Li Guangwen, Song Yanyan, Shi Mengqi, Du Yuanhong, Wang Wei, Zhang Yumei
State Key Laboratory of Military Stomatology & National Clinical Research Center for Oral Disease & Shaanxi Key Laboratory of Oral Disease, Department of Prosthodontics, School of Stomatology, The Fourth Military Medical University, Xi'an 710032, China.
Department of Prosthodontics, The First Affiliated Hospital of Xinjiang Medical University, Xinjiang 830054, China.
Acta Biomater. 2017 Feb;49:235-246. doi: 10.1016/j.actbio.2016.11.057. Epub 2016 Nov 24.
Micro/nano-textured titanium surface topography promotes osteoblast differentiation and the Wnt/β-catenin signaling pathway. However, the response of rat bone mesenchymal stem cells (MSCs) to micro/nano-textured topography, and the underlying mechanisms of its effects, are not well understood. We hypothesized that cell division cycle 42 protein (Cdc42), a key member of the Rho GTPases family, may regulate rat MSCs morphology and osteogenic differentiation by micro/nano-textured topography, and that crosstalk between Cdc42 and Wnt/β-catenin is the underlying mechanism. To confirm the hypothesis, we first tested rat MSCs' morphology, cytoskeleton, and osteogenic differentiation on micro/nano-textured topography. We then examined the cells' Wnt pathway and Cdc42 signaling activity. The results show that micro/nano-textured topography enhances MSCs' osteogenic differentiation. In addition, the cells' morphology and cytoskeletal reorganization were dramatically different on smooth surfaces and micropitted/nanotubular topography. Ligands of the canonical Wnt pathway, as well as accumulation of β-catenin in the nucleus, were up-regulated by micro/nano-textured topography. Cdc42 protein expression was markedly increased under these conditions; conversely, Cdc42 silencing significantly depressed the enhancement of MSCs osteogenic differentiation by micro/nano-textured topography. Moreover, Cdc42si attenuated p-GSK3β activation and resulted in β-catenin cytoplasmic degradation on the micro/nano-textured topography. Our results indicate that Cdc42 is a key modulator of rat MSCs morphology and cytoskeletal reorganization, and that crosstalk between Cdc42 and Wnt/β-catenin signaling though GSK3β regulates MSCs osteogenic differentiation by implant topographical cues.
Topographical modification at micro- and nanoscale is widely applied to enhance the tissue integration properties of biomaterials. However, the response of bone mesenchymal stem cells (MSCs) to the micro/nano-textured topography and the underlying mechanisms are not well understood. This study shows that the micropitted/nanotubular hierarchical topography produced by etching and anodic oxidation treatment drives fusiform cell morphology, cytoskeletal reorganization as well as better MSCs osteogenic differentiation. The cross-talk between Cdc42 pathway and Wnt/β-catenin pathway though GSK3β modulates the osteoinductive effect of the micro/nano-textured topography on MSCs. This finding sheds light on a novel mechanism involved in micro/nano-textured surface-mediated MSCs osteogenic differentiation and is a major step in the development of new surface modifications aiming to accelerate and enhance the process of osseointegration.
微米/纳米纹理化的钛表面形貌可促进成骨细胞分化及Wnt/β-连环蛋白信号通路。然而,大鼠骨髓间充质干细胞(MSCs)对微米/纳米纹理化形貌的反应及其作用的潜在机制尚不清楚。我们推测,Rho GTPases家族的关键成员细胞分裂周期42蛋白(Cdc42)可能通过微米/纳米纹理化形貌调节大鼠MSCs的形态和骨生成分化,且Cdc42与Wnt/β-连环蛋白之间的相互作用是其潜在机制。为证实这一推测,我们首先检测了大鼠MSCs在微米/纳米纹理化形貌上的形态、细胞骨架和骨生成分化情况。然后我们检测了细胞的Wnt通路和Cdc42信号活性。结果表明,微米/纳米纹理化形貌增强了MSCs的骨生成分化。此外,在光滑表面和微坑/纳米管形貌上,细胞的形态和细胞骨架重组存在显著差异。经典Wnt通路的配体以及细胞核中β-连环蛋白的积累因微米/纳米纹理化形貌而上调。在这些条件下,Cdc42蛋白表达显著增加;相反,Cdc42沉默显著抑制了微米/纳米纹理化形貌对MSCs骨生成分化的增强作用。此外,Cdc42si减弱了p-GSK3β的激活,并导致微米/纳米纹理化形貌上β-连环蛋白的细胞质降解。我们的结果表明,Cdc42是大鼠MSCs形态和细胞骨架重组的关键调节因子,且Cdc42与Wnt/β-连环蛋白信号通过GSK3β之间的相互作用,通过植入物表面形貌线索调节MSCs的骨生成分化。
微米和纳米尺度的表面形貌修饰被广泛应用于增强生物材料的组织整合特性。然而,骨髓间充质干细胞(MSCs)对微米/纳米纹理化形貌的反应及其潜在机制尚不清楚。本研究表明,通过蚀刻和阳极氧化处理产生的微坑/纳米管分级形貌可驱动梭形细胞形态、细胞骨架重组以及更好的MSCs骨生成分化。Cdc42通路与Wnt/β-连环蛋白通路通过GSK3β之间的相互作用调节了微米/纳米纹理化形貌对MSCs的骨诱导作用。这一发现揭示了一种参与微米/纳米纹理化表面介导的MSCs骨生成分化的新机制,是旨在加速和增强骨整合过程的新型表面修饰开发中的重要一步。