Industrial Engineering Department & INSTM Padova RU, University of Padova, Padova 35131, Italy; Center for Materials and Microsystems, Bruno Kessler Foundation, Trento 38123, Italy; Venetian Institute of Molecular Medicine, Padova 35129, Italy.
Industrial Engineering Department & INSTM Padova RU, University of Padova, Padova 35131, Italy; Venetian Institute of Molecular Medicine, Padova 35129, Italy.
Acta Biomater. 2017 Jun;55:373-384. doi: 10.1016/j.actbio.2017.03.036. Epub 2017 Mar 27.
UNLABELLED: Hydrogels are widely used as matrices for cell growth due to the their tuneable chemical and physical properties, which mimic the extracellular matrix of natural tissue. The microfabrication of hydrogels into arbitrarily complex 3D structures is becoming essential for numerous biological applications, and in particular for investigating the correlation between cell shape and cell function in a 3D environment. Micrometric and sub-micrometric resolution hydrogel scaffolds are required to deeply investigate molecular mechanisms behind cell-matrix interaction and downstream cellular processes. We report the design and development of high resolution 3D gelatin hydrogel woodpile structures by two-photon crosslinking. Hydrated structures of lateral linewidth down to 0.5µm, lateral and axial resolution down to a few µm are demonstrated. According to the processing parameters, different degrees of polymerization are obtained, resulting in hydrated scaffolds of variable swelling and deformation. The 3D hydrogels are biocompatible and promote cell adhesion and migration. Interestingly, according to the polymerization degree, 3D hydrogel woodpile structures show variable extent of cell adhesion and invasion. Human BJ cell lines show capability of deforming 3D micrometric resolved hydrogel structures. STATEMENT OF SIGNIFICANCE: The design and development of high resolution 3D gelatin hydrogel woodpile structures by two-photon crosslinking is reported. Significantly, topological and mechanical conditions of polymerized gelatin structures were suitable for cell accommodation in the volume of the woodpiles, leading to a cell density per unit area comparable to the bare substrate. The fabricated structures, presenting micrometric features of high resolution, are actively deformed by cells, both in terms of cell invasion within rods and of cell attachment in-between contiguous woodpiles. Possible biological targets for this 3D approach are customized 3D tissue models, or studies of cell adhesion, deformation and migration.
未加标签:由于其可调谐的化学和物理特性,水凝胶被广泛用作细胞生长的基质,这些特性模仿了天然组织的细胞外基质。将水凝胶微制成任意复杂的 3D 结构对于许多生物学应用变得至关重要,特别是对于在 3D 环境中研究细胞形状与细胞功能之间的相关性。需要微尺度和亚微尺度的水凝胶支架来深入研究细胞与基质相互作用背后的分子机制和下游细胞过程。我们报告了通过双光子交联设计和开发高分辨率 3D 明胶水凝胶木堆结构。证明了横向线宽低至 0.5µm、横向和轴向分辨率低至几 µm 的水凝胶结构。根据加工参数,可以获得不同程度的聚合,从而得到具有不同溶胀和变形程度的水凝胶支架。3D 水凝胶具有生物相容性,可促进细胞黏附和迁移。有趣的是,根据聚合度,3D 水凝胶木堆结构显示出不同程度的细胞黏附和侵袭。人 BJ 细胞系显示出变形 3D 微观分辨率水凝胶结构的能力。 意义声明:报告了通过双光子交联设计和开发高分辨率 3D 明胶水凝胶木堆结构。重要的是,聚合明胶结构的拓扑和机械条件适合细胞在木堆体积内的容纳,从而导致单位面积的细胞密度与裸基底相当。所制造的结构具有高分辨率的微观特征,可被细胞积极变形,包括细胞在棒内的侵袭以及细胞在相邻木堆之间的附着。这种 3D 方法的可能生物学目标是定制 3D 组织模型,或研究细胞黏附、变形和迁移。
Acta Biomater. 2017-3-27
ACS Appl Mater Interfaces. 2022-3-23
Colloids Surf B Biointerfaces. 2016-12-1
Ann Biomed Eng. 2017-1
Mater Sci Eng C Mater Biol Appl. 2017-9-1
Biomed Mater. 2019-5-17
Mechanobiol Med. 2023-7-7
Nanophotonics. 2023-1-10
Front Bioeng Biotechnol. 2024-2-16
Micromachines (Basel). 2023-12-18
Nat Commun. 2023-12-11
Int J Mol Sci. 2023-7-27