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可生物降解、生物相容且可交联的聚合物使生物安全且可持续的软凝胶和纳米凝胶能够用于生物医学应用。

Biodegradable, Biocompatible, and Crosslinkable Polymers Enable Biosafe and Sustainable Soft Gels and Nanogels for Biomedical Applications.

作者信息

Sui Binglin, Nisar Safiya, Regmi Amrit, Starosta Elisabeth

机构信息

Department of Chemistry, University of North Dakota, Grand Forks, North Dakota 58202, United States.

出版信息

Polym Sci Technol. 2025 Jun 13;1(6):569-579. doi: 10.1021/polymscitech.5c00049. eCollection 2025 Aug 26.

Abstract

To date, more biodegradable polymers have been developed due to the growing recognition of the advantages of biodegradable and biocompatible polymers for biomedical applications. In this study, we introduce the synthesis and characterization of innovative polymers that incorporate biodegradable backbones composed of trimethylolpropane and adipic acid moieties and biocleavable side chains containing pyridyl disulfide groups. Notably, their synthesis is straightforward and catalyst-free under ambient conditions, minimizing potential toxicity and immune responses caused by catalyst residues in polymer materials. The new polymers have desired molecular weight (Mn: 18.8 kDa) with a narrow dispersion (PDI: 1.32) and offer complete biodegradability, biocompatibility, crosslinking capabilities, and opportunities for covalent chemical modifications. These features make them particularly suitable for use in biomedical materials and devices. Additionally, due to their unique properties, these polymers have been successfully formulated into polymeric gels and nanogels, which are biodegradable as well. Using a near-infrared fluorescent probe as a model cargo, we demonstrated the creation of a biosafe and sustainable nanogel system for agent delivery, with an average size of approximately 70 nm. In these nanogels, agent molecules are covalently attached to the scaffold, thereby avoiding uncontrolled premature release and burst release in the bloodstream and mitigating associated systemic toxicity and side effects. The nanogels can also be easily functionalized with targeting ligands for disease-specific delivery. These polymers induced minimal toxicity toward human cells and displayed excellent in vivo biocompatibility, highlighting the significant potential of their polymeric gels and nanogels for a broad spectrum of biomedical applications.

摘要

迄今为止,由于人们越来越认识到可生物降解和生物相容性聚合物在生物医学应用中的优势,已开发出更多的可生物降解聚合物。在本研究中,我们介绍了一种创新聚合物的合成与表征,该聚合物含有由三羟甲基丙烷和己二酸部分组成的可生物降解主链以及含有吡啶二硫基团的可生物裂解侧链。值得注意的是,它们的合成在环境条件下简单且无催化剂,将聚合物材料中催化剂残留引起的潜在毒性和免疫反应降至最低。这种新型聚合物具有所需的分子量(Mn:18.8 kDa),分散度窄(PDI:1.32),具有完全的生物降解性、生物相容性、交联能力以及共价化学修饰的机会。这些特性使其特别适用于生物医学材料和设备。此外,由于其独特的性质,这些聚合物已成功配制成可生物降解的聚合物凝胶和纳米凝胶。以近红外荧光探针作为模型载药,我们展示了一种用于药物递送的生物安全且可持续的纳米凝胶系统的创建,其平均尺寸约为70 nm。在这些纳米凝胶中,药物分子共价连接到支架上,从而避免在血液中不受控制的过早释放和突释,并减轻相关的全身毒性和副作用。纳米凝胶还可以很容易地用靶向配体进行功能化,以实现疾病特异性递送。这些聚合物对人类细胞的毒性极小,并在体内表现出优异的生物相容性,突出了其聚合物凝胶和纳米凝胶在广泛的生物医学应用中的巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b64/12392724/8f3f078999e2/ps5c00049_0001.jpg

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