Department of Biotechnology, School of Bioengineering, College of Engineering and Technology, SRM Institute of Science and Technology, Kattankulathur 603203, Tamil Nadu, India.
Department of Biotechnology, School of Bioengineering, College of Engineering and Technology, SRM Institute of Science and Technology, Kattankulathur 603203, Tamil Nadu, India..
Int J Biol Macromol. 2023 Dec 31;253(Pt 7):127492. doi: 10.1016/j.ijbiomac.2023.127492. Epub 2023 Oct 17.
Critical-sized bone defects resulting from severe trauma and open fractures cannot spontaneously heal and require surgical intervention. Limitations of traditional bone grafting include immune rejection and demand-over-supply issues leading to the development of novel tissue-engineered scaffolds. Nuciferine (NF), a plant-derived alkaloid, has excellent therapeutic properties, but its osteogenic potential is yet to be reported. Furthermore, the bioavailability of NF is obstructed due to its hydrophobicity, requiring an efficient drug delivery system, such as chitosan (CS) hydrogel. We designed and fabricated polylactic acid (PLA) scaffolds via 3D printing and integrated them with NF-containing CS hydrogel to obtain the porous biocomposite scaffolds (PLA/CS-NF). The fabricated scaffolds were subjected to in vitro physicochemical characterization, cytotoxicity assays, and osteogenic evaluation studies. Scanning electron microscopic studies revealed uniform pore size distribution on PLA/CS-NF scaffolds. An in vitro drug release study showed a sustained and prolonged release of NF. The cyto-friendly nature of NF in PLA/CS-NF scaffolds towards mouse mesenchymal stem cells (mMSCs) was observed. Also, cellular and molecular level studies signified the osteogenic potential of NF in PLA/CS-NF scaffolds on mMSCs. These results indicate that the PLA/CS-NF scaffolds could promote new bone formation and have potential applications in bone tissue engineering.
严重创伤和开放性骨折导致的临界尺寸骨缺损不能自发愈合,需要手术干预。传统骨移植的局限性包括免疫排斥和供过于求问题,导致新型组织工程支架的发展。Nuciferine (NF),一种植物衍生的生物碱,具有极好的治疗特性,但它的成骨潜力尚未被报道。此外,由于 NF 的疏水性,其生物利用度受到阻碍,需要有效的药物输送系统,如壳聚糖 (CS) 水凝胶。我们通过 3D 打印设计并制造了聚乳酸 (PLA) 支架,并将其与含有 NF 的 CS 水凝胶集成,以获得多孔生物复合材料支架 (PLA/CS-NF)。对制备的支架进行了体外理化特性表征、细胞毒性试验和成骨评价研究。扫描电子显微镜研究显示 PLA/CS-NF 支架上具有均匀的孔径分布。体外药物释放研究表明 NF 具有持续和延长的释放。观察到 NF 在 PLA/CS-NF 支架中对小鼠间充质干细胞 (mMSCs) 的细胞友好性。此外,细胞和分子水平的研究表明 NF 在 PLA/CS-NF 支架上对 mMSCs 具有成骨潜力。这些结果表明 PLA/CS-NF 支架可以促进新骨形成,并有可能应用于骨组织工程。