Advancements in electron paramagnetic resonance (EPR) spectroscopy: A comprehensive tool for pharmaceutical research.

IF 2.1 4区 医学 Q3 PHARMACOLOGY & PHARMACY Acta Pharmaceutica Pub Date : 2025-01-09 Print Date: 2024-12-01 DOI:10.2478/acph-2024-0037
Erim Bešić, Zrinka Rajić, Davor Šakić
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Abstract

Electron paramagnetic resonance (EPR) spectroscopy has long been established across various scientific disciplines for characterizing organic radicals, organometallic complexes, protein structures and dynamics, polymerization processes, and radical degradation phenomena. Despite its extensive utility in these areas, EPR spectroscopy's application within pharmaceutical science has historically been constrained, primarily due to factors such as high equipment costs, a steep learning curve, complex spectral deconvolution and analysis, and a traditional lack of emphasis on single-electron chemistry in pharmaceutical research. This review aims to provide a thorough examination of EPR spectroscopy's applications in analyzing a wide array of para-magnetic species relevant to pharmaceutical research. We detail how EPR spectroscopy can be employed to assess free radical scavenging properties in pharmaceutical compounds, elucidate drug mechanisms of action, and explore pharmacokinetics. Additionally, we investigate the role of free radicals in drug-induced toxicity and drug-membrane interactions, while also covering the application of EPR spectroscopy in drug delivery research, advanced studies of metallodrugs, and monitoring of oxygen levels in biological systems through EPR oximetry. The recent advancements in the miniaturization of EPR spectro meters have paved the way for their application in on-site and in-line mo nitoring during the manufacturing process and quality control of pharmaceutical substances and final drug formulations due to being the only direct and non-invasive detection technique for radical detection. Through these discussions, we highlight the substantial contributions of EPR spectroscopy to the advancement of pharmaceutical sciences.

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电子顺磁共振(EPR)光谱研究进展:药物研究的综合工具。
电子顺磁共振(EPR)光谱学早已在各个科学学科中建立,用于表征有机自由基、有机金属配合物、蛋白质结构和动力学、聚合过程和自由基降解现象。尽管EPR光谱在这些领域得到了广泛的应用,但它在制药科学中的应用一直受到限制,这主要是由于设备成本高、学习曲线陡峭、光谱反卷积和分析复杂以及传统上缺乏对药物研究中单电子化学的重视等因素。本文综述了EPR光谱在分析与药物研究相关的一系列对磁物质方面的应用。我们详细介绍了EPR光谱如何用于评估药物化合物中的自由基清除特性,阐明药物作用机制,并探索药代动力学。此外,我们还研究了自由基在药物诱导毒性和药物-膜相互作用中的作用,同时也涵盖了EPR光谱在药物传递研究、金属药物的高级研究以及通过EPR氧饱和度法监测生物系统中氧水平的应用。EPR光谱仪在小型化方面的最新进展为其在制造过程中的现场和在线mo监测以及原料药和最终药物配方的质量控制中应用铺平了道路,因为它是唯一直接和非侵入性的自由基检测技术。通过这些讨论,我们强调了EPR光谱对制药科学进步的重大贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Acta Pharmaceutica
Acta Pharmaceutica PHARMACOLOGY & PHARMACY-
CiteScore
5.20
自引率
3.60%
发文量
20
审稿时长
>12 weeks
期刊介绍: AP is an international, multidisciplinary journal devoted to pharmaceutical and allied sciences and contains articles predominantly on core biomedical and health subjects. The aim of AP is to increase the impact of pharmaceutical research in academia, industry and laboratories. With strong emphasis on quality and originality, AP publishes reports from the discovery of a drug up to clinical practice. Topics covered are: analytics, biochemistry, biopharmaceutics, biotechnology, cell biology, cell cultures, clinical pharmacy, drug design, drug delivery, drug disposition, drug stability, gene technology, medicine (including diagnostics and therapy), medicinal chemistry, metabolism, molecular modeling, pharmacology (clinical and animal), peptide and protein chemistry, pharmacognosy, pharmacoepidemiology, pharmacoeconomics, pharmacodynamics and pharmacokinetics, protein design, radiopharmaceuticals, and toxicology.
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