透明质酸水凝胶力学在长度尺度上的测量和比较

IF 3.9 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Aina Solsona-Pujol, Nikolas Di Caprio, Hannah M. Zlotnick, Matthew D. Davidson, Morgan B. Riffe, Jason A. Burdick
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引用次数: 0

摘要

水凝胶是一类重要的生物材料,正在被开发用于医学,如药物输送和组织工程应用。为了改善性能(例如,可注射性、营养转运、细胞侵袭),水凝胶通常被加工成水凝胶微颗粒(微凝胶),可以用作悬浮液或堵塞成颗粒状水凝胶。微凝胶的力学性能在整个长度尺度上都很重要,从颗粒组合的宏观体积特性到与细胞的微观相互作用;然而,由于测量方面的挑战,微凝胶力学很少被报道。为了解决这一问题,我们在这里报告了一种成本效益高,易于使用的DIY (DIY)主动反馈微吸管抽吸装置,用于量化单个微凝胶的力学。以降冰片烯修饰的透明质酸(NorHA)为例,通过环境友好的水凝胶反应合成水凝胶,我们比较了不同浓度下不同尺度的水凝胶力学。通过单轴压缩测试的水凝胶与通过批处理乳液(~170 μm)处理并通过微管抽吸测试的相同配方的水凝胶表现出相似的模量值,模量随大分子浓度的增加而增加的趋势,以及随时间的力学稳定性。当noha大分子浓度从3 wt%增加到5 wt%时,模量范围为~50 ~ ~100 kPa。这些发现通过球形纳米压痕测试得到了验证,测量了相似的模量。总的来说,这项工作提供了一种可访问的设备,可以快速测试微凝胶的机械性能,同时也提高了我们对跨尺度水凝胶力学的理解,用于生物医学应用的微凝胶设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Measurement and Comparison of Hyaluronic Acid Hydrogel Mechanics Across Length Scales

Hydrogels are an important class of biomaterials that are being developed for use in medicine, such as in drug delivery and tissue engineering applications. To improve properties (e.g., injectability, nutrient transport, cell invasion), hydrogels are often processed as hydrogel microparticles (microgels) that can be used as suspensions or jammed into granular hydrogels. The mechanical properties of microgels are important across length scales, from macroscale bulk properties of granular assemblies to microscale interactions with cells; however, microgel mechanics are rarely reported due to challenges in their measurement. To address this, we report here a cost-effective, easy-to-use do-it-yourself (DIY) active feedback micropipette aspiration device to quantify the mechanics of individual microgels. Using norbornene-modified hyaluronic acid (NorHA) synthesized via an environmentally friendly, aqueous reaction as an exemplary hydrogel, we compare hydrogel mechanics across scales at various macromer concentrations. Hydrogels tested via uniaxial compression exhibit similar moduli values, trends of increasing modulus with increasing macromer concentration, and mechanical stability over time to the same formulations processed as microgels via batch emulsions (~170 μm) and tested via micropipette aspiration. Moduli range from ~50 to ~100 kPa as the NorHA macromer concentration increases from 3 wt% to 5 wt%. These findings are validated by testing with spherical nanoindentation, with similar moduli measured. Collectively, this work provides an accessible device that allows for the rapid testing of microgel mechanical properties, while also improving our understanding of hydrogel mechanics across scales for use in the design of microgels for biomedical applications.

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来源期刊
Journal of biomedical materials research. Part A
Journal of biomedical materials research. Part A 工程技术-材料科学:生物材料
CiteScore
10.40
自引率
2.00%
发文量
135
审稿时长
3.6 months
期刊介绍: The Journal of Biomedical Materials Research Part A is an international, interdisciplinary, English-language publication of original contributions concerning studies of the preparation, performance, and evaluation of biomaterials; the chemical, physical, toxicological, and mechanical behavior of materials in physiological environments; and the response of blood and tissues to biomaterials. The Journal publishes peer-reviewed articles on all relevant biomaterial topics including the science and technology of alloys,polymers, ceramics, and reprocessed animal and human tissues in surgery,dentistry, artificial organs, and other medical devices. The Journal also publishes articles in interdisciplinary areas such as tissue engineering and controlled release technology where biomaterials play a significant role in the performance of the medical device. The Journal of Biomedical Materials Research is the official journal of the Society for Biomaterials (USA), the Japanese Society for Biomaterials, the Australasian Society for Biomaterials, and the Korean Society for Biomaterials. Articles are welcomed from all scientists. Membership in the Society for Biomaterials is not a prerequisite for submission.
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