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用于二维和三维细胞培养应用的模块化多孔粘弹性水凝胶平台。

Modular multiwell viscoelastic hydrogel platform for two- and three-dimensional cell culture applications.

作者信息

Skelton Mackenzie L, Gentry James L, Astrab Leilani R, Goedert Joshua A, Earl E Brynn, Pham Emily L, Bhat Tanvi, Caliari Steven R

机构信息

Department of Biomedical Engineering, University of Virginia, Charlottesville, Virginia 22903.

Department of Psychology, University of Virginia, Charlottesville, Virginia 22903.

出版信息

bioRxiv. 2023 Oct 12:2023.10.09.561449. doi: 10.1101/2023.10.09.561449.

Abstract

Hydrogels have gained significant popularity as model platforms to study the reciprocal interactions between cells and their microenvironment. While hydrogel tools to probe many characteristics of the extracellular space have been developed, fabrication approaches remain challenging and time-consuming, limiting multiplexing or widespread adoption. Thus, we have developed a modular fabrication approach to generate distinct hydrogel microenvironments within 96-well plates for increased throughput of fabrication as well as integration with existing high-throughput assay technologies. This approach enables hydrogel mechanical characterization and was used to generate both elastic and viscoelastic hydrogels across a range of stiffnesses. Additionally, this fabrication method enabled a 3-fold reduction in polymer and up to an 8-fold reduction in fabrication time required per hydrogel replicate. The feasibility of this platform for cell culture applications was demonstrated by measuring both population-level and single cell-level metrics via microplate reader and high-content imaging. Finally, the 96-well hydrogel array was utilized for 3D cell culture, demonstrating the ability to support high cell viability. Together, this work demonstrates a versatile and easily adoptable fabrication approach that can support the ever-expanding tool kit of hydrogel technologies for cell culture applications.

摘要

水凝胶作为研究细胞与其微环境之间相互作用的模型平台已广受欢迎。虽然已经开发出用于探测细胞外空间许多特征的水凝胶工具,但制造方法仍然具有挑战性且耗时,限制了多重检测或广泛应用。因此,我们开发了一种模块化制造方法,可在96孔板内生成不同的水凝胶微环境,以提高制造通量并与现有的高通量检测技术集成。这种方法能够对水凝胶进行力学表征,并用于生成一系列不同硬度的弹性和粘弹性水凝胶。此外,这种制造方法使聚合物用量减少了3倍,每个水凝胶复制品所需的制造时间最多减少了8倍。通过微孔板读数器和高内涵成像测量群体水平和单细胞水平指标,证明了该平台用于细胞培养应用的可行性。最后,96孔水凝胶阵列用于3D细胞培养,证明了其支持高细胞活力的能力。总之,这项工作展示了一种通用且易于采用的制造方法,可为不断扩展的用于细胞培养应用的水凝胶技术工具包提供支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1eb9/10592709/427f6e90af92/nihpp-2023.10.09.561449v1-f0001.jpg

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