School of Pharmacy & Biomolecular Sciences, Royal College of Surgeons (RCSI), Dublin D02YN77, Ireland.
Tissue Engineering Research Group, Department of Anatomy & Regenerative Medicine, Royal College of Surgeons (RCSI), Dublin D02YN77, Ireland.
J Mater Chem B. 2024 Sep 25;12(37):9268-9282. doi: 10.1039/d4tb00984c.
Stem cells are an essential consideration in the fields of tissue engineering and regenerative medicine. Understanding how nanoengineered biomaterials and mesenchymal stem cells (MSCs) interact is crucial for their role in bone regeneration. Taking advantage of the structural stability of selenium nanoparticles (Se-NPs) and biological properties of natural polymers, Se-NPs-functionalized, injectable, thermoresponsive hydrogels with an interconnected molecular structure were prepared to identify their role in the osteogenic differentiation of different types of mesenchymal stem cells. Further, comprehensive characterization of their structural and biological properties was performed. The results showed that the hydrogels undergo a sol to gel transition with the help of β-glycerophosphate, while functionalization with Se-NPs significantly enhances their biological response through stabilizing their polymeric structure by forming Se-O covalent bonds. Further results suggest that Se-NPs enhance the differentiation of MSCs toward osteogenic lineage in both the 2D as well as 3D. We demonstrated that the Se-NPs-functionalized hydrogels could enhance the differentiation of osteoporotic bone-derived MSCs. We also focused on specific cell surface marker expression (CD105, CD90, CD73, CD45, CD34) based on the exposure of healthy rats' bone marrow-derived stem cells (BMSCs) to the Se-NP-functionalized hydrogels. This study provides essential evidence for pre-clinical/clinical applications, highlighting the potential of the nanoengineered biocompatible elastic hydrogels for bone regeneration in diseased bone.
干细胞是组织工程和再生医学领域的重要考虑因素。了解纳米工程生物材料和间充质干细胞 (MSCs) 如何相互作用对于它们在骨再生中的作用至关重要。利用硒纳米粒子 (Se-NPs) 的结构稳定性和天然聚合物的生物特性,制备了具有互穿分子结构的 Se-NPs 功能化、可注射、温度响应性水凝胶,以确定它们在不同类型间充质干细胞成骨分化中的作用。此外,还对其结构和生物学特性进行了全面表征。结果表明,水凝胶在β-甘油磷酸的帮助下发生溶胶-凝胶转变,而 Se-NPs 的功能化通过形成 Se-O 共价键稳定其聚合物结构,显著增强了其生物响应。进一步的结果表明,Se-NPs 增强了 MSC 在 2D 和 3D 两种状态下向成骨谱系的分化。我们证明了 Se-NPs 功能化的水凝胶可以增强骨质疏松症骨源性 MSC 的分化。我们还专注于特定的细胞表面标志物表达(CD105、CD90、CD73、CD45、CD34),基于健康大鼠骨髓来源干细胞(BMSCs)暴露于 Se-NP 功能化水凝胶。这项研究为临床前/临床应用提供了重要证据,突出了纳米工程生物相容性弹性水凝胶在疾病骨骼中骨再生的潜力。