Xu Yong, Rothe Rebecca, Voigt Dagmar, Sayed Ahmed, Huang Can, Hauser Sandra, Lee Pao-Wan, Cui Meiying, Sáenz James P, Boccaccini Aldo R, Zheng Kai, Pietzsch Jens, Zhang Yixin
Department of Orthopaedic Surgery, The First Affiliated Hospital of Soochow University, Soochow University, Suzhou 215006, PR China; Orthopaedic Institute, Medical College, Soochow University, Suzhou 215006, PR China; B CUBE Center for Molecular Bioengineering, Technische Universität Dresden, Dresden 01307, Germany.
Helmholtz-Zentrum Dresden-Rossendorf (HZDR), Institute of Radiopharmaceutical Cancer Research Department of Radiopharmaceutical and Chemical Biology, Dresden 01328, Germany; Technische Universität Dresden, School of Science, Faculty of Chemistry and Food Chemistry, Dresden 01062, Germany.
Acta Biomater. 2023 May;162:211-225. doi: 10.1016/j.actbio.2023.03.015. Epub 2023 Mar 16.
Extracellular matrix (ECM) provides various types of direct interactions with cells and a dynamic environment, which can be remodeled through different assembly/degradation mechanisms to adapt to different biological processes. Herein, through introducing polyphosphate-modified hyaluronic acid and bioactive glass (BG) nano-fibril into a self-assembled hydrogel system with peptide-polymer conjugate, we can realize many new ECM-like functions in a synthetic polymer network. The hydrogel network formation is mediated by coacervation, followed by a gradual transition of peptide structure from α-helix to β-sheet. The ECM-like hydrogels can be degraded through a number of orthogonal mechanisms, including treatments with protease, hyaluronidase, alkaline phosphatase, and calcium ion. As 2D coating, the ECM-like hydrogels can be used to modify the planar surface to promote the adhesion of mesenchymal stromal cells, or to coat the cell surface in a layer-by-layer fashion to shield the interaction with the substrate. As ECM-like hydrogels for 3D cell culture, the system is compatible with injection and cell encapsulation. Upon incorporating fragmented electrospun bioactive glass nano-fibril into the hydrogels, the synergetic effects of soft hydrogel and stiff reinforcement nanofibers on recapitulating ECM functions result in reduced cell circularity in 3D. Finally, by injecting the ECM-like hydrogels into mice, gradual degradations over a time period of one month and high biocompatibility have been shown in vivo. The contribution of complex network dynamics and hierarchical structures to cell-biomatrix interaction can be investigated multi-dimensionally, as many mechanisms are orthogonal to each other and can be regulated individually. STATEMENT OF SIGNIFICANCE: A list of native ECM features has attracted the most interest and attention in the research of synthetic biomaterials. In this research, we have described a simple ECM-like hydrogel system in which the complex and elegant functions of native ECM can be recapitulated in a chemically defined synthetic system. The ECM-like hydrogel systems were developed to avoid undesired features of biological substances (e.g., ethical concerns, batch-to-batch variation, immunogenicity, and potential risk of contamination), as well as gaining new functions to facilitate bioengineering applications (e.g., 3D cell culture, injection, and high stability). To this end, we have developed an ECM-like hydrogel system and provide evidence that this purely synthetic biomaterial is a promising candidate for cell bioengineering applications.
细胞外基质(ECM)与细胞提供多种直接相互作用以及一个动态环境,其可通过不同的组装/降解机制进行重塑,以适应不同的生物学过程。在此,通过将多磷酸盐修饰的透明质酸和生物活性玻璃(BG)纳米纤维引入具有肽 - 聚合物共轭物的自组装水凝胶系统中,我们能够在合成聚合物网络中实现许多新的类ECM功能。水凝胶网络的形成由凝聚介导,随后肽结构从α - 螺旋逐渐转变为β - 折叠。类ECM水凝胶可通过多种正交机制降解,包括用蛋白酶、透明质酸酶、碱性磷酸酶和钙离子处理。作为二维涂层,类ECM水凝胶可用于修饰平面表面以促进间充质基质细胞的粘附,或以逐层方式包被细胞表面以屏蔽与底物的相互作用。作为用于三维细胞培养的类ECM水凝胶,该系统与注射和细胞封装兼容。在将电纺生物活性玻璃纳米纤维碎片掺入水凝胶后,软水凝胶和硬增强纳米纤维在重现ECM功能方面的协同作用导致三维培养的细胞圆度降低。最后,通过将类ECM水凝胶注射到小鼠体内,已显示在一个月的时间段内逐渐降解且具有高生物相容性。由于许多机制相互正交且可单独调节,因此可以多维方式研究复杂网络动力学和层次结构对细胞 - 生物基质相互作用的贡献。
在合成生物材料研究中,一系列天然ECM特征引起了最多的兴趣和关注。在本研究中,我们描述了一种简单的类ECM水凝胶系统,其中天然ECM复杂而精妙的功能可在化学定义的合成系统中重现。开发类ECM水凝胶系统是为了避免生物物质的不良特征(例如伦理问题、批次间差异)、免疫原性和潜在污染风险),同时获得新功能以促进生物工程应用(例如三维细胞培养、注射和高稳定性)。为此,我们开发了一种类ECM水凝胶系统,并提供证据表明这种纯合成生物材料是细胞生物工程应用的有前途的候选者。