基于脱矿物质骨基质的三维打印导电支架与骨组织工程应用中的电刺激相结合。

IF 4.7 Q2 MATERIALS SCIENCE, BIOMATERIALS
Damion T. Dixon, Erika N. Landree and Cheryl T. Gomillion*, 
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引用次数: 0

摘要

骨骼是通过支持细胞信号传导的生物物理线索促进的动态过程进行重塑的。在健康的骨骼中,信号通路由细胞和细胞外基质调节,并通过电突触传递。为此,将电刺激(ES)与导电支架相结合是修复受损骨组织的一种很有前景的方法。因此,在骨组织工程中,越来越多的人开始研究能提供多功能性并促进电线索直接传递到细胞的 "智能 "生物材料。本文首次评估了由脱矿骨基质(DBM)和聚己内酯(PCL)组成的三维打印导电复合支架与 ES 的结合在骨再生中的应用。通过评估力学、表面和电学特性,制作并鉴定了导电复合支架。与原始 PCL(62.02 兆帕)相比,DBM/PCL 复合材料表现出更高的压缩模量(107.2 兆帕)以及更好的表面特性(即粗糙度)。脚手架的电气性能也得到了调整,在最高稀释度(即 20%)的实验涂层中,片层电阻值低至 4.77 × 105 Ω/sq。此外,我们还使用人间质基质细胞(hMSCs)测试了导电复合材料支架的生物相容性和成骨潜能,包括外源性 ES(100 mV/mm,5 分钟/天,4 次/周)和不外源性 ES(100 mV/mm,5 分钟/天,4 次/周)。通过二甲酚橙矿物质染色和成骨蛋白分析确定,与在纯 PCL 和非导电 DBM/PCL 对照支架上培养的 hMSCs 相比,在添加 ES 的情况下,生长在导电 DBM/PCL 复合支架上的 hMSCs 的成骨分化能力明显增强。总之,这些令人鼓舞的结果表明,这种方法具有开发骨组织工程应用的仿生混合支架的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

3D-Printed Demineralized Bone Matrix-Based Conductive Scaffolds Combined with Electrical Stimulation for Bone Tissue Engineering Applications

3D-Printed Demineralized Bone Matrix-Based Conductive Scaffolds Combined with Electrical Stimulation for Bone Tissue Engineering Applications

3D-Printed Demineralized Bone Matrix-Based Conductive Scaffolds Combined with Electrical Stimulation for Bone Tissue Engineering Applications

Bone is remodeled through a dynamic process facilitated by biophysical cues that support cellular signaling. In healthy bone, signaling pathways are regulated by cells and the extracellular matrix and transmitted via electrical synapses. To this end, combining electrical stimulation (ES) with conductive scaffolding is a promising approach for repairing damaged bone tissue. Therefore, “smart” biomaterials that can provide multifunctionality and facilitate the transfer of electrical cues directly to cells have become increasingly more studied in bone tissue engineering. Herein, 3D-printed electrically conductive composite scaffolds consisting of demineralized bone matrix (DBM) and polycaprolactone (PCL), in combination with ES, for bone regeneration were evaluated for the first time. The conductive composite scaffolds were fabricated and characterized by evaluating mechanical, surface, and electrical properties. The DBM/PCL composites exhibited a higher compressive modulus (107.2 MPa) than that of pristine PCL (62.02 MPa), as well as improved surface properties (i.e., roughness). Scaffold electrical properties were also tuned, with sheet resistance values as low as 4.77 × 105 Ω/sq for our experimental coating of the highest dilution (i.e., 20%). Furthermore, the biocompatibility and osteogenic potential of the conductive composite scaffolds were tested using human mesenchymal stromal cells (hMSCs) both with and without exogenous ES (100 mV/mm for 5 min/day four times/week). In conjunction with ES, the osteogenic differentiation of hMSCs grown on conductive DBM/PCL composite scaffolds was significantly enhanced when compared to those cultured on PCL-only and nonconductive DBM/PCL control scaffolds, as determined through xylenol orange mineral staining and osteogenic protein analysis. Overall, these promising results suggest the potential of this approach for the development of biomimetic hybrid scaffolds for bone tissue engineering applications.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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