Trimethoxy Silyl End-Capped Hyperbranched Polyglycidol/Polycaprolactone Particle Gels for Cell Delivery and Tissue Repair: Mechanical Properties, Biocompatibility, and Biodegradability Studies

IF 3 Q2 MATERIALS SCIENCE, COMPOSITES
Clara González-Chomón, Vasil M. Garamus, Judith Hoyland, Silvia S. Halacheva
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引用次数: 0

Abstract

This study focuses on the development of new biocompatible and biodegradable particle gel scaffolds based on PCL-HBPG/1SiHBPG triblock copolymers composed of a polycaprolactone (PCL) core and two outer blocks of trimethoxysilyl end-capped hyperbranched polyglycidol (HBPG/1SiHBPG) that have the potential to be used in soft tissue regeneration. The relationship between the gel’s composition, structure, mechanical properties, and performance has been investigated for the first time and the copolymer design parameters have been optimized. The particle gel scaffolds were formed from the concentrated dispersions of the most hydrophobic PCL-45HBPG/1SiHBPG at low temperatures, and were the result of the numerous hydrogen bonds formed from the HBPG/1SiHBPG moieties as well as the formation of siloxane crosslinks (i.e., Si–O–Si bonds). These gels were formed in the physiological temperature range. Gels with a mechanical strength that gradually increases were formed from the physically crosslinked PCL-45HBPG/1SiHBPG particles effectively and safely, in the absence of UV radiation. They feature high elasticity and undergo enzyme-triggered disassembly. The gels are biocompatible and have the potential to invoke cell attachment and differentiation in the absence of exogenous biological stimuli. A successful outcome of this study will be the prospect of a new approach for tissue regeneration that is currently not available.
用于细胞传递和组织修复的三甲氧基硅基末端超支化聚甘油/聚己内酯颗粒凝胶:机械性能,生物相容性和生物降解性研究
本研究的重点是基于聚己内酯(PCL)内核和三甲氧基硅基端端超支化聚甘油三酯(HBPG/1SiHBPG)三嵌段共聚物的PCL-HBPG/1SiHBPG三嵌段共聚物的生物相容性和可生物降解的新型颗粒凝胶支架的开发,这些共聚物具有用于软组织再生的潜力。首次研究了凝胶的组成、结构、力学性能和性能之间的关系,并对共聚物的设计参数进行了优化。颗粒凝胶支架是由最疏水的PCL-45HBPG/1SiHBPG在低温下浓缩分散形成的,是HBPG/1SiHBPG部分形成大量氢键以及硅氧烷交联(即Si-O-Si键)形成的结果。这些凝胶在生理温度范围内形成。在没有紫外线辐射的情况下,物理交联的PCL-45HBPG/1SiHBPG颗粒有效安全地形成了机械强度逐渐增加的凝胶。它们具有高弹性,并经过酶触发的拆卸。凝胶具有生物相容性,在没有外源生物刺激的情况下具有激发细胞附着和分化的潜力。这项研究的一个成功结果将是一种目前无法获得的组织再生新方法的前景。
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来源期刊
Journal of Composites Science
Journal of Composites Science MATERIALS SCIENCE, COMPOSITES-
CiteScore
5.00
自引率
9.10%
发文量
328
审稿时长
11 weeks
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