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光扩展显微镜可实现 3D 水凝胶中嵌入细胞的超分辨率成像。

Photo-expansion microscopy enables super-resolution imaging of cells embedded in 3D hydrogels.

机构信息

Department of Chemical and Biological Engineering and the BioFrontiers Institute, University of Colorado, Boulder, CO, USA.

Department of Molecular, Cellular and Developmental Biology, University of Colorado, Boulder, CO, USA.

出版信息

Nat Mater. 2023 Jun;22(6):777-785. doi: 10.1038/s41563-023-01558-5. Epub 2023 May 22.

Abstract

Hydrogels are extensively used as tunable, biomimetic three-dimensional cell culture matrices, but optically deep, high-resolution images are often difficult to obtain, limiting nanoscale quantification of cell-matrix interactions and outside-in signalling. Here we present photopolymerized hydrogels for expansion microscopy that enable optical clearance and tunable ×4.6-6.7 homogeneous expansion of not only monolayer cell cultures and tissue sections, but cells embedded within hydrogels. The photopolymerized hydrogels for expansion microscopy formulation relies on a rapid photoinitiated thiol/acrylate mixed-mode polymerization that is not inhibited by oxygen and decouples monomer diffusion from polymerization, which is particularly beneficial when expanding cells embedded within hydrogels. Using this technology, we visualize human mesenchymal stem cells and their interactions with nascently deposited proteins at <120 nm resolution when cultured in proteolytically degradable synthetic polyethylene glycol hydrogels. Results support the notion that focal adhesion maturation requires cellular fibronectin deposition; nuclear deformation precedes cellular spreading; and human mesenchymal stem cells display cell-surface metalloproteinases for matrix remodelling.

摘要

水凝胶被广泛用作可调谐、仿生的三维细胞培养基质,但由于光学深度较深,往往难以获得高分辨率图像,这限制了对细胞-基质相互作用和外部信号的纳米级定量分析。在这里,我们提出了用于扩展显微镜的光聚合水凝胶,它不仅可以使单层细胞培养物和组织切片,还可以使嵌入水凝胶中的细胞实现光学透明和可调节的×4.6-6.7 均匀扩展。用于扩展显微镜的光聚合水凝胶配方依赖于快速光引发的巯基/丙烯酸酯混合模式聚合,该聚合不受氧气抑制,并将单体扩散与聚合分离,这在扩展嵌入水凝胶中的细胞时特别有益。使用这项技术,当在可蛋白水解降解的合成聚乙二醇水凝胶中培养时,我们可以以小于 120nm 的分辨率可视化人类间充质干细胞及其与新沉积蛋白的相互作用。结果表明,粘着斑成熟需要细胞纤维连接蛋白的沉积;核变形先于细胞铺展;人骨髓间充质干细胞表面显示基质重塑的细胞表面金属蛋白酶。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5edf/10590656/09341f387f51/nihms-1925945-f0001.jpg

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