...
首页> 外文期刊>Biofabrication >3D bioprinting of hydrogel constructs with cell and material gradients for the regeneration of full-thickness chondral defect using a microfluidic printing head
【24h】

3D bioprinting of hydrogel constructs with cell and material gradients for the regeneration of full-thickness chondral defect using a microfluidic printing head

机译:用微流体印刷头用细胞和材料梯度用细胞和材料梯度的水凝胶构建体的3D Bioplint

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Osteochondral (OC) tissue is a biphasic material comprised of articular cartilage integrated atop subchondral bone. Damage to this tissue is highly problematic, owing to its intrinsic inability to regenerate functional tissue in response to trauma or disease. Further, the function of the tissue is largely conferred by its compartmentalized zonal microstructure and composition. Current clinical treatments fail to regenerate new tissue that recapitulates this zonal structure. Consequently, regenerated tissue often lacks long-term stability. To address this growing problem, we propose the development of tissue engineered biomaterials that mimic the zonal cartilage organization and extracellular matrix composition through the use of a microfluidic printing head bearing a mixing unit and incorporated into an extrusion-based bioprinter. The system is devised so that multiple bioinks can be delivered either individually or at the same time and rapidly mixed to the extrusion head, and finally deposited through a coaxial nozzle. This enables the deposition of either layers or continuous gradients of chemical, mechanical and biological cues and fabrication of scaffolds with very high shape fidelity and cell viability. Using such a system we bioprinted cell-laden hydrogel constructs recapitulating the layered structure of cartilage, namely, hyaline and calcified cartilage. The construct was assembled out of two bioinks specifically formulated to mimic the extracellular matrices present in the targeted tissues and to ensure the desired biological response of human bone marrow-derived mesenchymal stem cells and human articular chondrocytes. Homogeneous and gradient constructs were thoroughly characterized in vitro with respect to long-term cell viability and expression of hyaline and hypertrophic markers by means of real-time quantitative PCR and immunocytochemical staining. After 21 days of in vitro culture, we observed production of zone-specific matrix. The PCR analysis demonstrated upregulated expression of hypertrophic markers in the homogenous equivalent of calcified cartilage but not in the gradient heterogeneous construct. The regenerative potential was assessed in vivo in a rat model. The histological analysis of surgically damaged rat trochlea revealed beneficial effect of the bioprinted scaffolds on regeneration of OC defect when compared to untreated control.
机译:骨色神经元(OC)组织是一种双相材料,包括卵形骨的关节软骨。由于其固有的无法再生函数组织响应创伤或疾病,因此对该组织的损害是非常有问题的。此外,组织的功能大大通过其划分的区域化微结构和组合物赋予。目前的临床治疗未能再生重新制作这种带状结构的新组织。因此,再生组织通常缺乏长期稳定性。为了解决这种不断增长的问题,我们提出了通过使用携带混合单元的微流体印刷头来模拟区域软骨组织和细胞外基质组合物的组织工程生物材料的开发,并将其掺入基于挤出的生物炉中。设计系统,使得可以单独或同时递送多个生物链,并将其快速混合到挤出头上,并且最后通过同轴喷嘴沉积。这使得能够沉积层或连续梯度的化学,机械和生物学提示以及具有非常高的形状保真度和细胞活力的支架的制造。使用这种系统,我们生成细胞升温水凝胶构建体重新制备软骨分层结​​构,即透明和钙化软骨。将构建体与特异性配制的两种生物链组装起来以模拟靶向组织中存在的细胞外基质,并确保人骨髓衍生的间充质干细胞和人关节软骨细胞的所需生物响应。通过实时定量PCR和免疫细胞化学染色,对长期细胞活力和透明和肥厚标记的长期细胞活力和表达进行均匀和梯度构建体。在体外培养21天后,我们观察了特异性地基的产生。 PCR分析表明钙化软骨均匀当量中的肥厚性标记的上调表达,但不在梯度异质构建体中。在大鼠模型中,在体内评估再生潜力。手术损伤大鼠Trochlea的组织学分析显示了与未处理对照相比,生物印刷支架对生物印刷支架对OC缺陷再生的有益效果。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

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