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Automated biomanipulation to assemble cellular microstructure with railed multi-microrobotic system

机译:自动化生物操纵以带栏杆的多微机器人系统组装细胞微结构

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The fabrication of vessel-mimetic microchannel provides critical access to enable sufficient nutrient delivery for engineered composite tissues. This paper presents a novel method to engineer vascular-like microchannel by automated assembly of donut-shaped micromodules embedding fibroblast cells. A railed microrobotic system is set up with multi manipulators of 30 nm positioning resolution under an optical microscope. The coordinated manipulation among the micromanipulators is performed with newly designed concentric movement along the rail, which realized the arbitrary change of micromanipulator posture. With the novel developed image processing algorithm for the tracking of micromanipulator and micromodules, the automated bio-assembly of vascular-like microchannel is achieved which is free from the influence of the occlusion during contact manipulation. Experimental results showed that the pick-up success rate is around 98% and tracking algorithm is robust. Finally, we achieved automated assembly of microchannel at a speed of 6 micromodules/min, which is efficient enough to fabricate vessel-mimetic substitute with macro-significance dimension for biological application.
机译:模拟血管微通道的制造提供了关键通道,以使工程化复合组织能够提供足够的营养。本文提出了一种通过自动组装嵌入成纤维细胞的甜甜圈形微模块来工程化类血管微通道的新方法。在光学显微镜下,使用定位分辨率为30 nm的多操纵器建立有轨微机器人系统。微型操纵器之间的协调操纵是通过新设计的沿轨道的同心运动执行的,从而实现了微型操纵器姿势的任意改变。利用用于跟踪微操纵器和微模块的新颖开发的图像处理算法,实现了类似血管的微通道的自动生物组装,在接触操作过程中不受闭塞的影响。实验结果表明,提取成功率在98%左右,跟踪算法鲁棒。最终,我们实现了以6个微模块/分钟的速度自动组装微通道,这一效率足以制造具有宏观意义的生物模拟血管替代品。

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