热敏聚合物基纳米颗粒:从化学设计到先进应用。

IF 4.3 3区 化学 Q2 POLYMER SCIENCE
Giuseppe Nunziata, Marco Nava, Elisa Lacroce, Fabio Pizzetti, Filippo Rossi
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引用次数: 0

摘要

热响应聚合物已成为纳米医学的前沿工具,为靶向药物输送和先进治疗策略的创新方法铺平了道路。这些“智能”聚合物对温度变化做出反应,从而在以高温为特征的病理环境中控制药物释放。通过利用其独特的相变,在较低或较高的临界溶液温度(LCST和UCST)下发生,这些系统确保局部治疗作用,最大限度地减少对健康组织的附带损害。将这些聚合物整合成具有亲水壳和疏水核的纳米颗粒,增强了它们的稳定性和生物相容性。此外,先进的聚合物工程可以通过调整组成和亲水亲脂平衡来精确调节LCST和UCST,优化它们对特定应用的响应性。除了药物递送之外,热响应纳米颗粒在基因治疗和成像等几个领域也受到了关注。因此,本文综述了热响应纳米颗粒的化学和结构多样性,重点介绍了它们有效包封和释放药物的能力。其次,这篇综述强调了热响应纳米颗粒重新定义治疗范式的潜力,提供了对其机制、应用和未来生物医学研究前景的全面理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Thermo-Responsive Polymer-Based Nanoparticles: From Chemical Design to Advanced Applications

Thermo-Responsive Polymer-Based Nanoparticles: From Chemical Design to Advanced Applications

Thermo-responsive polymers have emerged as a cutting-edge tool in nanomedicine, paving the way for innovative approaches to targeted drug delivery and advanced therapeutic strategies. These “smart” polymers respond to temperature changes, enabling controlled drug release in pathological environments characterized by high temperatures. By exploiting their unique phase transition, occurring at the lower or upper critical solution temperatures (LCST and UCST), these systems ensure localized therapeutic action, minimizing collateral damage to healthy tissues. The integration of these polymers into nanoparticles with hydrophilic shells and hydrophobic cores enhances their stability and biocompatibility. Furthermore, advanced polymer engineering allows precise modulation of LCST and UCST through adjustments in composition and hydrophilic-lipophilic balance, optimizing their responsiveness for specific applications. In addition to drug delivery, thermo-responsive nanoparticles are gaining attention in several fields such as gene therapy and imaging. Therefore, this review explores the chemical and structural diversity of thermo-responsive nanoparticles, emphasizing their ability to encapsulate and release drugs effectively. Second, this review highlights the potential of thermo-responsive nanoparticles to redefine treatment paradigms, providing a comprehensive understanding of their mechanisms, applications, and future perspectives in biomedical research.

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来源期刊
Macromolecular Rapid Communications
Macromolecular Rapid Communications 工程技术-高分子科学
CiteScore
7.70
自引率
6.50%
发文量
477
审稿时长
1.4 months
期刊介绍: Macromolecular Rapid Communications publishes original research in polymer science, ranging from chemistry and physics of polymers to polymers in materials science and life sciences.
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