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一种 96 孔微孔板生物反应器平台,支持单个双灌注和高通量评估简单或生物制造的 3D 组织模型。

A 96-well microplate bioreactor platform supporting individual dual perfusion and high-throughput assessment of simple or biofabricated 3D tissue models.

机构信息

Christchurch Regenerative Medicine and Tissue Engineering (CReaTE) Group, Department of Orthopaedic Surgery & Musculoskeletal Medicine, Centre for Bioengineering & Nanomedicine, University of Otago Christchurch, Christchurch 8140, New Zealand.

出版信息

Lab Chip. 2018 Sep 11;18(18):2757-2775. doi: 10.1039/c8lc00485d.

Abstract

Traditional 2D monolayer cell cultures and submillimeter 3D tissue construct cultures used widely in tissue engineering are limited in their ability to extrapolate experimental data to predict in vivo responses due to their simplistic organization and lack of stimuli. The rise of biofabrication and bioreactor technologies has sought to address this through the development of techniques to spatially organize components of a tissue construct, and devices to supply these tissue constructs with an increasingly in vivo-like environment. Current bioreactors supporting both parenchymal and barrier tissue constructs in interconnected systems for body-on-a-chip platforms have chosen to emphasize study throughput or system/tissue complexity. Here, we report a platform to address this disparity in throughput and both system complexity (by supporting multiple in situ assessment methods) and tissue complexity (by adopting a construct-agnostic format). We introduce an ANSI/SLAS-compliant microplate and docking station fabricated via stereolithography (SLA), or precision machining, to provide up to 96 samples (Ø6 × 10 mm) with two individually-addressable fluid circuits (192 total), loading access, and inspection window for imaging during perfusion. Biofabricated ovarian cancer models were developed to demonstrate the in situ assessment capabilities via microscopy and a perfused resazurin-based metabolic activity assay. In situ microscopy highlighted flexibility of the sample housing to accommodate a range of sample geometries. Utility for drug screening was demonstrated by exposing the ovarian cancer models to an anticancer drug (doxorubicin) and generating the dose-response curve in situ, while achieving an assay quality similar to static wellplate culture. The potential for quantitative analysis of temporal tissue development and screening studies was confirmed by imaging soft- (gelatin) and hard-tissue (calcium chloride) analogs inside the bioreactor via spectral computed tomography (CT) scanning. As a proof-of-concept for particle tracing studies, flowing microparticles were visualized to inform the design of hydrogel constructs. Finally, the ability for mechanistic yet high-throughput screening was demonstrated in a vascular coculture model adopting endothelial and mesenchymal stem cells (HUVEC-MSC), encapsulated in gelatin-norbornene (gel-NOR) hydrogel cast into SLA-printed well inserts. This study illustrates the potential of a scalable dual perfusion bioreactor platform for parenchymal and barrier tissue constructs to support a broad range of multi-organ-on-a-chip applications.

摘要

传统的二维单层细胞培养和常用于组织工程的亚毫米 3D 组织构建培养由于其组织简单化和缺乏刺激,在将实验数据外推以预测体内反应方面能力有限。生物制造和生物反应器技术的兴起通过开发组织构建组件空间组织的技术以及为组织构建提供越来越类似于体内环境的设备来解决这一问题。目前,支持体芯片平台中连接组织和屏障组织构建的生物反应器选择强调研究通量或系统/组织复杂性。在这里,我们报告了一个平台,以解决通量以及系统复杂性(通过支持多种原位评估方法)和组织复杂性(通过采用构建不可知格式)之间的这种差异。我们引入了一个符合 ANSI/SLAS 标准的微板和通过立体光刻(SLA)或精密加工制造的对接站,可提供多达 96 个样本(Ø6 × 10 毫米),具有两个可单独寻址的流体回路(共 192 个),用于在灌注过程中加载访问和检查成像窗口。生物制造的卵巢癌模型被开发出来,通过显微镜和灌注的 Resazurin 代谢活性测定来展示原位评估能力。原位显微镜突出了样品外壳的灵活性,以适应各种样品几何形状。通过将卵巢癌模型暴露于抗癌药物(阿霉素)并在原位生成剂量反应曲线,同时实现类似于静态微孔板培养的测定质量,证明了药物筛选的实用性。通过光谱计算断层扫描(CT)扫描在生物反应器内对软(明胶)和硬组织(氯化钙)模拟物进行成像,证实了对组织发展的时间和筛选研究进行定量分析的潜力。通过可视化流动微球,为水凝胶构建物的设计提供信息,证明了用于示踪粒子研究的能力。最后,在采用内皮细胞和间充质干细胞(HUVEC-MSC)的血管共培养模型中证明了机械但高通量筛选的能力,这些细胞被包裹在明胶-降冰片烯(gel-NOR)水凝胶中,铸入 SLA 打印的井插入物中。本研究说明了用于实质和屏障组织构建的可扩展双灌注生物反应器平台支持广泛的多器官芯片应用的潜力。

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