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Functionalized Polyethylene Glycol

Updated: 2026-07-17

Overview

Functionalized polyethylene glycol refers to PEG polymers chemically modified with reactive end groups (e.g., amine, carboxyl, maleimide) or side chains to enable conjugation with biomolecules or surfaces. These derivatives retain PEG's inherent properties—biocompatibility, hydrophilicity, and low immunogenicity—while gaining site-specific reactivity. First developed in the 1970s for protein modification, functionalized PEGs now serve as cornerstone materials in bioconjugation, drug delivery systems, and biomaterial engineering. Their modular design allows precise control over molecular architecture, making them indispensable in precision chemistry applications.

Physical and Chemical Properties

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The base PEG chain exhibits high water solubility due to ether oxygen hydrogen bonding, with viscosity increasing proportionally to molecular weight. Functionalization introduces groups like NHS esters (for amine coupling) or thiol-reactive maleimides, typically at one or both termini. Key parameters include polydispersity index (PDI <1.2 for most applications), functional group density (often >90% for bioconjugation), and absence of diol impurities. PEGs resist protein adsorption and cell adhesion, a property exploited in stealth nanoparticle coatings and anti-fouling surfaces.

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Main Applications

In pharmaceuticals, PEGylation—covalent attachment of PEG chains—extends drug half-life by reducing renal clearance and masking immunogenic epitopes. Over 20 PEGylated drugs are FDA-approved, including PEG-interferon for hepatitis C. Materials science utilizes bifunctional PEGs as crosslinkers for hydrogels with controlled swelling ratios. In diagnostics, heterobifunctional PEGs link antibodies to fluorescent probes while maintaining bioactivity. Emerging uses include PEG-based bioinks for 3D bioprinting and PEG-shielded gene delivery vectors.

Safety and Storage

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Unmodified PEG is generally recognized as safe (GRAS) by the FDA, but functionalized derivatives require hazard evaluation based on reactive groups. Azide-terminated PEGs, for example, may be explosive at high concentrations. Storage recommendations vary: NHS-activated PEGs require desiccation at –20°C due to hydrolysis sensitivity, while amine-PEGs need inert gas purging to prevent oxidation. Always consult SDS for specific derivatives. Workplace exposure limits typically follow general particulate standards (e.g., 10 mg/m³ total dust).

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B2B Procurement Guide

When sourcing functionalized PEGs, prioritize suppliers with ISO 13485 certification for medical-grade products. Key specifications to verify include: 1) Functional group quantification (e.g., via NMR or titration), 2) Residual monomer content (<1% for GMP applications), and 3) Endotoxin levels (<0.1 EU/mg for injectables). Bulk purchases (100+ kg) often qualify for 15–30% discounts. Consider custom synthesis for proprietary linkers—lead times average 4–8 weeks. For research-scale quantities, select vendors offering analytical certificates (HPLC, MS) with each batch.

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