A DIY Bioreactor for in Situ Metabolic Tracking in 3D Cell Models via Hyperpolarized 13C NMR Spectroscopy

IF 6.7 1区 化学 Q1 CHEMISTRY, ANALYTICAL Analytical Chemistry Pub Date : 2025-01-15 DOI:10.1021/acs.analchem.4c04183
Lluís Mangas-Florencio, Alba Herrero-Gómez, James Eills, Marc Azagra, Marina Batlló-Rius, Irene Marco-Rius
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Abstract

Nuclear magnetic resonance (NMR) spectroscopy is a valuable diagnostic tool limited by low sensitivity due to low nuclear spin polarization. Hyperpolarization techniques, such as dissolution dynamic nuclear polarization, significantly enhance sensitivity, enabling real-time tracking of cellular metabolism. However, traditional high-field NMR systems and bioreactor platforms pose challenges, including the need for specialized equipment and fixed sample volumes. This study introduces a scalable, 3D-printed bioreactor platform compatible with low-field NMR spectrometers, designed to accommodate bioengineered 3D cell models. The bioreactor is fabricated using biocompatible materials and features a microfluidic system for media recirculation, ensuring optimal culture conditions during NMR acquisition and cell maintenance. We characterized the NMR compatibility of the bioreactor components and confirmed minimal signal distortion. The bioreactor’s efficacy was validated using HeLa and HepG2 cells, demonstrating prolonged cell viability and enhanced metabolic activity in 3D cultures compared to 2D cultures. Hyperpolarized [1-13C] pyruvate experiments revealed distinct metabolic profiles for the two cell types, highlighting the bioreactor’s ability to discern metabolic profiles among samples. Our results indicate that the bioreactor platform supports the maintenance and analysis of 3D cell models in NMR studies, offering a versatile and accessible tool for metabolic and biochemical research in tissue engineering. This platform bridges the gap between advanced cellular models and NMR spectroscopy, providing a robust framework for future applications in nonspecialized laboratories. The design files for the 3D printed components are shared within the text for easy download and customization, promoting their use and adaptation for further applications.

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通过超极化13C核磁共振光谱学在三维细胞模型中进行原位代谢跟踪的DIY生物反应器
核磁共振(NMR)光谱是一种宝贵的诊断工具,但由于核自旋极化程度低,灵敏度不高。超极化技术(如溶解动态核极化)可显著提高灵敏度,实现对细胞代谢的实时跟踪。然而,传统的高场核磁共振系统和生物反应器平台带来了挑战,包括需要专门的设备和固定的样品量。本研究介绍了一种与低场 NMR 光谱仪兼容的可扩展三维打印生物反应器平台,其设计可适应生物工程三维细胞模型。该生物反应器使用生物兼容材料制造,具有用于培养基再循环的微流体系统,可确保在 NMR 采集和细胞维护期间获得最佳培养条件。我们对生物反应器组件的核磁共振兼容性进行了鉴定,确认信号失真极小。使用 HeLa 和 HepG2 细胞对生物反应器的功效进行了验证,结果表明与二维培养相比,三维培养的细胞存活时间更长,代谢活性更高。超极化[1-13C]丙酮酸实验揭示了两种细胞不同的代谢特征,凸显了生物反应器辨别不同样本代谢特征的能力。我们的研究结果表明,生物反应器平台支持在核磁共振研究中维护和分析三维细胞模型,为组织工程中的代谢和生化研究提供了一个多功能且易于使用的工具。该平台在先进的细胞模型和核磁共振光谱学之间架起了一座桥梁,为非专业实验室的未来应用提供了一个强大的框架。三维打印组件的设计文件在文中共享,便于下载和定制,促进了它们在进一步应用中的使用和调整。
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来源期刊
Analytical Chemistry
Analytical Chemistry 化学-分析化学
CiteScore
12.10
自引率
12.20%
发文量
1949
审稿时长
1.4 months
期刊介绍: Analytical Chemistry, a peer-reviewed research journal, focuses on disseminating new and original knowledge across all branches of analytical chemistry. Fundamental articles may explore general principles of chemical measurement science and need not directly address existing or potential analytical methodology. They can be entirely theoretical or report experimental results. Contributions may cover various phases of analytical operations, including sampling, bioanalysis, electrochemistry, mass spectrometry, microscale and nanoscale systems, environmental analysis, separations, spectroscopy, chemical reactions and selectivity, instrumentation, imaging, surface analysis, and data processing. Papers discussing known analytical methods should present a significant, original application of the method, a notable improvement, or results on an important analyte.
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