首页> 外文期刊>Scientific reports. >3D Bioprinted GelMA Based Models for the Study of Trophoblast Cell Invasion
【24h】

3D Bioprinted GelMA Based Models for the Study of Trophoblast Cell Invasion

机译:基于Bielmented Gelma的滋养细胞侵袭研究模型

获取原文
           

摘要

Bioprinting is an emerging and promising technique for fabricating 3D cell-laden constructs for various biomedical applications. In this paper, we employed 3D bioprinted GelMA-based models to investigate the trophoblast cell invasion phenomenon, enabling studies of key placental functions. Initially, a set of optimized material and process parameters including GelMA concentration, UV crosslinking time and printing configuration were identified by systematic, parametric study. Following this, a multiple-ring model (2D multi-ring model) was tested with the HTR-8/SVneo trophoblast cell line to measure cell movement under the influence of EGF (chemoattractant) gradients. In the multi-ring model, the cell front used as a cell invasion indicator moves at a rate of 85?±?33?μm/day with an EGF gradient of 16?μM. However, the rate was dramatically reduced to 13?±?5?μm/day, when the multi-ring model was covered with a GelMA layer to constrain cells within the 3D environment (3D multi-ring model). Due to the geometric and the functional limitations of multi-ring model, a multi-strip model (2D multi-strip model) was developed to investigate cell movement in the presence and absence of the EGF chemoattractant. The results show that in the absence of an overlying cell-free layer of GelMA, movement of the cell front shows no significant differences between control and EGF-stimulated rates, due to the combination of migration and proliferation at high cell density (6?×?10sup6/sup cells/ml) near the GelMA surface. When the model was covered by a layer of GelMA (3D multi-strip model) and migration was excluded, EGF-stimulated cells showed an invasion rate of 21?±?3?μm/day compared to the rate for unstimulated cells, of 5?±?4?μm/day. The novel features described in this report advance the use of the 3D bioprinted placental model as a practical tool for not only measurement of trophoblast invasion but also the interaction of invading cells with other tissue elements.
机译:BioPlinting是一种用于制造用于各种生物医学应用的3D细胞升起构造的新兴和有希望的技术。在本文中,我们采用了3D生物文化的牙龈基础模型来研究滋养细胞侵袭现象,从而能够研究关键的胎盘功能。最初,通过系统的参数研究鉴定了一组优化的材料和包括凝胶浓度,UV交联时间和印刷配置的过程参数。在此之后,用HTR-8 / SVNEO滋养细胞系测试多环模型(2D多环模型)以测量EGF(化学援助剂)梯度的影响下的细胞运动。在多环模型中,用作电池侵入指示器的细胞前沿以85Ω·Δ33≤33Ω·μm/天的速率移动,EGF梯度为16Ωμm。然而,当用凝胶层覆盖多环模型以限制3D环境内的电池(3D多环模型)时,速率显着减小到13°±5?5?5?μm/天。由于多环模型的几何和功能限制,开发了一种多条带模型(2D多条带式模型)以研究EGF化学援助剂的存在和不存在的细胞运动。结果表明,在没有覆盖的细胞层的凝胶材料的情况下,由于在高细胞密度下的迁移和增殖的组合(6?×××××××)的组合,细胞前部的运动无显着差异(6?×在凝胶表面附近的10 6℃/ ml)。当由凝胶层(3D多条带式模型)覆盖的模型(3D多条带模型)和迁移被排除时,与未刺激细胞的速率相比,EGF刺激的细胞显示出21?±3?3?μm/天的侵袭率。 ?±4?μm/天。本报告中描述的新颖特征提前使用3D生物印刷胎盘模型作为实际工具,以不仅测量滋养细胞侵袭,而且还具有侵入细胞与其他组织元素的相互作用。

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