首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >A novel approach for precisely controlled multiple cell patterning in microfluidic chips by inkjet printing and the detection of drug metabolism and diffusion
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A novel approach for precisely controlled multiple cell patterning in microfluidic chips by inkjet printing and the detection of drug metabolism and diffusion

机译:通过喷墨打印精确控制微流控芯片中多细胞图案的新方法以及药物代谢和扩散的检测

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In this work we report the use of inkjet printing as a precise and convenient means for microscale cell patterning in microfluidic chips followed by cell co-culture, stimulation and analysis. A self-made inkjet printing device was manufactured with adjustable parameters, which was capable of multiple cell printing within biocompatible materials. Sodium alginate was used as a printing matrix for cell encapsulation, and precisely distributed cell arrays on glass slides were obtained by accurate software controlled printing. By covering a PDMS layer with the corresponding microchannels onto the cell array substrate and subsequently injecting an ion cross-linking reagent, the cells containing alginate arrays gelated immediately and were immobilized on the bottom of the microchip, which could be utilized for cell culture and analysis. HepG2 cells and U251 cells were successfully co-patterned in the microchip and used for drug metabolism and diffusion experiment to imitate the in vivo situation, as a means to ascertain the capability of the system for precise microscale cell patterning in a microchip. The prodrug tegafur was metabolized by HepG2 cells into the active anticancer compound 5-fluorouracil and this produced an adverse gradient effect on U251 cells according to the distance from the HepG2 cells. The developed approach presented a feasible way to integrate inkjet cell printing and microfluidic chips for the first time, which is proved to be capable of spatially controlled printing of multiple kinds of cells into a microchip for cell culture, stimulation and analysis, which could be applied to tissue engineering, drug testing and related areas. We envision that the approach will help significantly increase the cell patterning efficacy in microfluidic chips as well as reduce the extent of laborious experimental work.
机译:在这项工作中,我们报告了使用喷墨打印作为在微流控芯片中进行微型细胞图案化以及随后进行细胞共培养,刺激和分析的精确便捷的方法。制造了具有可调参数的自制喷墨打印设备,该设备能够在生物相容性材料内进行多单元打印。海藻酸钠被用作细胞封装的印刷基质,并且通过精确的软件控制的印刷获得了载玻片上精确分布的细胞阵列。通过将带有相应微通道的PDMS层覆盖到细胞阵列基板上,然后注入离子交联剂,含有藻酸盐阵列的细胞立即胶凝并固定在微芯片底部,可用于细胞培养和分析。 HepG2细胞和U251细胞已在微芯片中成功地共同构图,并用于药物代谢和扩散实验以模仿体内情况,以此来确定系统在微芯片中进行精确微尺度细胞构图的能力。前药替加福被HepG2细胞代谢为活性抗癌化合物5-氟尿嘧啶,根据距HepG2细胞的距离,对U251细胞产生不利的梯度作用。所开发的方法首次提出了将喷墨细胞打印和微流控芯片相集成的可行方法,事实证明该方法能够将多种细胞在空间上控制打印到用于细胞培养,刺激和分析的微芯片中,从而可以应用。到组织工程,药物测试及相关领域。我们设想该方法将有助于显着提高微流控芯片中的细胞构图功效,并减少费力的实验工作。

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