首页> 外文会议>Nanotechnology in medicine II: briding translational in vitro and in vivo interfaces >TRUE-SCALE BIOMIMETIC MULTI-GENERATION AIRWAY PLATFORMS OF THE HUMAN BRONCHIAL EPITHELIUM FOR IN VITRO CYTOTOXICITY SCREENING
【24h】

TRUE-SCALE BIOMIMETIC MULTI-GENERATION AIRWAY PLATFORMS OF THE HUMAN BRONCHIAL EPITHELIUM FOR IN VITRO CYTOTOXICITY SCREENING

机译:真人生物支气管上皮多代气道平台用于体外细胞毒性检查

获取原文
获取原文并翻译 | 示例

摘要

Lung exposure to inhaled particulate matter may injure the epithelial tissue and lead to a loss of function in affected regions via inflammation for example. Screening for the critical contaminate concentrations may provide essential information towards damage assessment and epithelial healing. To date, most approaches have typically relied on traditional in vitro well plate assays or alternatively in vivo animal experiments. Yet, such methods manifest some outstanding disadvantages such as the inability to capture physiological flow and aerosol deposition characteristics as well as significant differences in anatomy, immune system and inflammatory responses compared to humans. The advent of organ-on-chip platforms has shown promising results to reconcile many such drawbacks. In an attempt to provide an attractive in vitro gateway to monitor airway health, we discuss here a novel biomimetic platform which emulates the bronchial epithelium of a human upper airway, allowing to study organ-level characteristics in a homeostatic cellular microenvironment. This device reconstitutes a multi-generation pulmonary epithelial airway environment, capturing realistic respiratory transport phenomena and critical cellular barrier functions at an air-liquid interface (ALI), in analogy to the bronchial lumen. As a proof of concept, we demonstrate its feasibility for in vitro based assays by exposing the device to cytotoxic aerosolized particles under respiratory flow conditions. Subsequently, we investigate the cytotoxic effects of these particles including cellular viability, cytokine and mucus secretion as a function of local particle deposition patterns. Ultimately, our bronchial airway models are intended to provide off-the-shelf in vitro kits geared for the end-user interested in a wide range of broader biological assays that may be attractive for cytotoxicity and drug screening.
机译:肺部接触吸入的颗粒物可能会伤害上皮组织,并例如通过炎症导致受影响区域的功能丧失。筛选关键污染物浓度可能为损伤评估和上皮愈合提供重要信息。迄今为止,大多数方法通常都依赖于传统的体外孔板检测或体内动物实验。然而,这些方法表现出一些突出的缺点,例如无法捕获生理流和气溶胶沉积特征,以及与人类相比在解剖结构,免疫系统和炎症反应方面存在显着差异。片上器官平台的出现已显示出解决许多此类缺陷的有希望的结果。为了提供一种吸引人的体外途径来监测气道健康的方法,我们在这里讨论一种新型的仿生平台,该平台模仿人上呼吸道的支气管上皮,从而可以在稳态细胞微环境中研究器官水平的特征。该设备重建了多代肺上皮气道环境,类似于支气管腔,在气液界面(ALI)处捕获了现实的呼吸运输现象和关键的细胞屏障功能。作为概念验证,我们通过将设备暴露在呼吸流动条件下的细胞毒性雾化颗粒中,证明了其在体外测定中的可行性。随后,我们研究了这些颗粒的细胞毒性作用,包括细胞活力,细胞因子和粘液分泌随局部颗粒沉积模式的变化。最终,我们的支气管气道模型旨在为那些对细胞毒性和药物筛选具有吸引力的广泛生物测定感兴趣的最终用户提供现成的体外试剂盒。

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