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Aspiration-assisted bioprinting for precise positioning of biologics

机译:渴望辅助生物监测生物制剂的精确定位

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Three-dimensional (3D) bioprinting is an appealing approach for building tissues; however, bioprinting of mini-tissue blocks (i.e., spheroids) with precise control on their positioning in 3D space has been a major obstacle. Here, we unveil “aspiration-assisted bioprinting (AAB),” which enables picking and bioprinting biologics in 3D through harnessing the power of aspiration forces, and when coupled with microvalve bioprinting, it facilitated different biofabrication schemes including scaffold-based or scaffold-free bioprinting at an unprecedented placement precision, ~11% with respect to the spheroid size. We studied the underlying physical mechanism of AAB to understand interactions between aspirated viscoelastic spheroids and physical governing forces during aspiration and bioprinting. We bioprinted a wide range of biologics with dimensions in an order-of-magnitude range including tissue spheroids (80 to 600 μm), tissue strands (~800 μm), or single cells (electrocytes, ~400 μm), and as applications, we illustrated the patterning of angiogenic sprouting spheroids and self-assembly of osteogenic spheroids.
机译:三维(3D)Bioplinting是建筑组织的一种吸引人的方法;然而,具有精确控制在3D空间中的精确控制的迷你组织块(即球状体)的生物印刷已经是一个主要的障碍。在这里,我们推出了“吸入辅助生物监测(AAB)”,它通过利用抽吸力的功率来挑选和生物制造生物制剂,并且当加上微型阀生物监测时,它促进了不同的生物制作方案,包括基于支架或无支腿的生物制作方案在前所未有的放置精度下,〜11%相对于球状尺寸。我们研究了AAB的潜在物理机制,以了解吸入粘弹性球体与吸入和生物印刷过程中的物理控制力之间的相互作用。我们在幅度范围内制成各种生物制剂,其尺寸范围包括组织球状体(80至600μm),组织链(〜800μm)或单细胞(电胶质,〜400μm)和应用,我们说明了血管生成萌发球体的图案化和成骨球体的自组装。

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