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导电型聚异氰尿酸水凝胶抑制纤维化并促进成肌生成。

Conductive Polyisocyanide Hydrogels Inhibit Fibrosis and Promote Myogenesis.

机构信息

Institute for Molecules and Materials, Radboud University, Heyendaalseweg 135, 6525 AJ Nijmegen, The Netherlands.

Department of Dentistry─Orthodontics and Craniofacial Biology, Radboud University Medical Centre, 6525 EX Nijmegen, The Netherlands.

出版信息

ACS Appl Bio Mater. 2024 May 20;7(5):3258-3270. doi: 10.1021/acsabm.4c00210. Epub 2024 Apr 9.

Abstract

Reliable in vitro models closely resembling native tissue are urgently needed for disease modeling and drug screening applications. Recently, conductive biomaterials have received increasing attention in the development of in vitro models as they permit exogenous electrical signals to guide cells toward a desired cellular response. Interestingly, they have demonstrated that they promote cellular proliferation and adhesion even without external electrical stimulation. This paper describes the development of a conductive, fully synthetic hydrogel based on hybrids of the peptide-modified polyisocyanide (PIC-RGD) and the relatively conductive poly(aniline---(4-sulfophenyl)aniline) (PASA) and its suitability as the in vitro matrix. We demonstrate that incorporating PASA enhances the PIC-RGD hydrogel's electroactive nature without significantly altering the fibrous architecture and nonlinear mechanics of the PIC-RGD network. The biocompatibility of our model was assessed through phenotyping cultured human foreskin fibroblasts (HFF) and murine C2C12 myoblasts. Immunofluorescence analysis revealed that PIC-PASA hydrogels inhibit the fibrotic behavior of HFFs while promoting myogenesis in C2C12 cells without electrical stimulation. The composite PIC-PASA hydrogel can actively change the cell fate of different cell types, providing an attractive tool to improve skin and muscle repair.

摘要

迫切需要可靠的体外模型来模拟天然组织,以用于疾病建模和药物筛选应用。最近,导电生物材料在体外模型的开发中受到越来越多的关注,因为它们允许外源性电信号引导细胞产生所需的细胞反应。有趣的是,即使没有外部电刺激,它们也能促进细胞增殖和黏附。本文介绍了一种基于肽修饰聚异氰酸酯(PIC-RGD)和相对导电的聚苯胺-(4-磺基苯基)苯胺(PASA)的杂交体的导电、全合成水凝胶的开发及其作为体外基质的适用性。我们证明,在不显著改变 PIC-RGD 网络的纤维结构和非线性力学的情况下,加入 PASA 可以增强 PIC-RGD 水凝胶的电活性。通过表型分析培养的人包皮成纤维细胞(HFF)和鼠 C2C12 成肌细胞来评估我们模型的生物相容性。免疫荧光分析显示,PIC-PASA 水凝胶抑制 HFF 的纤维化行为,同时促进 C2C12 细胞的肌生成,而无需电刺激。这种复合 PIC-PASA 水凝胶可以主动改变不同细胞类型的细胞命运,为改善皮肤和肌肉修复提供了一种有吸引力的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d29b/11110048/4140ac5f0268/mt4c00210_0001.jpg

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