Research Center for Pharmaceutical Nanotechnology, Biomedicine Institute, Tabriz University of Medical Sciences, Tabriz, Iran.
Research Center for Pharmaceutical Nanotechnology, Biomedicine Institute, Tabriz University of Medical Sciences, Tabriz, Iran.
Int J Biol Macromol. 2024 Jan;256(Pt 2):128335. doi: 10.1016/j.ijbiomac.2023.128335. Epub 2023 Nov 23.
In this study, we developed a biocompatible composite hydrogel that incorporates microspheres. This was achieved using a Schiff base reaction, which combines the amino and aldehyde groups present in gelatin (Gel) and oxidized alginate (OAlg). We suggest this hydrogel as a promising scaffold for bone tissue regeneration. To further boost its osteogenic capabilities and mechanical resilience, we synthesized curcumin (Cur)-loaded chitosan microspheres (CMs) and integrated them into the Gel-OAlg matrix. This formed a robust composite gel framework. We conducted comprehensive evaluations of various properties, including gelation time, morphology, compressive strength, rheological behavior, texture, swelling rate, in vitro degradation, and release patterns. A remarkable observation was that the inclusion of 30 mg/mL Cur-CMs significantly enhanced the hydrogel's mechanical and bioactive features. Over three weeks, the Gel-OAlg/Cur-CMs (30) composite showed a cumulative curcumin release of 35.57%. This was notably lower than that observed in standalone CMs and Gel-OAlg hydrogels. Additionally, the Gel-OAlg/Cur-CMs (30) hydrogel presented a reduced swelling rate and weight loss relative to hydrogels devoid of Cur-CMs. On the cellular front, the Gel-OAlg/Cur-CMs (30) hydrogel showcased superior biocompatibility. It also displayed increased calcium deposition, alkaline phosphatase (ALP) activity, and elevated osteogenic gene expression in human bone marrow mesenchymal stem cells (hBMSCs). These results solidify its potential as a scaffold for bone tissue regeneration.
在这项研究中,我们开发了一种包含微球的生物相容性复合水凝胶。这是通过席夫碱反应实现的,该反应结合了明胶(Gel)和氧化海藻酸钠(OAlg)中存在的氨基和醛基。我们建议将这种水凝胶作为一种有前途的骨组织再生支架。为了进一步提高其成骨能力和机械弹性,我们合成了负载姜黄素(Cur)的壳聚糖微球(CMs)并将其整合到 Gel-OAlg 基质中。这形成了一个坚固的复合凝胶框架。我们对各种性质进行了全面评估,包括凝胶时间、形态、压缩强度、流变行为、质地、溶胀率、体外降解和释放模式。一个显著的观察结果是,包含 30 mg/mL Cur-CMs 可显著增强水凝胶的机械和生物活性特性。在三周内,Gel-OAlg/Cur-CMs(30)复合材料的累积姜黄素释放量为 35.57%。这明显低于单独的 CMs 和 Gel-OAlg 水凝胶的观察结果。此外,与不含 Cur-CMs 的水凝胶相比,Gel-OAlg/Cur-CMs(30)水凝胶的溶胀率和失重率降低。在细胞方面,Gel-OAlg/Cur-CMs(30)水凝胶具有出色的生物相容性。它还显示出在人骨髓间充质干细胞(hBMSCs)中增加的钙沉积、碱性磷酸酶(ALP)活性和升高的成骨基因表达。这些结果证实了它作为骨组织再生支架的潜力。