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基于磁性微冷冻凝胶的磁控三维微组织

Magnetically controllable 3D microtissues based on magnetic microcryogels.

作者信息

Liu Wei, Li Yaqian, Feng Siyu, Ning Jia, Wang Jingyu, Gou Maling, Chen Huijun, Xu Feng, Du Yanan

机构信息

Department of Biomedical Engineering, School of Medicine, Tsinghua University, Beijing, PR China.

出版信息

Lab Chip. 2014 Aug 7;14(15):2614-25. doi: 10.1039/c4lc00081a. Epub 2014 Apr 15.

Abstract

Microtissues on the scale of several hundred microns are a promising cell culture configuration resembling the functional tissue units in vivo. In contrast to conventional cell culture, handling of microtissues poses new challenges such as medium exchange, purification and maintenance of the microtissue integrity. Here, we developed magnetic microcryogels to assist microtissue formation with enhanced controllability and robustness. The magnetic microcryogels were fabricated on-chip by cryogelation and micro-molding which could endure extensive external forces such as fluidic shear stress during pipetting and syringe injection. The magnetically controllable microtissues were applied to constitute a novel separable 3D co-culture system realizing functional enhancement of the hepatic microtissues co-cultured with the stromal microtissues and easy purification of the hepatic microtissues for downstream drug testing. The magnetically controllable microtissues with pre-defined shapes were also applied as building blocks to accelerate the tissue assembly process under magnetic force for bottom-up tissue engineering. Finally, the magnetic microcryogels could be injected in vivo as cell delivery vehicles and tracked by MRI. The injectable magnetic microtissues maintained viability at the injection site indicating good retention and potential applications for cell therapy. The magnetic microcryogels are expected to significantly promote the microtissues as a promising cellular configuration for cell-based applications such as in drug testing, tissue engineering and regenerative therapy.

摘要

数百微米规模的微组织是一种很有前景的细胞培养形式,类似于体内的功能组织单元。与传统细胞培养不同,微组织的处理带来了新的挑战,如培养基更换、微组织完整性的纯化和维持。在这里,我们开发了磁性微冷冻凝胶,以协助微组织形成,提高可控性和稳健性。磁性微冷冻凝胶通过冷冻凝胶化和微成型在芯片上制造,能够承受诸如移液和注射器注射过程中的流体剪切应力等巨大外力。磁性可控微组织被应用于构建一种新型的可分离三维共培养系统,实现与基质微组织共培养的肝微组织的功能增强,并便于对肝微组织进行纯化以用于下游药物测试。具有预定义形状的磁性可控微组织还被用作构建模块,以在磁力作用下加速自下而上的组织工程中的组织组装过程。最后,磁性微冷冻凝胶可以作为细胞递送载体注射到体内,并通过磁共振成像进行追踪。可注射的磁性微组织在注射部位保持活力,表明具有良好的滞留性和细胞治疗的潜在应用。磁性微冷冻凝胶有望显著促进微组织作为一种有前景的细胞结构在基于细胞的应用中的发展,如药物测试、组织工程和再生治疗。

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