交联强度决定了动态交联水凝胶的屈服行为。

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS Biomaterials Science Pub Date : 2025-02-06 DOI:10.1039/D4BM01323A
Noah Eckman, Abigail K. Grosskopf, Grace Jiang, Krutarth Kamani, Michelle S. Huang, Brigitte Schmittlein, Sarah C. Heilshorn, Simon Rogers and Eric A. Appel
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引用次数: 0

摘要

动态交联水凝胶的产生,或在固体和液体状态之间的转变,使得易于注射和应用于转化生物医学应用,包括治疗细胞的输送。不幸的是,这种转变的时变性质并没有被很好地理解,也没有设计规则来理解屈服对被包裹细胞的影响。在这里,我们揭示了控制动态交联凝胶的屈服转变的潜在分子机制,目前正在研究用于细胞治疗。我们通过非线性流变表征证明了动态水凝胶的网络动力学决定了其屈服转变的速度和特征。这些材料的流变学测试揭示了在屈服过程中意想不到的弹性应变硬化,以及屈服转变速度的表征。较慢的屈服速度解释了直接注射细胞免受剪切力的增强保护,强调了屈服应力生物材料所有阶段的机械特性的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Crosslink strength governs yielding behavior in dynamically crosslinked hydrogels†

Yielding of dynamically crosslinked hydrogels, or the transition between a solid-like and liquid-like state, allows facile injection and utility in translational biomedical applications including delivery of therapeutic cells. Unfortunately, the time-varying nature of the transition is not well understood, nor are there design rules for understanding the effects of yielding on encapsulated cells. Here, we unveil underlying molecular mechanisms governing the yielding transition of dynamically crosslinked gels currently being researched for use in cell therapy. We demonstrate through nonlinear rheological characterization that the network dynamics of the dynamic hydrogels dictate the speed and character of their yielding transition. Rheological testing of these materials reveals unexpected elastic strain stiffening during yielding, as well as characterization of the rapidity of the yielding transition. A slower yielding speed explains enhanced protection of directly injected cells from shear forces, highlighting the importance of mechanical characterization of all phases of yield-stress biomaterials.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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