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通过细胞外基质组成和纳米纤维排列对用于复杂三维细胞培养的纳米纤维复合水凝胶进行多尺度控制。

Multiscale Control of Nanofiber-Composite Hydrogel for Complex 3D Cell Culture by Extracellular Matrix Composition and Nanofiber Alignment.

作者信息

Choi Cholong, Yun Eunhye, Song Minju, Kim Jiyun, Son Jae Sung, Cha Chaenyung

机构信息

Center for Multidimensional Programmable Matter, Department of Materials Science and Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan 44919, Republic of Korea.

Department of Chemical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, Gyeongsangbuk-do 37673, Republic of Korea.

出版信息

Biomater Res. 2024 May 29;28:0032. doi: 10.34133/bmr.0032. eCollection 2024.

Abstract

In order to manipulate the complex behavior of cells in a 3-dimensional (3D) environment, it is important to provide the microenvironment that can accurately portray the complexity of highly anisotropic tissue structures. However, it is technically challenging to generate a complex microenvironment using conventional biomaterials that are mostly isotropic with limited bioactivity. In this study, the gelatin-hyaluronic acid hydrogel incorporated with aqueous-dispersible, short nanofibers capable of in situ alignment is developed to emulate the native heterogeneous extracellular matrix consisting of fibrous and non-fibrous components. The gelatin nanofibers containing magnetic nanoparticles, which could be aligned by external magnetic field, are dispersed and embedded in gelatin-hyaluronic acid hydrogel encapsulated with dermal fibroblasts. The aligned nanofibers via magnetic field could be safely integrated into the hydrogel, and the process could be repeated to generate larger 3D hydrogels with variable nanofiber alignments. The aligned nanofibers in the hydrogel can more effectively guide the anisotropic morphology (e.g., elongation) of dermal fibroblasts than random nanofibers, whereas myofibroblastic differentiation is more prominent in random nanofibers. At a given nanofiber configuration, the hydrogel composition having intermediate hyaluronic acid content induces myofibroblastic differentiation. These results indicate that modulating the degree of nanofiber alignment and the hyaluronic acid content of the hydrogel are crucial factors that critically influence the fibroblast phenotypes. The nanofiber-composite hydrogel capable of directional nanofiber alignment and tunable material composition can effectively induce a wide array of phenotypic plasticity in 3D cell culture.

摘要

为了在三维(3D)环境中操控细胞的复杂行为,提供能够准确描绘高度各向异性组织结构复杂性的微环境至关重要。然而,使用大多为各向同性且生物活性有限的传统生物材料来生成复杂的微环境在技术上具有挑战性。在本研究中,开发了一种明胶 - 透明质酸水凝胶,其掺入了能够原位排列的水分散性短纳米纤维,以模拟由纤维和非纤维成分组成的天然异质细胞外基质。含有磁性纳米颗粒且可通过外部磁场排列的明胶纳米纤维被分散并嵌入包裹有真皮成纤维细胞的明胶 - 透明质酸水凝胶中。通过磁场排列的纳米纤维能够安全地整合到水凝胶中,并且该过程可以重复进行以生成具有可变纳米纤维排列的更大的3D水凝胶。与随机纳米纤维相比,水凝胶中排列的纳米纤维能够更有效地引导真皮成纤维细胞的各向异性形态(例如伸长),而在随机纳米纤维中肌成纤维细胞分化更为显著。在给定的纳米纤维配置下,具有中等透明质酸含量的水凝胶组合物会诱导肌成纤维细胞分化。这些结果表明,调节纳米纤维的排列程度和水凝胶的透明质酸含量是严重影响成纤维细胞表型的关键因素。能够进行定向纳米纤维排列和可调材料组成的纳米纤维复合水凝胶可以在3D细胞培养中有效地诱导多种表型可塑性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/37c0/11136538/344d8bba2200/bmr.0032.fig.001.jpg

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