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载有生长因子的颗粒状水凝胶中的硫酸化微岛促进 hMSCs 的迁移和软骨分化。

Growth factor-loaded sulfated microislands in granular hydrogels promote hMSCs migration and chondrogenic differentiation.

机构信息

Tissue Engineering + Biofabrication Laboratory, Department of Health Sciences & Technology, ETH Zürich, Otto-Stern-Weg 7, 8093 Zürich, Switzerland.

Laboratory for Biointerfaces, Empa, Swiss Federal Laboratories for Materials Science and Technology, 9014 St. Gallen, Switzerland.

出版信息

Acta Biomater. 2023 Aug;166:69-84. doi: 10.1016/j.actbio.2023.03.045. Epub 2023 Apr 6.

Abstract

Cell-based therapies for articular cartilage lesions are expensive and time-consuming; clearly, a one-step procedure to induce endogenous repair would have significant clinical benefits. Acellular heterogeneous granular hydrogels were explored for their injectability, cell-friendly cross-linking, and ability to promote migration, as well as to serve as a scaffold for depositing cartilage extracellular matrix. The hydrogels were prepared by mechanical sizing of bulk methacrylated hyaluronic acid (HAMA) and bulk HAMA incorporating sulfated HAMA (SHAMA). SHAMA's negative charges allowed for the retention of positively charged growth factors (GFs) (e.g., TGFB3 and PDGF-BB). Mixtures of HAMA and GF-loaded SHAMA microgels were annealed by enzymatic cross-linking, forming heterogeneous granular hydrogels with GF deposits. The addition of GF loaded sulfated microislands guided cell migration and enhanced chondrogenesis. Granular heterogeneous hydrogels showed increased matrix deposition and cartilage tissue maturation compared to bulk or homogeneous granular hydrogels. This advanced material provides an ideal 3D environment for guiding cell migration and differentiation into cartilage. STATEMENT OF SIGNIFICANCE: Acellular materials which promote regeneration are of great interest for repair of cartilage defects, and they are more cost- and time-effective compared to current cell-based therapies. Here we develop an injectable, granular hydrogel system which promotes cell migration from the surrounding tissue, facilitating endogenous repair. The hydrogel architecture and chemistry were optimized to increase cell migration and extracellular matrix deposition. The present study provides quantitative data on the effect of microgel size and chemical modification on cell migration, growth factor retention and tissue maturation.

摘要

用于关节软骨损伤的细胞疗法既昂贵又耗时;显然,一步诱导内源性修复的方法将具有显著的临床益处。非细胞异质颗粒水凝胶因其可注射性、对细胞友好的交联以及促进迁移的能力,以及作为软骨细胞外基质沉积的支架而被探索。水凝胶通过机械筛分大块甲基丙烯酰化透明质酸(HAMA)和包含硫酸化 HAMA(SHAMA)的大块 HAMA 来制备。SHAMA 的负电荷允许保留带正电荷的生长因子(GFs)(例如 TGFB3 和 PDGF-BB)。HAMA 和负载 GF 的 SHAMA 微凝胶的混合物通过酶交联退火,形成具有 GF 沉积物的异质颗粒水凝胶。添加负载 GF 的硫酸化微岛引导细胞迁移并增强软骨生成。与块状或均质颗粒水凝胶相比,颗粒状异质水凝胶显示出基质沉积和软骨组织成熟度的增加。这种先进的材料为引导细胞迁移和分化为软骨提供了理想的 3D 环境。意义声明:促进再生的无细胞材料对于软骨缺陷的修复非常有意义,与当前的基于细胞的疗法相比,它们更具成本效益和时间效益。在这里,我们开发了一种可注射的颗粒水凝胶系统,该系统可促进来自周围组织的细胞迁移,从而促进内源性修复。优化了水凝胶的结构和化学性质,以增加细胞迁移和细胞外基质沉积。本研究提供了关于微凝胶尺寸和化学修饰对细胞迁移、生长因子保留和组织成熟的影响的定量数据。

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