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一种用于间质流中 3D 培养的多腔室流体装置,具有实时成像功能:开发、表征和应用。

A multichamber fluidic device for 3D cultures under interstitial flow with live imaging: development, characterization, and applications.

机构信息

Institute of Bioengineering, School of Life Sciences/LMBM/Station 15, Ecole Polytechnique Fédérale de Lausanne (EPFL), Lausanne 1015, Switzerland.

出版信息

Biotechnol Bioeng. 2010 Apr 1;105(5):982-91. doi: 10.1002/bit.22608.

Abstract

Interstitial flow is an important biophysical cue that can affect capillary morphogenesis, tumor cell migration, and fibroblast remodeling of the extracellular matrix, among others. Current models that incorporate interstitial flow and that are suitable for live imaging lack the ability to perform multiple simultaneous experiments, for example, to compare effects of growth factors, extracellular matrix composition, etc. We present a nine-chamber radial flow device that allows simultaneous 3D fluidic experiments for relatively long-term culture with live imaging capabilities. Flow velocity profiles were characterized by fluorescence recovery after photobleaching (FRAP) for flow uniformity and estimating the hydraulic conductivity. We demonstrate lymphatic and blood capillary morphogenesis in fibrin gels over 10 days, comparing flow with static conditions as well as the effects of an engineered variant of VEGF that binds fibrin via Factor XIII. We also demonstrate the culture of contractile fibroblasts and co-cultures with tumor cells for modeling the tumor microenvironment. Therefore, this device is useful for studies of capillary morphogenesis, cell migration, contractile cells like fibroblasts, and multicellular cultures, all under interstitial flow.

摘要

间质流是一种重要的生物物理线索,它可以影响毛细血管形态发生、肿瘤细胞迁移和细胞外基质中纤维母细胞的重塑等。目前的模型虽然包含间质流且适用于活体成像,但缺乏进行多个同时实验的能力,例如,比较生长因子、细胞外基质组成等的影响。我们提出了一种九腔辐射状流装置,该装置允许同时进行 3D 流体实验,具有相对长期的培养和活体成像能力。通过荧光恢复后光漂白(FRAP)来表征流速分布,以评估流动均匀性和水力传导率。我们在纤维蛋白凝胶中演示了淋巴管和血毛细血管形态发生,比较了流动和静态条件的效果,以及通过因子 XIII 结合纤维蛋白的 VEGF 工程变体的影响。我们还演示了收缩纤维母细胞的培养和与肿瘤细胞的共培养,以模拟肿瘤微环境。因此,该装置可用于研究毛细血管形态发生、细胞迁移、纤维母细胞等收缩细胞以及间质流条件下的多细胞培养。

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