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同轴打印双层且自立的血管模拟物,无需紫外光照即可实现大容量血管化组织。

Coaxial printing of double-layered and free-standing blood vessel analogues without ultraviolet illumination for high-volume vascularised tissue.

机构信息

Department of Biomedical Engineering, School of Electrical Engineering, University of Ulsan, Ulsan 44610, Republic of Korea.

School of Biological Sciences, University of Ulsan, 93 Daehak-ro, Nam-gu, Ulsan 44610, Republic of Korea.

出版信息

Biofabrication. 2020 Sep 24;12(4):045033. doi: 10.1088/1758-5090/abafc6.

Abstract

Human umbilical vein endothelial cells (HUVECs) and human aortic smooth muscle cells (HASMCs) were coaxially and continuously extruded without ultraviolet illumination using a microfluidic-based nozzle. Type I collagen (3 mg ml) containing HUVECs and a crosslinking reagent (100 mM CaCl) were supplied as the core material. A mixture of 3 mg ml of type I collagen (25%) and 1.8% weight volume of sodium alginate (75%) was provided as the shell layer material surrounding the core material. The HUVECs were well proliferated at the core and reshaped into a monolayer formation along the axial direction of the scaffold. The HASMCs showed more than 90% cell viability in the shell layer. Fluorescent beads were passed through the inside channel of the scaffold with the HUVEC core and HASMC shell using an in-house connector. This double-layered scaffold showed higher angiogenesis in growth factor-free medium than the scaffold with only a HUVEC core. The HASMCs in the shell layer affected angiogenesis, extracellular matrix secretion, and outer diameter. The proposed technique could be applied to three-dimensional bioprinting for the production of high-volume vascularised tissue.

摘要

使用基于微流控的喷嘴,在没有紫外线照射的情况下,同轴且连续地挤出人脐静脉内皮细胞(HUVEC)和人主动脉平滑肌细胞(HASMC)。将含有 HUVEC 的 I 型胶原(3mg/ml)和交联试剂(100mM CaCl)作为芯材供应。将 3mg/ml 的 I 型胶原(25%)和 1.8%重量体积比的海藻酸钠(75%)的混合物作为围绕芯材的壳层材料提供。HUVEC 在芯部很好地增殖,并沿着支架的轴向重塑为单层形成。壳层中的 HASMC 显示出超过 90%的细胞活力。使用内部连接器,将荧光珠与具有 HUVEC 芯和 HASMC 壳的支架的内部通道一起通过。与只有 HUVEC 芯的支架相比,这种双层支架在无生长因子的培养基中表现出更高的血管生成能力。壳层中的 HASMC 影响血管生成、细胞外基质分泌和外径。所提出的技术可应用于三维生物打印以生产大量血管化组织。

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