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在图案化颗粒浴中对水凝胶和细胞水悬浮液进行嵌入式打印。

Embedded Printing of Hydrogels and Watery Suspensions of Cells in Patterned Granular Baths.

作者信息

Trikalitis Vasileios D, Perea Paizal Julia, Rangel Vincent, Stein Fabian, Rouwkema Jeroen

机构信息

Department of Biomechanical Engineering, Vascularization Lab, Technical Medical Centre, University of Twente Faculty of Engineering Technology, Enschede, the Netherlands.

出版信息

Tissue Eng Part C Methods. 2024 May;30(5):206-216. doi: 10.1089/ten.TEC.2024.0015. Epub 2024 Apr 22.

Abstract

Bioprinting within support media has emerged as the superior alternative to conventional extrusion printing. Not only because it allows for more freedom over the shapes that can be printed but also because it allows for the printing of inks that would not retain shape fidelity in freeform deposition such as watery liquids. Apart from functioning as mechanical support during embedded printing, hydrogel microparticle support media can provide the unique advantage of offering distinct chemotactic cues to cells printed in the baths by varying the composition of the hydrogel microparticles. There is great potential in compartmentalized granular baths consisting of different hydrogel particle materials in the field of tissue engineering, as these allow for the local inclusion of properties or cues to guide tissue development. In this work, we present a method to create compartmentalized embedding baths by printing multiple granular hydrogel materials that are widely used in tissue engineering. After adapting the volume fraction (φ) of the particles in the bath, we print within them using both inks composed of hydrogel or of cells and other particles suspended in watery liquid. Our process consists of the following three steps: First, the hydrogel microparticles are packed at a φ that allows them to be extruded while being reversibly jammed, facilitating the localized deposition of the granular media to form a compartmentalized bath. Second, each granular media is deposited in succession to create a packed suspension compartment, and by adding liquid post deposition, φ is reduced to allow for embedded printing. Finally, we demonstrate the printing of multiple inks within the compartmentalized embedding bath and highlight the distinct differences between using inks composed of hydrogels or inks composed of particles suspended in watery liquid. This approach combines the advantages of embedded printing through the use of granular media with the added ability to pattern multiple bioactive granular materials to locally affect the behavior of cells printed within the bath. We expect that this workflow will allow researchers to create spatially compartmentalized, customized bioactive embedding baths that allow for the embedded printing of inks composed of hydrogels, cells, and other particles adapted to their need.

摘要

在支撑介质内进行生物打印已成为传统挤出打印的更优替代方案。这不仅是因为它在可打印形状方面具有更大的自由度,还因为它能够打印那些在自由形式沉积中无法保持形状保真度的墨水,如水状液体。除了在嵌入式打印过程中起到机械支撑作用外,水凝胶微粒支撑介质还能通过改变水凝胶微粒的组成,为在浴中打印的细胞提供独特的优势,即提供不同的趋化线索。在组织工程领域,由不同水凝胶颗粒材料组成的分隔颗粒浴具有巨大潜力,因为这些颗粒浴能够局部包含引导组织发育的特性或线索。在这项工作中,我们展示了一种通过打印多种广泛应用于组织工程的颗粒状水凝胶材料来创建分隔嵌入式浴的方法。在调整浴中颗粒的体积分数(φ)后,我们使用由水凝胶或细胞以及悬浮在水状液体中的其他颗粒组成的墨水在其中进行打印。我们的过程包括以下三个步骤:首先,将水凝胶微粒以允许它们在可逆堵塞的同时被挤出的φ进行填充,这有助于颗粒介质的局部沉积以形成分隔浴。其次,依次沉积每种颗粒介质以创建一个填充的悬浮隔室,并且通过在沉积后添加液体,降低φ以允许进行嵌入式打印。最后,我们展示了在分隔嵌入式浴中打印多种墨水,并突出了使用由水凝胶组成的墨水或由悬浮在水状液体中的颗粒组成的墨水之间的明显差异。这种方法通过使用颗粒介质结合了嵌入式打印的优点,同时还具备对多种生物活性颗粒材料进行图案化处理的额外能力,从而局部影响浴中打印细胞的行为。我们期望这种工作流程将使研究人员能够创建空间分隔、定制的生物活性嵌入式浴,从而允许对由水凝胶、细胞和其他适合其需求的颗粒组成的墨水进行嵌入式打印。

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