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高通量直接 3D 多孔板生物打印。

High throughput direct 3D bioprinting in multiwell plates.

机构信息

Department of NanoEngineering, University of California San Diego, 9500 Gilman Dr, La Jolla, CA 92093, United States of America.

These authors contributed equally.

出版信息

Biofabrication. 2021 Mar 10;13(2). doi: 10.1088/1758-5090/ab89ca.

Abstract

Advances in three dimensional (3D) bioprinting have enabled the fabrication of sophisticated 3D tissue scaffolds for biological and medical applications, where high speed, high throughput production in well plates is a critical need. Here, we present an integrated 3D bioprinting platform based on microscale continuous optical printing, capable of high throughputrapid fabrication of complex 3D biomedical samples in multiwell plate formats for subsequent culture and analysis. Our high throughput 3D bioprinter (HT-3DP) was used to showcase constructs of varying spatial geometries of biomimetic significance, tunable mechanical properties, as well as reproducibility. Live hepatocellular carcinoma 3D tissue scaffolds were fabricatedin multiwell plates, after which a functional drug response assay against the chemotherapy drug doxorubicin was performed. Dual cell-type populations involving both live hepatocellular carcinoma as well as human umbilical vein endothelial cells were also printed to demonstrate dual-tissue fabrication capability. This work demonstrates a significant advancement in that the production rate of 3D bioprinted tissue scaffolds with controllable spatial architectures and mechanical properties can now be done on a high throughput scale, enabling rapid generation of3D tissue models within conventional multiwell cell culture plates for high throughput preclinical drug screening and disease modeling.

摘要

三维(3D)生物打印技术的进步使人们能够制造用于生物和医学应用的复杂 3D 组织支架,而在微孔板中进行高速、高通量生产是一项关键需求。在这里,我们展示了一种基于微尺度连续光打印的集成 3D 生物打印平台,能够以高通量方式快速制造多孔板格式的复杂 3D 生物医学样品,以进行后续的培养和分析。我们的高通量 3D 生物打印机(HT-3DP)用于展示具有仿生意义的不同空间几何形状、可调机械性能和可重复性的结构。在多孔板中制造了活的肝癌 3D 组织支架,然后对化疗药物阿霉素进行了功能药物反应测定。还打印了涉及活肝癌细胞和人脐静脉内皮细胞的双细胞类型群体,以展示双组织制造能力。这项工作的重要进展在于,现在可以在高通量规模上生产具有可控空间结构和机械性能的 3D 生物打印组织支架,从而能够在传统的多孔细胞培养板内快速生成 3D 组织模型,用于高通量临床前药物筛选和疾病建模。

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