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Highly Tunable Elastomeric Silk Biomaterials

机译:高度可调的弹性丝生物材料

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摘要

Elastomeric, fully degradable, and biocompatible biomaterials are rare, with current options presenting significant limitations in terms of ease of function-alization and tunable mechanical and degradation properties. A new method for covalently crosslinking tyrosine residues in silk proteins, via horseradish peroxidase and hydrogen peroxide, to generate highly elastic hydrogels with tunable properties, is reported. These materials offer tunable mechanical properties, gelation kinetics, and swelling properties. In addition, these new polymers withstand shear strains on the order of 100%, compressive strains greater than 70% and display stiffness between 200-10 000 Pa, covering a significant portion of the properties of native soft tissues. Molecular weight and solvent composition allow control of material mechanical properties over several orders of magnitude while maintaining high resilience and resistance to fatigue. Encapsulation of human bone marrow derived mesenchymal stem cells (hMSC) shows long term survival and exhibits cell-matrix interactions reflective of both silk concentration and gelation conditions. Further biocompatibility of these materials is demonstrated with in vivo evaluation. These new protein-based elastomeric and degradable hydrogels represent an exciting new biomaterials option, with a unique combination of properties, for tissue engineering and regenerative medicine.
机译:弹性的,可完全降解的和生物相容性的生物材料很少见,目前的选择在功能化容易程度以及可调节的机械和降解特性方面表现出明显的局限性。报道了一种通过辣根过氧化物酶和过氧化氢共价交联丝蛋白中酪氨酸残基以产生具有可调性质的高弹性水凝胶的新方法。这些材料具有可调节的机械性能,胶凝动力学和溶胀性能。此外,这些新型聚合物可承受大约100%的剪切应变,大于70%的压缩应变以及200至10 000 Pa的刚度,覆盖了天然软组织的大部分特性。分子量和溶剂组成可在超过几个数量级的范围内控制材料的机械性能,同时保持较高的回弹性和耐疲劳性。人骨髓来源的间充质干细胞(hMSC)的封装显示长期生存,并表现出反映丝浓度和胶凝条件的细胞-基质相互作用。这些材料的进一步生物相容性通过体内评估得到证明。这些新的基于蛋白质的弹性和可降解水凝胶代表了令人兴奋的新生物材料选择,具有独特的性能组合,适用于组织工程和再生医学。

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  • 来源
    《Advanced Functional Materials 》 |2014年第29期| 4615-4624| 共10页
  • 作者单位

    Department of Biomedical Engineering Tufts University 4 Colby St. Medford, MA 02155, USA;

    Department of Biomedical Engineering Tufts University 4 Colby St. Medford, MA 02155, USA;

    Department of Biomedical Engineering Tufts University 4 Colby St. Medford, MA 02155, USA;

    Department of Biomedical Engineering Tufts University 4 Colby St. Medford, MA 02155, USA;

    Department of Biomedical Engineering Tufts University 4 Colby St. Medford, MA 02155, USA;

    Department of Biomedical Engineering Tufts University 4 Colby St. Medford, MA 02155, USA;

    Department of Biomedical Engineering Tufts University 4 Colby St. Medford, MA 02155, USA;

    Department of Biomedical Engineering Tufts University 4 Colby St. Medford, MA 02155, USA;

    Department of Biomedical Engineering Tufts University 4 Colby St. Medford, MA 02155, USA;

    Department of Biomedical Engineering Tufts University 4 Colby St. Medford, MA 02155, USA;

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