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动态超分子肽-多糖互穿水凝胶网络中的机械完整性支持增强的软骨生成。

Mechanical Integrity in a Dynamic Interpenetrating Hydrogel Network of Supramolecular Peptide-Polysaccharide Supports Enhanced Chondrogenesis.

机构信息

Chemical Biology Unit, Institute of Nano Science and Technology, Knowledge City, Sector 81, Mohali, Punjab 140306 India.

出版信息

ACS Biomater Sci Eng. 2021 Dec 13;7(12):5798-5809. doi: 10.1021/acsbiomaterials.1c01120. Epub 2021 Nov 11.

Abstract

Tissue engineering demands intelligently designed scaffolds that encompass the properties of the target tissues in terms of mechanical and bioactive properties. An ideal scaffold for engineering a cartilage tissue should provide the chondrocytes with a favorable 3D microarchitecture apart from possessing optimal mechanical characteristics such as compressibility, energy dissipation, strain stiffening, . Herein, we used a unique design approach to develop a hydrogel having a dynamic interpenetrating network to serve as a framework to support chondrocyte growth and differentiation. An amyloid-inspired peptide amphiphile () was self-assembled to furnish kinetically controlled nanofibers and incorporated in a dynamic covalently cross-linked polysaccharide network of carboxymethyl cellulose dialdehyde () and carboxymethyl chitosan ( using Schiff base chemistry. The dynamic noncovalent interaction played a pivotal role in providing the desired modulation in the structure and mechanical properties of the double-network hydrogels that are imperative for cartilage scaffold design. The adaptable nature supported shear-induced extrusion of the hydrogel and facilitated various cellular functions while maintaining its integrity. The potential of the as-developed hydrogels to support chondrogenesis was explored using human chondrocytes. Evidence of improved cell growth and cartilage-specific ECM production confirmed the potential of the hydrogel to support cartilage tissue engineering while reaffirming the significance of mimicking the biophysical microenvironment to induce optimal tissue regeneration.

摘要

组织工程需要智能设计的支架,这些支架在机械和生物活性方面包含目标组织的特性。用于工程软骨组织的理想支架除了具有最佳的机械特性(如可压缩性、能量耗散、应变硬化等)外,还应为软骨细胞提供有利的 3D 微观结构。在此,我们采用独特的设计方法开发了一种具有动态互穿网络的水凝胶,用作支持软骨细胞生长和分化的支架。受淀粉样蛋白启发的肽两亲物()自组装提供动力学控制的纳米纤维,并结合使用席夫碱化学的羧甲基纤维素二醛()和羧甲基壳聚糖(的动态共价交联多糖网络中。动态非共价相互作用在提供双网络水凝胶的结构和机械性能所需的理想调节方面发挥了关键作用,这对于软骨支架设计至关重要。适应性强的性质支持水凝胶的剪切诱导挤出,并在保持其完整性的同时促进各种细胞功能。使用人软骨细胞探索了所开发的水凝胶支持软骨生成的潜力。细胞生长和软骨特异性细胞外基质产生的证据证实了水凝胶支持软骨组织工程的潜力,同时重申了模拟生物物理微环境以诱导最佳组织再生的重要性。

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