Department of Biomedical Engineering, School of Materials Science and Engineering, South China University of Technology, Guangzhou 510641, PR China.
Biomater Sci. 2020 Jun 21;8(12):3286-3300. doi: 10.1039/d0bm00443j. Epub 2020 Jun 3.
Hydroxyapatite (HA) micro/nano particles show great promise as artificial bone and dental substitutes, or drug carrier systems. However, the precise regulation of hydroxyapatite micro/nano particles with controllable physicochemical properties (such as hierarchical structure, particle size, potential and crystallinity) is still a challenge. Furthermore, the effects of different hierarchical structures on biological responses have been rarely reported. Herein, the HA particles with a precisely tailored micro/nano hierarchical structure have been developed using an elaborate biomimetic synthesis technology. Three representative particles, namely, micro/nano needle-like HA particles, micro/nano rod-like HA particles, and micro/nano flake-like HA particles, were featured to evaluate their biological responses to stem cells. The pore structure facilitated the adsorption of serum adhesive proteins, which together with the unique hierarchical architecture of micro/nano flake-like HA particles remarkably promoted the endocytosis efficiency in a concentration-dependent manner. The qRT-PCR together with RNA-seq and western blot analyses showed that micro/nano flake-like HA particles more significantly up-regulated the expression of genes and production of proteins related to osteogenic differentiation among the three particles through the activated ERK/MAPK signalling pathway. RNA-seq further revealed a complex mechanism of cell interface events, suggesting that the hierarchical architecture of HA particles is of crucial importance for the regulation of actin cytoskeleton involved in the modulation of cell adhesion which positively stimulated osteogenic differentiation of stem cells. Moreover, the endocytosis of particles into lysosomes resulted in an increase in the intracellular Ca levels, which activated possible intracellular Ca-mediated signaling cascades (Ras/cAMP/Rap1/MAPK signaling pathways) related to osteogenic differentiation of stem cells. Our findings shed light on the effects of different hierarchical structures of HA particles on stem cell differentiation and contribute to the optimal design of implant materials.
羟基磷灰石(HA)微/纳颗粒作为人工骨和牙科替代品或药物载体系统具有广阔的应用前景。然而,精确调控具有可控制的物理化学性质(如分级结构、颗粒尺寸、电位和结晶度)的羟基磷灰石微/纳颗粒仍然是一个挑战。此外,不同分级结构对生物响应的影响很少有报道。在此,采用精心设计的仿生合成技术,开发出具有精确调控微/纳分级结构的 HA 颗粒。选择三种具有代表性的颗粒,即微/纳针状 HA 颗粒、微/纳棒状 HA 颗粒和微/纳片状 HA 颗粒,来评估它们对干细胞的生物响应。孔结构有利于吸附血清黏附蛋白,这与微/纳片状 HA 颗粒的独特分级结构一起,显著地以浓度依赖的方式促进了内吞效率。qRT-PCR 结合 RNA-seq 和 Western blot 分析表明,微/纳片状 HA 颗粒通过激活 ERK/MAPK 信号通路,更显著地上调了三种颗粒中与成骨分化相关的基因表达和蛋白产生。RNA-seq 进一步揭示了细胞界面事件的复杂机制,表明 HA 颗粒的分级结构对于调节细胞黏附的肌动蛋白细胞骨架的调控至关重要,这正向刺激了干细胞的成骨分化。此外,颗粒被内吞到溶酶体中会导致细胞内 Ca 水平增加,这激活了与干细胞成骨分化相关的可能的细胞内 Ca 介导的信号级联(Ras/cAMP/Rap1/MAPK 信号通路)。我们的发现揭示了不同 HA 颗粒分级结构对干细胞分化的影响,并有助于优化植入材料的设计。