3D Printed Drug Delivery Systems in Action–Magnetic Resonance Imaging and Relaxometry for Monitoring Mass Transport Phenomena

松弛法 材料科学 PEG比率 聚乙二醇 药物输送 放松(心理学) 磁共振成像 核磁共振 化学工程 分析化学(期刊) 纳米技术 化学 色谱法 自旋回波 物理 经济 工程类 放射科 财务 社会心理学 医学 心理学
作者
Ewelina Baran,A. Birczyński,Bartłomiej Milanowski,J. Klaja,Piotr Nowak,Przemysław Dorożyński,Piotr Kulinowski
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:16 (31): 40714-40725 被引量:5
标识
DOI:10.1021/acsami.4c08501
摘要

The hypothesis of the study was that (1) 3D printed drug delivery systems (DDS) could be characterized in situ during drug release using NMR/MRI techniques in terms of mass transport phenomena description (interfacial phenomena), particularly for systems dealing with two mobile phases (e.g., water and low molecular weight liquid polymer); (2) consequently, it could be possible to deduce how these interfacial mass transport phenomena influence functional properties of 3D printed DDS. Matrix drug delivery systems, prepared using masked stereolithography (MSLA), containing poly(ethylene glycol) diacrylate (PEGDA) and low molecular weight polyethylene glycol (PEG) with ropinirole hydrochloride (RH) were studied as example formulations. The PEGDA to PEG (mobile phase) concentration ratio influenced drug release. It was reflected in spatiotemporal changes in parametric T2 relaxation time (T2) and amplitude (A) images obtained using magnetic resonance imaging (MRI) and T1-T2 relaxation time correlations obtained using low-field time-domain nuclear magnetic resonance (LF TD NMR) relaxometry during incubation in water. For most of the tested formulations, two signal components related to PEG and water were assessed in the hydrated matrices by MRI relaxometry (parametric T2/A images). The PEG component faded out due to outward PEG diffusion and was gradually replaced by the water component. Both components spatially and temporally changed their parameters, reflecting evolving water-polymer interactions. The study shows that dynamic phenomena related to bidirectional mass transport can be quantified in situ using NMR and MRI techniques to gain insight into drug release mechanisms from 3D printed DDS systems.
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