Model-based modular hydrogel design

被引:0
|
作者
Nathan Richbourg [1 ]
Marissa E. Wechsler [2 ]
J. Jesus Rodriguez-Cruz [3 ]
Nicholas A. Peppas [1 ]
机构
[1] The University of Texas at Austin,Department of Biomedical Engineering
[2] The University of Texas at Austin,Institute for Biomaterials, Drug Delivery, and Regenerative Medicine
[3] The University of Texas at San Antonio,Department of Biomedical Engineering and Chemical Engineering
[4] The University of Texas at Austin,Department of Chemical Engineering
[5] The University of Texas at Austin,Division of Molecular Pharmaceutics and Drug Delivery, College of Pharmacy
[6] The University of Texas at Austin,Department of Surgery and Perioperative Care, Dell Medical School
来源
Nature Reviews Bioengineering | 2024年 / 2卷 / 7期
关键词
D O I
10.1038/s44222-024-00167-4
中图分类号
学科分类号
摘要
Hydrogels — water-insoluble, three-dimensional networks of polymer chains — are used as biomaterials in various biomedical and clinical applications. Their modularity and versatility have led to the development of increasingly complex hydrogels, which can dynamically respond to their environment, release drugs and regenerate cells and tissues. In this Review, we present a model-based modular hydrogel design framework that is application-driven and considers clinical translation early in the design process. In this approach, every component of the hydrogel formulation is optimized towards multifaceted design criteria of the target application, identifying how multiple properties can be integrated into a single formulation. We highlight the fundamental models of polymer physics that provide the basis of modular hydrogel design and examine how synthetic polymer precursors can be integrated to achieve such modularity. Finally, we discuss clinically approved hydrogel formulations, and investigate how challenges in clinical translation may be addressed by a modular design approach.
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页码:575 / 587
页数:12
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