Trifan Andreea, Liciu Eduard, Nedelcu Andrei-Silviu, Dragomir Mihai, Cristea Doru-Daniel, Mateescu Ciprian-Ștefan, Nițulescu David-Andrei, Cîrstea Cătălina-Ana-Maria, Banciu Adela, Toader Gabriela, Diacon Aurel, Busuioc Cristina
3D Printing Laboratory, Center of Innovation and e-Health, Carol Davila University of Medicine and Pharmacy, 020021 Bucharest, Romania.
Faculty of Chemical Engineering and Biotechnologies, National University of Science and Technology Politehnica Bucharest, 011061 Bucharest, Romania.
Gels. 2025 Aug 20;11(8):665. doi: 10.3390/gels11080665.
Bone defects remain a significant clinical challenge, creating a severe need for advanced biomaterials for tissue regeneration. This study addresses this issue by developing 3D-printed composite hydrogels containing alginate, gelatine, and resorbable calcium phosphates (monetite and brushite) for bone tissue engineering. The scaffolds were fabricated using extrusion-based 3D printing and evaluated for their morphology, porosity, mechanical strength, swelling, degradation, and in vitro mineralization, while their cytocompatibility was assessed using LIVE/DEAD cell viability assays. The key findings demonstrate that calcium phosphate incorporation enhanced the mechanical stability by 15-25% compared to the controls, and mineral deposition increased significantly in the composite scaffolds. The developed hydrogels are bioactive and represent promising, customizable scaffolds for bone regeneration. These results support their further investigation as viable alternatives to traditional bone grafts for clinical bone tissue engineering applications.
骨缺损仍然是一个重大的临床挑战,因此迫切需要先进的生物材料用于组织再生。本研究通过开发用于骨组织工程的含藻酸盐、明胶和可吸收磷酸钙(一水磷酸钙和透钙磷石)的3D打印复合水凝胶来解决这一问题。使用基于挤出的3D打印制造支架,并对其形态、孔隙率、机械强度、溶胀、降解和体外矿化进行评估,同时使用活/死细胞活力测定法评估其细胞相容性。关键研究结果表明,与对照相比,磷酸钙的掺入使机械稳定性提高了15-25%,并且复合支架中的矿物质沉积显著增加。所开发的水凝胶具有生物活性,是用于骨再生的有前景的、可定制的支架。这些结果支持将其作为临床骨组织工程应用中传统骨移植的可行替代品进行进一步研究。