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Preparation and In Vitro Characterization of Dendrimer-based Contrast Agents for Magnetic Resonance Imaging
Published on: December 4, 2016
Designing Water-Soluble Macromolecules for Biomedical Use: PEG Chains versus Amino AcidsA Case Study in MRI Contrast
Yufei Wu1, Carlos Caro2,3, Esther Matamoros4,3
1Institut de Ciència de Materials de Barcelona, ICMAB-CSIC, Campus UAB, 08193 Bellaterra, Spain.
Abstract:
Understanding how macromolecular architecture and interfacial hydration govern magnetic relaxation is crucial for the rational design of next-generation Magnetic Resonance Imaging (MRI) contrast agents. Here, we compare two water-solubilization strategies for organic radical dendrimers: using short-chain poly-(ethylene glycol) (PEG) linkers versus amino acid-derived carboxylate sodium salt linkers. By synthesizing third- and fourth-generation dendrimers functionalized with these respective groups (denoted as GnPEG and GnNa, where n = 3, 4), we achieved well-controlled branching and radical loading. This design enables a systematic investigation into how linker chemistry governs molecular flexibility, interfacial hydration, and spin exchange efficiency. In vitro MRI revealed that the GnNa series exhibits higher longitudinal relaxivity (r 1) than the GnPEG counterparts. Electron paramagnetic resonance (EPR) spectroscopy and molecular dynamics (MD) simulations were employed to elucidate the factors underlying these differences. The combined experimental and computational analysis indicates that amino acid carboxylate linkers enhance hydration and hydrogen bonding at the dendrimer-solvent interface relative to PEG-linked analogues, correlating with improved relaxivity. In vitro and in vivo MRI studies demonstrated that G4Na achieves an r 1 of 5.01 mM-1·s-1 per molecular entity at 7 Tcomparable to or exceeding commercial Gd3+-based agentswhile maintaining physiological stability, rapid renal clearance, and effective tumor imaging capability. These findings demonstrate that fine-tuning dendrimer-solvent interface interactions through amino acid carboxylate linkers provides a robust strategy for optimizing water accessibility and relaxation efficiency in macromolecular MRI agents. This work establishes a clear structure-interface-function relationship that can guide the future design of biomacromolecules or biocolloidal architectures for biomedical imaging.

