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用于组织工程的多材料3D生物打印中的精确校准

Accurate Calibration in Multi-Material 3D Bioprinting for Tissue Engineering.

作者信息

Sodupe-Ortega Enrique, Sanz-Garcia Andres, Pernia-Espinoza Alpha, Escobedo-Lucea Carmen

机构信息

EDMANS Group, Department of Mechanical Engineering, University of La Rioja, San José de Calasanz 31, Edificio Departamental, 26004 Logroño, Spain.

Division of Pharmaceutical Biosciences, University of Helsinki, Viikinkaari 5 E, P.O. Box 56, 00014 Helsinki, Finland.

出版信息

Materials (Basel). 2018 Aug 10;11(8):1402. doi: 10.3390/ma11081402.

Abstract

Most of the studies in three-dimensional (3D) bioprinting have been traditionally based on printing a single bioink. Addressing the complexity of organ and tissue engineering, however, will require combining multiple building and sacrificial biomaterials and several cells types in a single biofabrication session. This is a significant challenge, and, to tackle that, we must focus on the complex relationships between the printing parameters and the print resolution. In this paper, we study the influence of the main parameters driven multi-material 3D bioprinting and we present a method to calibrate these systems and control the print resolution accurately. Firstly, poloxamer hydrogels were extruded using a desktop 3D printer modified to incorporate four microextrusion-based bioprinting (MEBB) printheads. The printed hydrogels provided us the particular range of printing parameters (mainly printing pressure, deposition speed, and nozzle -offset) to assure the correct calibration of the multi-material 3D bioprinter. Using the printheads, we demonstrated the excellent performance of the calibrated system extruding different fluorescent bioinks. Representative multi-material structures were printed in both poloxamer and cell-laden gelatin-alginate bioinks in a single session corroborating the capabilities of our system and the calibration method. Cell viability was not significantly affected by any of the changes proposed. We conclude that our proposal has enormous potential to help with advancing in the creation of complex 3D constructs and vascular networks for tissue engineering.

摘要

传统上,三维(3D)生物打印的大多数研究都基于打印单一生物墨水。然而,应对器官和组织工程的复杂性需要在单次生物制造过程中组合多种构建和牺牲性生物材料以及多种细胞类型。这是一项重大挑战,为了应对这一挑战,我们必须关注打印参数与打印分辨率之间的复杂关系。在本文中,我们研究了主要参数对多材料3D生物打印的影响,并提出了一种校准这些系统并精确控制打印分辨率的方法。首先,使用改装后的桌面3D打印机挤出泊洛沙姆水凝胶,该打印机配备了四个基于微挤压的生物打印(MEBB)打印头。打印的水凝胶为我们提供了特定的打印参数范围(主要是打印压力、沉积速度和喷嘴偏移),以确保对多材料3D生物打印机进行正确校准。使用这些打印头,我们展示了校准系统挤出不同荧光生物墨水的出色性能。在单次操作中,在泊洛沙姆和含细胞的明胶-藻酸盐生物墨水中打印了具有代表性的多材料结构,证实了我们系统和校准方法的能力。所提出的任何变化对细胞活力均无显著影响。我们得出结论,我们的提议在推进用于组织工程的复杂3D构建体和血管网络的创建方面具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aaaa/6119900/6f70b9841a30/materials-11-01402-g001.jpg

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