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无需颗粒间交联即可构建支持多细胞组织的颗粒水凝胶。

Engineering Granular Hydrogels without Interparticle Cross-Linking to Support Multicellular Organization.

作者信息

Claxton Natasha L, Luse Melissa A, Isakson Brant E, Highley Christopher B

机构信息

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

Department of Molecular Physiology and Biophysics, University of Virginia School of Medicine, Charlottesville, Virginia 22903, United States.

出版信息

ACS Biomater Sci Eng. 2024 Dec 9;10(12):7594-7605. doi: 10.1021/acsbiomaterials.4c01563. Epub 2024 Nov 25.

Abstract

Advancing three-dimensional (3D) tissue constructs is central to creating models and engineered tissues that recapitulate biology. Materials that are permissive to cellular behaviors, including proliferation, morphogenesis of multicellular structures, and motility, will support the emergence of tissue structures. Granular hydrogels in which there is no interparticle cross-linking exhibit dynamic properties that may be permissive to such cellular behaviors. However, designing granular hydrogels that lack interparticle cross-linking but support cellular self-organization remains underexplored relative to granular systems stabilized by interparticle cross-linking. In this study, we developed a polyethylene glycol-based granular hydrogel system, with average particle diameters under 40 μm. This granular hydrogel exhibited bulk stress-relaxing behaviors and compatibility with custom microdevices to sustain cell cultures without degradation. The system was studied in conjunction with cocultures of endothelial cells and fibroblasts, known for their spontaneous network formation. Cross-linking, porosity, and cell-adhesive ligands (such as RGD) were manipulated to control system properties. Toward supporting cellular activity, increased porosity was found to enhance the formation of cellular networks, whereas RGD reduced network formation in the system studied. This research highlights the potential of un-cross-linked granular systems to support morphogenetic processes, like vasculogenesis and tissue maturation, offering insights into material design for 3D cell culture systems.

摘要

推进三维(3D)组织构建体对于创建能够重现生物学特性的模型和工程组织至关重要。有利于细胞行为(包括增殖、多细胞结构的形态发生和运动)的材料将支持组织结构的出现。不存在颗粒间交联的颗粒水凝胶表现出的动态特性可能有利于此类细胞行为。然而,相对于通过颗粒间交联稳定的颗粒系统而言,设计缺乏颗粒间交联但支持细胞自组织的颗粒水凝胶仍未得到充分探索。在本研究中,我们开发了一种基于聚乙二醇的颗粒水凝胶系统,其平均粒径在40μm以下。这种颗粒水凝胶表现出整体应力松弛行为,并且与定制微器件具有兼容性,能够维持细胞培养而不降解。该系统与以内皮细胞和成纤维细胞共培养进行了研究,这两种细胞以自发形成网络而闻名。通过控制交联、孔隙率和细胞黏附配体(如RGD)来调控系统特性。为了支持细胞活性,发现增加孔隙率可增强细胞网络的形成,而RGD则减少了所研究系统中的网络形成。本研究突出了未交联颗粒系统支持血管生成和组织成熟等形态发生过程的潜力,为3D细胞培养系统的材料设计提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ad7/11632665/c5e1f779c66a/ab4c01563_0001.jpg

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