Department of Orthopaedic Surgery, Zhongshan Hospital, Fudan University, Shanghai, 200032, China.
Department of Orthopaedic Surgery, Shanghai Geriatric Medical Center, Shanghai, 201104, China.
Adv Healthc Mater. 2023 Dec;12(32):e2301724. doi: 10.1002/adhm.202301724. Epub 2023 Oct 15.
The bone matrix has distinct architecture and biochemistry which present a barrier to synthesizing bone-mimetic regenerative scaffolds. To mimic the natural structures and components of bone, biomimetic structural decellularized extracellular matrix (ECM)/regenerated silk fibroin (RSF) scaffolds incorporated with magnetic nanoparticles (MNP) are prepared using a facile synthetic methodology. The ECM/RSF/MNP scaffold is a hierarchically organized and interconnected porous structure with silk fibroin twined on the collagen nanofibers. The scaffold demonstrates saturation magnetization due to the presence of MNP, along with good cytocompatibility. Moreover, the β-sheet crystalline domain of RSF and the chelated MNP could mimic the deposition of hydroxyapatite and enhance compressive modulus of the scaffold by ≈20%. The results indicate that an external static magnetic field (SMF) with a magnetic responsive scaffold effectively promotes cell migration, osteogenic differentiation, neogenesis of endotheliocytes in vitro, and new bone formation in a critical-size femur defect rat model. RNA sequencing reveals that the molecular mechanisms underlying this osteogenic effect involve calsequestrin-2-mediated Ca release from the endoplasmic reticulum to activate Ca /calmodulin/calmodulin-dependent kinase II signaling axis. Collectively, bionic magnetic scaffolds with SMF stimulation provide a potent strategy for bone regeneration through internal structural cues, biochemical composition, and external physical stimulation on intracellular Ca homeostasis.
骨基质具有独特的结构和生物化学特性,这为合成仿生骨再生支架带来了挑战。为了模拟天然骨的结构和成分,采用简便的合成方法制备了仿生结构脱细胞细胞外基质(ECM)/再生丝素蛋白(RSF)支架,并掺入了磁性纳米颗粒(MNP)。ECM/RSF/MNP 支架具有层次化和互联的多孔结构,丝素蛋白缠绕在胶原纳米纤维上。由于 MNP 的存在,支架表现出饱和磁化强度,同时具有良好的细胞相容性。此外,RSF 的β-折叠晶区和螯合的 MNP 可以模拟羟基磷灰石的沉积,并将支架的压缩模量提高约 20%。结果表明,外加静态磁场(SMF)与磁响应支架结合可有效促进细胞迁移、体外成骨分化、内皮细胞新生,并在大鼠股骨临界尺寸缺损模型中促进新骨形成。RNA 测序揭示了这种成骨作用的分子机制涉及钙结合蛋白-2 介导的内质网 Ca2+释放,以激活 Ca2+/钙调蛋白/钙调蛋白依赖性激酶 II 信号通路。总之,具有 SMF 刺激的仿生磁性支架通过内部结构线索、生物化学组成以及对细胞内 Ca2+稳态的外部物理刺激,为骨再生提供了一种有力策略。