在合成水凝胶中设计仿生应变加固。

IF 5.5 2区 化学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Biomacromolecules Pub Date : 2024-10-14 Epub Date: 2024-10-02 DOI:10.1021/acs.biomac.4c00756
Elisabeth Prince
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引用次数: 0

摘要

生物组织具有机械响应性,也就是说,它们的特性会随着机械刺激而发生动态变化。例如,在剪切或伸长应变的作用下,胶原蛋白、纤维蛋白、肌动蛋白和其他丝状生物材料会发生剧烈的应变-僵化。超过临界应变时,它们的刚度会增加几个数量级。虽然人们普遍认为生物组织的硬度会影响细胞表型和多种疾病,但应变僵化对生物的影响仍未得到充分研究。模拟生物组织机械弹性性质的合成水凝胶可作为这些研究的体外平台。本综述重点介绍了最近在合成水凝胶中模拟生物材料应变加固行为的努力。我们讨论了赋予合成水凝胶仿生物应变加固特性的设计原则,对迄今已报道的应变加固水凝胶的设计进行了批判性比较,并讨论了将它们用作体外平台以探究应变加固如何影响细胞行为、疾病和其他生物过程的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designing Biomimetic Strain-Stiffening into Synthetic Hydrogels.

Biological tissues are mechanoresponsive; that is, their properties dynamically change in response to mechanical stimuli. For example, in response to shear or elongational strain, collagen, fibrin, actin, and other filamentous biomaterials undergo dramatic strain-stiffening. Above a critical strain, their stiffness increases over orders of magnitude. While it is widely accepted that the stiffness of biological tissues impacts cell phenotype and several diseases, the biological impact of strain-stiffening remains understudied. Synthetic hydrogels that mimic the mechanoresponsive nature of biological tissues could serve as an in vitro platform for these studies. This review highlights recent efforts to mimic the strain-stiffening behavior of biological materials in synthetic hydrogels. We discuss the design principles for imparting synthetic hydrogels with biomimetic strain-stiffening, critically compare designs of strain-stiffening hydrogels that have been reported thus far, and discuss their use as in vitro platforms to probe how strain-stiffening impacts cell behavior, diseases, and other biological processes.

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来源期刊
Biomacromolecules
Biomacromolecules 化学-高分子科学
CiteScore
10.60
自引率
4.80%
发文量
417
审稿时长
1.6 months
期刊介绍: Biomacromolecules is a leading forum for the dissemination of cutting-edge research at the interface of polymer science and biology. Submissions to Biomacromolecules should contain strong elements of innovation in terms of macromolecular design, synthesis and characterization, or in the application of polymer materials to biology and medicine. Topics covered by Biomacromolecules include, but are not exclusively limited to: sustainable polymers, polymers based on natural and renewable resources, degradable polymers, polymer conjugates, polymeric drugs, polymers in biocatalysis, biomacromolecular assembly, biomimetic polymers, polymer-biomineral hybrids, biomimetic-polymer processing, polymer recycling, bioactive polymer surfaces, original polymer design for biomedical applications such as immunotherapy, drug delivery, gene delivery, antimicrobial applications, diagnostic imaging and biosensing, polymers in tissue engineering and regenerative medicine, polymeric scaffolds and hydrogels for cell culture and delivery.
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