic molecules. The maleimide group reacts rapidly with thiol groups through a covalent thiol–maleimide addition, often under mild, near-physiological conditions, to create stable PEG conjugates or crosslinked networks. In neuroscience, this chemistry supports the design of biomaterials and hydrogels that present peptides, proteins, or other signaling molecules, helping regulate cell adhesion, neurite growth, and local delivery of therapeutic compounds. Its controlled reactivity and aqueous compatibility make it useful for engineering neural tissue models and biointerfaces.

Peg-mal Functionalization - Related Videos

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JoVE Journal - Neuroscience
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Electrophysiology of Scorpion Peg Sensilla

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Cited by 4 •

2011

This article describes an electrophysiological method for isolating chemical stimulation to individual sensilla via extracellular, tip-recordings under mineral oil.

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JoVE EoE - Immunodiagnostics

A Peg Plate Biofilm Assay for Screening Antibacterial Agents

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2025

This video demonstrates an assay for screening antimicrobial compounds that efficiently eliminate biofilms using a peg-plate. The methodology monitors the biofilm's metabolic state after treatment with antimicrobial compounds, facilitating the determination of the minimum biofilm eradication concentration.

Research

JoVE Journal - Biology
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Efficient Polyethylene Glycol (PEG) Mediated Transformation of the Moss Physcomitrella patens

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Cited by 60 •

2011

A simple and efficient method to transform Physcomitrella pantens protoplasts is described. This method is adapted from protocols for Physocmitrella protonemal protoplast and Arabidopsis mesophyll protoplast transformation1.

Particles without a Box: Brush-first Synthesis of Photodegradable PEG Star Polymers under Ambient Conditions

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Cited by 17 •

2013

Poly(ethylene glycol) (PEG) brush-arm star polymers (BASPs) with narrow mass distributions and tunable nanoscopic sizes are synthesized in via ring opening metathesis polymerization (ROMP) of a PEG-norbornene macromonomer followed by transfer of portions of the resulting living brush initiator to vials containing varied amounts of a rigid, photo-cleavable bis-norbornene crosslinker.

Generation and Recovery of β-cell Spheroids From Step-growth PEG-peptide Hydrogels

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Cited by 5 •

2012

The following protocol provides techniques for encapsulating pancreatic β-cells in step-growth PEG-peptide hydrogels formed by thiol-ene photo-click reactions. This material platform not only offers a cytocompatible microenvironment for cell encapsulation, but also permits user-controlled rapid recovery of cell structures formed within the hydrogels.

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