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A multiscale fluidic device for the study of dendrite-mediated cell to cell communication

机译:用于研究枝状细胞介导的细胞间通讯的多尺度流体装置

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摘要

Many cell types communicate by means of dendritic extensions via a multi-tiered set of geometric and chemical cues. Until recently, mimicking the compartmentalized in vivo cellular environment of dendrite-expressing cells such as osteocytes and motor neurons in a spatially and temporally controllable manner was limited by the challenges of in vitro device fabrication at submicron scales. Utilizing the improved resolution of current fabrication technology, we have designed a multiscale device, the Macro-micro-nano system, or Mμn, composed of two distinct cell-seeding and interrogation compartments separated by a nanochannel array. The array enables dendrite ingrowth, while providing a mechanism for fluidic sequestration and/or temporally-mediated diffusible signaling between cell populations. Modeling of the Mμn system predicted the ability to isolate diffusible signals, namely ATP. Empirical diffusion studies verified computational modeling. In addition, cell viability, dendrite interaction with the nanoarray, and cellular purinergic response to heat shock were experimentally evaluated within the device for both osteocytes and motor neurons. Our results describe a novel in vitro system in which dendrite-expressing cell types can be studied within nano-environments that mimic in vivo conditions. In particular, the Mμn system enables real-time observation of cell to cell communication between cell populations in distinct, but fluidically coupled regions.
机译:许多细胞类型通过树突扩展,通过多层几何和化学提示进行通信。直到最近,在亚微米规模的体外装置制造的挑战中,以空间和时间可控的方式模拟树突状表达细胞(如骨细胞和运动神经元)的体内隔室细胞环境受到限制。利用当前制造技术的更高分辨率,我们设计了一种多尺度设备,即Macro-micro-nano系统或Mμn,它由两个不同的细胞播种室和询问室组成,并由一个纳米通道阵列隔开。该阵列使枝晶向内生长,同时提供了用于细胞群之间的流体隔离和/或时间介导的可扩散信号传导的机制。 Mμn系统的建模预测了隔离可扩散信号即ATP的能力。经验扩散研究验证了计算模型。此外,还针对骨细胞和运动神经元在设备内实验评估了细胞活力,树突与纳米阵列的相互作用以及细胞对热激的嘌呤能反应。我们的结果描述了一种新型的体外系统,其中可以在模拟体内条件的纳米环境内研究表达树突的细胞类型。尤其是,Mμn系统可以实时观察不同但流体耦合区域中细胞群之间的细胞间通讯。

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