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可负担得起的氧气显微镜辅助多细胞球体生物制造

Affordable Oxygen Microscopy-Assisted Biofabrication of Multicellular Spheroids.

作者信息

Okkelman Irina A, Vercruysse Chris, Kondrashina Alina V, Borisov Sergey M, Dmitriev Ruslan I

机构信息

Tissue Engineering and Biomaterials Group, Department of Human Structure and Repair, Faculty of Medical and Health Sciences, Ghent University.

Health and Happiness (H&H) Group, National Food Innovation Hub.

出版信息

J Vis Exp. 2022 Apr 6(182). doi: 10.3791/63403.

Abstract

Multicellular spheroids are important tools for studying tissue and cancer physiology in 3D and are frequently used in tissue engineering as tissue assembling units for biofabrication. While the main power of the spheroid model is in mimicking physical-chemical gradients at the tissue microscale, the real physiological environment (including dynamics of metabolic activity, oxygenation, cell death, and proliferation) inside the spheroids is generally ignored. At the same time, the effects of the growth medium composition and the formation method on the resulting spheroid phenotype are well documented. Thus, characterization and standardization of spheroid phenotype are required to ensure the reproducibility and transparency of the research results. The analysis of average spheroid oxygenation and the value of O2 gradients in three dimensions (3D) can be a simple and universal way for spheroid phenotype characterization, pointing at their metabolic activity, overall viability, and potential to recapitulate in vivo tissue microenvironment. The visualization of 3D oxygenation can be easily combined with multiparametric analysis of additional physiological parameters (such as cell death, proliferation, and cell composition) and applied for continuous oxygenation monitoring and/or end-point measurements. The loading of the O2 probe is performed during the stage of spheroid formation and is compatible with various protocols of spheroid generation. The protocol includes a high-throughput method of spheroid generation with introduced red and near-infrared emitting ratiometric fluorescent O2 nanosensors and the description of multi-parameter assessment of spheroid oxygenation and cell death before and after bioprinting. The experimental examples show comparative O2 gradients analysis in homo- and hetero-cellular spheroids as well as spheroid-based bioprinted constructs. The protocol is compatible with a conventional fluorescence microscope having multiple fluorescence filters and a light-emitting diode as a light source.

摘要

多细胞球体是用于三维研究组织和癌症生理学的重要工具,并且在组织工程中经常被用作生物制造的组织组装单元。虽然球体模型的主要优势在于模拟组织微观尺度上的物理化学梯度,但球体内部的真实生理环境(包括代谢活动、氧合、细胞死亡和增殖的动态变化)通常被忽略。同时,生长培养基成分和形成方法对所得球体表型的影响已有充分记录。因此,需要对球体表型进行表征和标准化,以确保研究结果的可重复性和透明度。分析球体的平均氧合以及三维(3D)中的O2梯度值可以是一种简单通用的球体表型表征方法,能够反映其代谢活性、整体活力以及重现体内组织微环境的潜力。3D氧合的可视化可以很容易地与其他生理参数(如细胞死亡、增殖和细胞组成)的多参数分析相结合,并应用于连续氧合监测和/或终点测量。O2探针的加载在球体形成阶段进行,并且与各种球体生成方案兼容。该方案包括一种高通量的球体生成方法,其中引入了发射红色和近红外光的比率荧光O2纳米传感器,以及对生物打印前后球体氧合和细胞死亡的多参数评估的描述。实验示例展示了同细胞和异细胞球体以及基于球体的生物打印构建体中的比较O2梯度分析。该方案与具有多个荧光滤光片和发光二极管作为光源的传统荧光显微镜兼容。

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