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互穿网络水凝胶的生物学应用。

The biological applications of IPN hydrogels.

作者信息

León-Campos María I, Mendoza Juan J, Aguayo-Morales Hilda, Cobos-Puc Luis E, Cabrera-Munguía Denis A, Claudio-Rizo Jesús A

机构信息

Facultad de Ciencias Químicas, Universidad Autónoma de Coahuila, Ing. J. Cárdenas Valdez S/N, República, 25280 Saltillo, Coahuila, México.

出版信息

ADMET DMPK. 2024 Aug 14;12(4):581-621. doi: 10.5599/admet.2398. eCollection 2024.

Abstract

BACKGROUND AND PURPOSE

Interpenetrating polymer network (IPN) hydrogels are an adaptable category of materials, exhibiting remarkable promise for various biological applications due to their distinctive structural and functional attributes. This review delves into the synthesis of IPN hydrogels through both physical and chemical methodologies, elucidating how these techniques allow for precise tailoring of mechanical properties, swelling behaviour, and biocompatibility.

EXPERIMENTAL APPROACH

We conducted an extensive literature review by searching well-established online research databases for articles published since 2009 to gather comprehensive data on IPN hydrogels.

KEY RESULTS

Our review highlights several critical applications of IPN hydrogels in the biomedical field; i) Tissue engineering: IPN hydrogels are evaluated for their capacity to emulate the extracellular matrix, making them excellent scaffolds for tissue engineering; ii) Controlled drug release: The ability of IPN hydrogels to modulate drug release rates and protect bioactive molecules is explored. Their structure enables sustained and targeted delivery of therapeutic agents, enhancing treatment efficacy; iii) 3D bioprinting: The use of IPN hydrogels as bioinks for 3D bioprinting is assessed, demonstrating their capability to construct intricate, biomimetic structures with high precision; and iv) Regenerative medicine: the development of biomimetic IPN hydrogels for regenerative medicine, emphasizing their potential to closely replicate natural biological environments, thereby promoting effective tissue repair and regeneration.

CONCLUSION

IPN hydrogels emerge as a versatile and multifaceted platform with significant implications for advancing biomedical science and clinical therapies. Their diverse applications highlight their potential to revolutionize current biomedical practices and contribute to the development of innovative therapeutic solutions.

摘要

背景与目的

互穿聚合物网络(IPN)水凝胶是一类适应性强的材料,因其独特的结构和功能特性,在各种生物应用中展现出显著的前景。本综述深入探讨了通过物理和化学方法合成IPN水凝胶的过程,阐明了这些技术如何实现对机械性能、溶胀行为和生物相容性的精确调控。

实验方法

我们通过搜索自2009年以来发表的文章的权威在线研究数据库,进行了广泛的文献综述,以收集有关IPN水凝胶的全面数据。

关键结果

我们的综述突出了IPN水凝胶在生物医学领域的几个关键应用;i)组织工程:评估了IPN水凝胶模拟细胞外基质的能力,使其成为组织工程的优良支架;ii)控释药物:探索了IPN水凝胶调节药物释放速率和保护生物活性分子的能力。其结构能够实现治疗剂的持续和靶向递送,提高治疗效果;iii)3D生物打印:评估了IPN水凝胶作为3D生物打印生物墨水的用途,证明了它们能够高精度构建复杂的仿生结构;iv)再生医学:用于再生医学的仿生IPN水凝胶的开发,强调了它们紧密复制自然生物环境的潜力,从而促进有效的组织修复和再生。

结论

IPN水凝胶成为一个多功能且多方面的平台,对推进生物医学科学和临床治疗具有重要意义。它们的多样应用突出了其革新当前生物医学实践并为创新治疗方案的发展做出贡献的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b59f/11517517/6f3af9b1a3af/ADMET-12-2398-g001.jpg

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