干细胞膜包裹的粗糙介孔二氧化硅纳米颗粒通过地塞米松输送增强成骨分化和骨修复。

Peng Chen, Jiawei Lu, Yi Liu, Hongwei Wang, Yaguang Han, Xiaoji Luo
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引用次数: 0

摘要

介孔二氧化硅纳米颗粒(MSNs)已被证明可以促进成骨细胞的分化;然而,其表面粗糙度对成骨的影响尚不清楚,再加上靶向能力不足和治疗效果不佳,提出了主要挑战。在此,我们开发了一个仿生纳米平台CM@DEX-R-MSN,通过将地塞米松(DEX)负载的粗糙MSN (R-MSN)涂覆在间充质干细胞(MSC)膜(CM)上,以增强MSCs的成骨分化,从而改善骨再生。CM@DEX-R-MSN保留了粗糙的表面,水动力直径为164.35±5.81 nm, Zeta电位为-11.98±1.37 mV,具有良好的MSC膜完整性,体外和体内的细胞毒性都可以忽略不计。与未涂覆的MSN相比,CM@DEX-R-MSN表现出显著增强的MSC内化。它们在体外显著上调碱性磷酸酶活性、成骨标志物和矿化结节形成。在兔骨缺损模型中,CM@DEX-R-MSN恢复了骨体积,延长了缺损部位的保留时间。更重要的是,我们通过实验观察到,R-MSN和cm包被的纳米颗粒分别比传统的msn和未包被的纳米颗粒表现出更好的成骨分化效果,其中CM@DEX-R-MSN显示出最有效的效果。我们的研究结果表明,CM@DEX-R-MSN协同整合了MSC膜介导的同型靶向、R-MSN纳米形貌和dex驱动的成骨分化,为骨再生提供了一种有希望的靶向治疗策略。其增强的生物相容性、成骨功效和持续的保留强调了其在骨科应用中的转化潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Stem cell membrane-coated rough mesoporous silica nanoparticles for enhanced osteogenic differentiation and bone repair via dexamethasone delivery.

Mesoporous silica nanoparticles (MSNs) have been demonstrated to promote osteoblast differentiation; however, the unclear impact of their surface roughness on osteogenesis, coupled with inadequate targeting capability and suboptimal therapeutic outcomes, presents major challenges. Herein, we developed a biomimetic nanoplatform, CM@DEX-R-MSN, by coating dexamethasone (DEX) loaded-rough MSN (R-MSN) with mesenchymal stem cell (MSC) membranes (CM) to enhance osteogenic differentiation of MSCs for improved bone regeneration. The CM@DEX-R-MSN showed retained rough surfaces with a hydrodynamic diameter of 164.35 ± 5.81 nm, a Zeta potential of -11.98 ± 1.37 mV with good MSC membrane integrity, negligible cytotoxicity both in vitro and in vivo. CM@DEX-R-MSN exhibited significantly enhanced MSC internalization compared to uncoated MSN. They markedly upregulated alkaline phosphatase activity, osteogenic markers, and mineralization nodule formation in vitro. In bone defect model established in rabbits, CM@DEX-R-MSN restored bone volume and prolonged retention at the defect site. More importantly, we experimentally observed that both R-MSN and CM-coated nanoparticles exhibited superior osteogenic differentiation effects compared to conventional MSNs and non-coated counterparts, respectively-with CM@DEX-R-MSN demonstrating the most potent efficacy. Our results demonstrated that CM@DEX-R-MSN synergistically integrates MSC membrane-mediated homotypic targeting, nanotopography of R-MSN, and DEX-driven osteogenic differentiation, offering a promising targeted therapeutic strategy for bone regeneration. Their enhanced biocompatibility, osteogenic efficacy, and sustained retention underscore its translational potential for orthopedic applications.

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