R + D Pharma Group (GI-1645), Department of Pharmacology, Pharmacy and Pharmaceutical Technology, School of Pharmacy, Universidade de Santiago de Compostela, 15782 Santiago de Compostela, Spain.
Department of Chemical Engineering and Pharmaceutical Technology, School of Sciences, Universidad de La Laguna (ULL), Campus de Anchieta, 38200 La Laguna (Tenerife), Spain.
Mar Drugs. 2019 Aug 15;17(8):471. doi: 10.3390/md17080471.
Bioceramic scaffolds are crucial in tissue engineering for bone regeneration. They usually provide hierarchical porosity, bioactivity, and mechanical support supplying osteoconductive properties and allowing for 3D cell culture. In the case of age-related diseases such as osteoarthritis and osteoporosis, or other bone alterations as alveolar bone resorption or spinal fractures, functional tissue recovery usually requires the use of grafts. These bone grafts or bone void fillers are usually based on porous calcium phosphate grains which, once disposed into the bone defect, act as scaffolds by incorporating, to their own porosity, the intergranular one. Despite their routine use in traumatology and dental applications, specific graft requirements such as osteoinductivity or balanced dissolution rate are still not completely fulfilled. Marine origin bioceramics research opens the possibility to find new sources of bone grafts given the wide diversity of marine materials still largely unexplored. The interest in this field has also been urged by the limitations of synthetic or mammalian-derived grafts already in use and broadly investigated. The present review covers the current stage of major marine origin bioceramic grafts for bone tissue regeneration and their promising properties. Both products already available on the market and those in preclinical phases are included. To understand their clear contribution to the field, the main clinical requirements and the current available biological-derived ceramic grafts with their advantages and limitations have been collected.
生物陶瓷支架在骨再生组织工程中至关重要。它们通常提供分级孔隙率、生物活性和机械支撑,提供骨传导特性,并允许进行 3D 细胞培养。在与年龄相关的疾病(如骨关节炎和骨质疏松症)或其他骨改变(如牙槽骨吸收或脊柱骨折)的情况下,功能组织的恢复通常需要使用移植物。这些骨移植物或骨空洞填充剂通常基于多孔磷酸钙颗粒,一旦将其放置在骨缺陷中,就会通过自身的孔隙率来容纳颗粒间的孔隙率,从而充当支架。尽管它们在创伤学和牙科应用中常规使用,但特定的移植物要求,如成骨诱导性或平衡溶解率,仍然没有完全满足。海洋来源的生物陶瓷研究为寻找新的骨移植物来源提供了可能性,因为海洋材料的多样性仍然在很大程度上未被探索。由于已经在使用和广泛研究的合成或哺乳动物来源的移植物的局限性,人们对该领域的兴趣也有所增加。本综述涵盖了用于骨组织再生的主要海洋来源生物陶瓷移植物的当前阶段及其有前途的特性。包括已经在市场上销售的产品和处于临床前阶段的产品。为了了解它们对该领域的明确贡献,收集了主要的临床要求以及当前可用的生物衍生陶瓷移植物及其优点和局限性。