RAFT聚合纳米材料在MRI辅助生物医学应用中的进展与展望

IF 26 1区 化学 Q1 POLYMER SCIENCE
Wei Zhao , Chenlong Li , Jun Chang , Huimin Zhou , Deshuo Wang , Jingjiang Sun , Tianqing Liu , Hui Peng , Qingfu Wang , Yanan Li , Andrew K. Whittaker
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引用次数: 0

摘要

磁共振成像(MRI)被认为是最强大的临床成像模式,因为它能够在不使用有害放射性核素或电离辐射的情况下以非侵入性的方式产生详细的三维解剖图像和高空间分辨率。用于MRI的常规小分子造影剂(CA),如顺磁性过渡金属离子螯合物或氧化铁纳米颗粒,受到较低的弛豫性、较短的血液循环时间及其潜在毒性影响的限制。因此,能够通过MRI检测的功能性聚合物变得很有吸引力,由于其化学灵活性、结构多样性和特性的定制,提供了预设计的独特优势。可逆加成-断裂链转移(RAFT)聚合是一种强大的工具,它不仅能够精确形成具有复杂结构和功能的大分子构建块,而且为制备适合生物医学应用的多种形态的聚合物纳米颗粒提供了一种直接的方法。此外,当将RAFT聚合物与无机/金属复合物纳米复合物相结合时,该聚合物提供了封装治疗分子的能力,从而在所谓的治疗纳米医学中结合诊断和治疗功能。在这篇综述中,我们重点介绍了通过RAFT聚合设计和制备的多功能聚合物作为MRI CA的最新进展及其在疾病诊断和治疗中的性能。此外,这篇综述将探讨RAFT介导的基于MRI的治疗方法在指导包括恶性肿瘤在内的疾病治疗方面的挑战和未来机遇。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Advances and prospects of RAFT polymerization-derived nanomaterials in MRI-assisted biomedical applications

Advances and prospects of RAFT polymerization-derived nanomaterials in MRI-assisted biomedical applications

Magnetic resonance imaging (MRI) is recognized as the most powerful clinical imaging modality due to its ability to produce detailed three-dimensional anatomical images and high spatial resolution in a non-invasive manner without the use of harmful radioactive nuclides or ionizing radiation. Conventional small molecule contrast agents (CAs) for MRI, such as paramagnetic transition metal ion chelates or iron oxide nanoparticles, are limited by lower relaxivity, shorter blood circulation time and their potential toxic effects. Functional polymers capable of being detected by MRI have therefore become attractive, offering the unique advantage of pre-design due to their chemical flexibility, structural diversity, and tailoring of properties. Reversible addition-fragmentation chain-transfer (RAFT) polymerization is a powerful tool that not only enables the precise formation of macromolecular building blocks with complex structures and functions, but also provides a direct method for preparation of polymeric nanoparticles with multiple morphologies suitable for biomedical applications. In addition, when combining RAFT polymers with inorganic/metallic complex nanocomposites, the polymer provides the ability to encapsulate therapeutic molecules, thereby combining diagnostic and therapeutic functions in what is known as a theranostic nanomedicine. In this review, we highlight recent advances in the development of multifunctional polymers as MRI CAs designed and prepared by RAFT polymerization and their performance in diagnosis and treatment of disease. In addition, the review will address the challenges and future opportunities for RAFT-mediated MRI-based theranostics in guiding the treatment of diseases including malignant tumors.

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来源期刊
Progress in Polymer Science
Progress in Polymer Science 化学-高分子科学
CiteScore
48.70
自引率
1.10%
发文量
54
审稿时长
38 days
期刊介绍: Progress in Polymer Science is a journal that publishes state-of-the-art overview articles in the field of polymer science and engineering. These articles are written by internationally recognized authorities in the discipline, making it a valuable resource for staying up-to-date with the latest developments in this rapidly growing field. The journal serves as a link between original articles, innovations published in patents, and the most current knowledge of technology. It covers a wide range of topics within the traditional fields of polymer science, including chemistry, physics, and engineering involving polymers. Additionally, it explores interdisciplinary developing fields such as functional and specialty polymers, biomaterials, polymers in drug delivery, polymers in electronic applications, composites, conducting polymers, liquid crystalline materials, and the interphases between polymers and ceramics. The journal also highlights new fabrication techniques that are making significant contributions to the field. The subject areas covered by Progress in Polymer Science include biomaterials, materials chemistry, organic chemistry, polymers and plastics, surfaces, coatings and films, and nanotechnology. The journal is indexed and abstracted in various databases, including Materials Science Citation Index, Chemical Abstracts, Engineering Index, Current Contents, FIZ Karlsruhe, Scopus, and INSPEC.
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