基于透明质酸的水凝胶具有独立可调的机械和生物活性信号功能。

IF 2.1 4区 医学 Q2 Physics and Astronomy Biointerphases Pub Date : 2020-01-02 DOI:10.1063/1.5126493
Madison D Godesky, David I Shreiber
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引用次数: 0

摘要

细胞外基质通过机械和生物活性特性为驻留细胞提供重要的信号环境。为实现组织工程和再生医学的潜力,生物材料应能独立控制这些特性。本研究探讨了一种基于硫醇改性透明质酸(HA-S)和聚乙二醇二丙烯酸酯(PEGDA)的水凝胶系统。HAS-PEGDA 的机械性能由两个在不同时间点发生的细胞相容性交联反应决定:HA-硫醇和 PEG-丙烯酸酯之间快速的迈克尔型亲核加成反应,以及剩余硫醇产生的二硫化物交联的长期成熟。据推测,这些反应将使 HAS-PEGDA 的机械和生物活性特性得以独立调整。流变学研究证实,最初的凝胶化在 1 天内完成,此时剪切模量与 PEGDA 的浓度成正比。随着时间的推移,剪切模量急剧变化,最终硬度取决于 HA 硫醇的可用性。在初始凝胶化后加入 PEG-monoacrylate (PEGMA) 会占用一定比例的剩余硫醇以防止二硫交联,从而以剂量依赖的方式降低稳态刚度。然后用丙烯酸化的肽配体取代一部分 PEGMA,为原本无细胞粘附性的网络引入特定的生物活性。肽-PEGMA 的总量控制了潜伏僵化的程度,而生物活性肽和非活性肽的平衡则调节了粘附性。可调机械和生物粘附配体特性的功能效果已通过细胞粘附和形态测定得到证实。
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Hyaluronic acid-based hydrogels with independently tunable mechanical and bioactive signaling features.

Extracellular matrix provides critical signaling context to resident cells through mechanical and bioactive properties. To realize the potential of tissue engineering and regenerative medicine, biomaterials should allow for the independent control of these features. This study investigates a hydrogel system based on thiol-modified hyaluronic acid (HA-S) and polyethylene glycol diacrylate (PEGDA). The mechanical properties of HAS-PEGDA are dictated by two cytocompatible crosslinking reactions that occur at distinct time points: a rapid, Michael-type nucleophilic addition reaction between HA-thiols and PEG-acrylates and a prolonged maturation of disulfide crosslinks from remaining thiols. It is hypothesized that these reactions would enable the independent tuning of the mechanical and bioactive features of HAS-PEGDA. Rheological studies confirmed that initial gelation reached completion by 1 day, at which point the shear modulus was proportional to the concentration of PEGDA. Over time, the shear modulus evolved dramatically, and final stiffness depended on the availability of HA-thiols. The addition of PEG-monoacrylate (PEGMA) after the initial gelation occupied a percentage of remaining thiols to prevent disulfide crosslinking, decreasing the steady-state stiffness in a dose-dependent manner. A fraction of the PEGMA was then replaced with acrylated peptide ligands to introduce specific bioactivity to the otherwise non-cell-adhesive network. The degree of latent stiffening was controlled by the total amount of peptide-PEGMA, while adhesivity was tuned with the balance of bioactive and inactive peptides. The functional effects of the tunable mechanical and bioadhesive ligand properties were confirmed with assays of cell adhesion and morphology.

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来源期刊
Biointerphases
Biointerphases BIOPHYSICS-MATERIALS SCIENCE, BIOMATERIALS
CiteScore
4.10
自引率
0.00%
发文量
35
审稿时长
>12 weeks
期刊介绍: Biointerphases emphasizes quantitative characterization of biomaterials and biological interfaces. As an interdisciplinary journal, a strong foundation of chemistry, physics, biology, engineering, theory, and/or modelling is incorporated into originated articles, reviews, and opinionated essays. In addition to regular submissions, the journal regularly features In Focus sections, targeted on specific topics and edited by experts in the field. Biointerphases is an international journal with excellence in scientific peer-review. Biointerphases is indexed in PubMed and the Science Citation Index (Clarivate Analytics). Accepted papers appear online immediately after proof processing and are uploaded to key citation sources daily. The journal is based on a mixed subscription and open-access model: Typically, authors can publish without any page charges but if the authors wish to publish open access, they can do so for a modest fee. Topics include: bio-surface modification nano-bio interface protein-surface interactions cell-surface interactions in vivo and in vitro systems biofilms / biofouling biosensors / biodiagnostics bio on a chip coatings interface spectroscopy biotribology / biorheology molecular recognition ambient diagnostic methods interface modelling adhesion phenomena.
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