首页> 外文OA文献 >Fabrication of scalable tissue engineering scaffolds with dual-pore microarchitecture by combining 3D printing and particle leaching
【2h】

Fabrication of scalable tissue engineering scaffolds with dual-pore microarchitecture by combining 3D printing and particle leaching

机译:通过结合3D打印和颗粒浸出,制备具有双孔微结构的可扩展组织工程支架

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

Limitations in controlling scaffold architecture using traditional fabrication techniques are a problem when constructing engineered tissues/organs. Recently, integration of two pore architectures to generate dual-pore scaffolds with tailored physical properties has attracted wide attention in tissue engineering community. Such scaffolds features primary structured pores which can efficiently enhance nutrient/oxygen supply to the surrounding, in combination with secondary random pores, which give high surface area for cell adhesion and proliferation. Here, we present a new technique to fabricate dual-pore scaffolds for various tissue engineering applications where 3D printing of poly(vinyl alcohol) (PVA) mould is combined with salt leaching process. In this technique the sacrificial PVA mould, determining the structured pore architecture, was filled with salt crystals to define the random pore regions of the scaffold. After crosslinking the casted polymer the combined PVA-salt mould was dissolved in water. The technique has advantages over previously reported ones, such as automated assembly of the sacrificial mould, and precise control over pore architecture/dimensions by 3D printing parameters. In this study, polydimethylsiloxane and biodegradable poly(ϵ-caprolactone)were used for fabrication.However,we showthat this technique is also suitable for other biocompatible/biodegradable polymers. Various physical and mechanical properties of the dual-pore scaffolds were compared with control scaffolds with either only structured or only random pores, fabricated using previously reported methods. The fabricated dual-pore scaffolds supported high cell density, due to the random pores, in combination with uniform cell distribution throughout the scaffold, and higher cell proliferation and viability due to efficient nutrient/oxygen transport through the structured pores. In conclusion, the described fabrication technique is rapid, inexpensive, scalable, and compatible with different polymers, making it suitable for engineering various large scale organs/tissues.
机译:当构造工程组织/器官时,使用传统制造技术控制支架结构的局限性是一个问题。近来,两种孔结构的整合以产生具有定制的物理性质的双孔支架引起了组织工程界的广泛关注。这样的支架具有主要结构化的孔,其可以有效地增强向周围环境的营养/氧气供应,同时还具有次要的随机孔,后者为细胞粘附和增殖提供了高表面积。在这里,我们提出了一种新技术来制造用于各种组织工程应用的双孔支架,在该组织中,聚乙烯醇(PVA)模具的3D打印与盐浸工艺相结合。在此技术中,确定结构化孔结构的牺牲性PVA模具填充有盐晶体,以定义支架的随机孔区域。交联浇铸的聚合物后,将合并的PVA-盐模具溶解在水中。与先前报道的技术相比,该技术具有优势,例如,牺牲模具的自动组装以及通过3D打印参数精确控制孔结构/尺寸。在这项研究中,使用了聚二甲基硅氧烷和可生物降解的聚(ε-己内酯)。但是,我们证明了该技术也适用于其他可生物相容/可生物降解的聚合物。使用先前报道的方法,将双孔支架的各种物理和机械性能与仅具有结构化孔或仅具有随机孔的对照支架进行了比较。所制造的双孔支架由于随机的孔而支持高细胞密度,并在整个支架中具有均匀的细胞分布,并且由于营养物质/氧气通过结构化孔的有效运输而具有更高的细胞增殖和活力。总之,所描述的制造技术是快速,廉价,可扩展的并且与不同的聚合物兼容,从而使其适于工程化各种大型器官/组织。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号