利用3d打印开放微流控芯片研究胰岛素抵抗细胞模型中的肝脏葡萄糖代谢

IF 3.1 3区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS
Meng-Meng Liu, Xin-Rong Li, Ji-Cheng Li, Yu Zhong, Yun Lei, Ai-Lin Liu
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引用次数: 0

摘要

肝脏被认为是胰岛素抵抗的关键组织,对葡萄糖代谢的系统协调具有重要影响。虽然生物学家已经接受了微流体,因为它有潜力阐明肝脏葡萄糖稳态和代谢动力学,但在广泛采用微流体装置方面仍然存在巨大的挑战,例如复杂的设计和生产,以及使用额外的泵进行流体处理。在这项研究中,我们报道了使用3D打印机制作α-纤维素修饰的开放式微流控芯片,用于研究胰岛素和吡格列酮干预后HepG2细胞的葡萄糖代谢。该芯片的圣诞树设计灵感集成了浓度梯度生成区和3D细胞培养环境。通过测量细胞葡萄糖摄取和ROS表达水平来评估芯片的效用,结果表明,与2D模型相比,3D细胞模型对胰岛素和吡格列酮的敏感性明显降低。此外,我们还检测了胰岛素抵抗相关蛋白的表达,以证实胰岛素抵抗的改善。总的来说,这些发现强调了芯片在稳定流体管理和推进葡萄糖代谢研究中的应用能力。此外,这种方法为疾病细胞模型的发展提供了新的策略,以探索代谢紊乱背后的生理和病理生理复杂性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Investigating Hepatic Glucose Metabolism in Insulin Resistance Cell Model Using 3D-Printed Open Microfluidic Chip

Investigating Hepatic Glucose Metabolism in Insulin Resistance Cell Model Using 3D-Printed Open Microfluidic Chip

Investigating Hepatic Glucose Metabolism in Insulin Resistance Cell Model Using 3D-Printed Open Microfluidic Chip

The liver is recognized as a pivotal tissue contributing to insulin resistance and exerts a crucial influence on the systemic orchestration of glucose metabolism. While biologists have embraced microfluidics for its potential to elucidate hepatic glucose homeostasis and metabolic dynamics, huge challenges remain in the widespread adoption of microfluidic devices, such as complex design and production, and the use of additional pumps for fluid handling. In this study, we report the fabrication of an α-cellulose-modified open microfluidic chip using a 3D printer for the investigation of glucose metabolism in HepG2 cells after insulin and pioglitazone intervention. The Christmas tree-inspired design of the chip integrates a concentration gradient generation zone alongside a 3D cell culture environment. The chip's utility was assessed through the measurement of cellular glucose uptake and ROS expression levels, revealing that the 3D cell model exhibited markedly reduced sensitivity to insulin and pioglitazone compared to the 2D model. Additionally, expression of insulin resistance-related proteins was examined to confirm the improvement of insulin resistance. Collectively, these findings underscore the chip's capacity for stable fluid management and utility in advancing glucose metabolism research. Moreover, this approach provides the new strategy for the development of disease cell models to explore the physiological and pathophysiological intricacies underpinning metabolic disorders.

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来源期刊
Biotechnology Journal
Biotechnology Journal Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
8.90
自引率
2.10%
发文量
123
审稿时长
1.5 months
期刊介绍: Biotechnology Journal (2019 Journal Citation Reports: 3.543) is fully comprehensive in its scope and publishes strictly peer-reviewed papers covering novel aspects and methods in all areas of biotechnology. Some issues are devoted to a special topic, providing the latest information on the most crucial areas of research and technological advances. In addition to these special issues, the journal welcomes unsolicited submissions for primary research articles, such as Research Articles, Rapid Communications and Biotech Methods. BTJ also welcomes proposals of Review Articles - please send in a brief outline of the article and the senior author''s CV to the editorial office. BTJ promotes a special emphasis on: Systems Biotechnology Synthetic Biology and Metabolic Engineering Nanobiotechnology and Biomaterials Tissue engineering, Regenerative Medicine and Stem cells Gene Editing, Gene therapy and Immunotherapy Omics technologies Industrial Biotechnology, Biopharmaceuticals and Biocatalysis Bioprocess engineering and Downstream processing Plant Biotechnology Biosafety, Biotech Ethics, Science Communication Methods and Advances.
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