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用于骨骼肌组织工程的电活性海藻酸钙/聚己内酯/还原氧化石墨烯纳米杂化水凝胶

Electroactive calcium-alginate/polycaprolactone/reduced graphene oxide nanohybrid hydrogels for skeletal muscle tissue engineering.

作者信息

Aparicio-Collado J L, García-San-Martín N, Molina-Mateo J, Torregrosa Cabanilles C, Donderis Quiles V, Serrano-Aroca A, Sabater I Serra R

机构信息

Centre for Biomaterials and Tissue Engineering, Universitat Politècnica de València, Spain.

Department of Electrical Engineering, Universitat Politècnica de València, Spain.

出版信息

Colloids Surf B Biointerfaces. 2022 Jun;214:112455. doi: 10.1016/j.colsurfb.2022.112455. Epub 2022 Mar 11.

Abstract

Graphene derivatives such as reduced graphene oxide (rGO) are used as components of novel biomaterials for their unique electrical properties. Electrical conductivity is a crucial factor for muscle cells, which are electrically active. This study reports the development of a new type of semi-interpenetrated polymer network based on two biodegradable FDA-approved biomaterials, sodium alginate (SA) and polycaprolactone (PCL), with Ca ions as SA crosslinker. Several drawbacks such as the low cell adhesion of SA and weak structural stability can be improved with the incorporation of PCL. Furthermore, this study demonstrates how this semi-IPN can be engineered with rGO nanosheets (0.5% and 2% wt/wt rGO nanosheets) to produce electroactive nanohybrid composite biomaterials. The study focuses on the microstructure and the enhancement of physical and biological properties of these advanced materials, including water sorption, surface wettability, thermal behavior and thermal degradation, mechanical properties, electrical conductivity, cell adhesion and myogenic differentiation. The results suggest the formation of a complex nano-network with different interactions between the components: bonds between SA chains induced by Ca ions (egg-box model), links between rGO nanosheets and SA chains as well as between rGO nanosheets themselves through Ca ions, and strong hydrogen bonding between rGO nanosheets and SA chains. The incorporation of rGO significantly increases the electrical conductivity of the nanohybrid hydrogels, with values in the range of muscle tissue. In vitro cultures with C2C12 murine myoblasts revealed that the conductive nanohybrid hydrogels are not cytotoxic and can greatly enhance myoblast adhesion and myogenic differentiation. These results indicate that these novel electroactive nanohybrid hydrogels have great potential for biomedical applications related to the regeneration of electroactive tissues, particularly in skeletal muscle tissue engineering.

摘要

诸如还原氧化石墨烯(rGO)之类的石墨烯衍生物因其独特的电学性质而被用作新型生物材料的组件。电导率对于具有电活性的肌肉细胞而言是一个关键因素。本研究报道了一种新型半互穿聚合物网络的开发,该网络基于两种经美国食品药品监督管理局(FDA)批准的可生物降解生物材料——海藻酸钠(SA)和聚己内酯(PCL),并以钙离子作为SA的交联剂。SA存在诸如细胞黏附性低和结构稳定性弱等若干缺点,通过加入PCL可得以改善。此外,本研究展示了如何用rGO纳米片(0.5%和2%重量/重量的rGO纳米片)对这种半互穿聚合物网络进行工程设计,以制备电活性纳米杂化复合生物材料。该研究聚焦于这些先进材料的微观结构以及物理和生物学性质的增强,包括吸水性、表面润湿性、热行为和热降解、力学性能、电导率、细胞黏附及成肌分化。结果表明形成了一种具有不同组分间相互作用的复杂纳米网络:钙离子诱导的SA链之间的键(蛋盒模型)、rGO纳米片与SA链之间以及rGO纳米片自身通过钙离子形成的连接,以及rGO纳米片与SA链之间的强氢键。rGO的加入显著提高了纳米杂化水凝胶的电导率,其值在肌肉组织范围内。用C2C12小鼠成肌细胞进行的体外培养表明,导电纳米杂化水凝胶无细胞毒性,并且能极大地增强成肌细胞黏附和成肌分化。这些结果表明,这些新型电活性纳米杂化水凝胶在与电活性组织再生相关的生物医学应用中具有巨大潜力,尤其是在骨骼肌组织工程中。

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