Department of Biomedical Engineering, Stevens Institute of Technology, Hoboken, NJ, USA.
Department of Biomedical Engineering, Columbia University, New York, NY, USA.
Lab Chip. 2022 Mar 1;22(5):1018-1031. doi: 10.1039/d1lc01105g.
Recent synergistic advances in organ-on-chip and tissue engineering technologies offer opportunities to create -grown tissue or organ constructs that can faithfully recapitulate their counterparts. Such tissue or organ constructs can be utilized in multiple applications, including rapid drug screening, high-fidelity disease modeling, and precision medicine. Here, we report an imaging-guided bioreactor that allows monitoring of the lumen of airway tissues during controlled tissue manipulation and cultivation of isolated rat trachea. Using this platform, we demonstrated partial removal of the rat tracheal epithelium (, de-epithelialization) without disrupting the underlying subepithelial cells and extracellular matrix. Through different tissue evaluation assays, such as immunofluorescent staining, DNA/protein quantification, and electron beam microscopy, we showed that the epithelium of the tracheal lumen can be effectively removed with negligible disruption in the underlying tissue layers, such as cartilage and blood vessel. Notably, using a custom-built micro-optical imaging device integrated with the bioreactor, the trachea lumen was visualized at the cellular level, and removal of the endogenous epithelium and distribution of locally delivered exogenous cells were demonstrated . Moreover, the de-epithelialized trachea supported on the bioreactor allowed attachment and growth of exogenous cells seeded topically on its denuded tissue surface. Collectively, the results suggest that our imaging-enabled rat trachea bioreactor and localized cell replacement method can facilitate creation of bioengineered airway tissue that can be used in different biomedical applications.
最近,器官芯片和组织工程技术的协同进步为创造能够真实再现其对应物的 -生长组织或器官构建体提供了机会。这些组织或器官构建体可用于多种应用,包括快速药物筛选、高保真疾病建模和精准医学。在这里,我们报告了一种成像引导的生物反应器,该生物反应器允许在控制组织操作和培养分离的大鼠气管的同时,监测气道组织的管腔。使用该平台,我们证明了在不破坏下上皮细胞和细胞外基质的情况下,大鼠气管上皮(,去上皮化)的部分去除。通过不同的组织评估实验,如免疫荧光染色、DNA/蛋白质定量和电子束显微镜,我们表明可以有效地去除气管管腔的上皮,而对软骨和血管等底层组织层几乎没有破坏。值得注意的是,使用集成在生物反应器中的定制微光学成像设备,可以在细胞水平上可视化气管管腔,并且可以证明内源性上皮的去除和局部递送的外源性细胞的分布。此外,在生物反应器上支持的去上皮化气管允许在其裸露组织表面上局部接种的外源性细胞附着和生长。总的来说,这些结果表明,我们的成像功能化大鼠气管生物反应器和局部细胞替代方法可以促进生物工程气道组织的创建,可用于不同的生物医学应用。