Słota Dagmara, Piętak Karina, Jampilek Josef, Sobczak-Kupiec Agnieszka
Department of Materials Science, Faculty of Materials Engineering and Physics, Cracow University of Technology, 37 Jana Pawła II Av., 31-864 Krakow, Poland.
Department of Analytical Chemistry, Faculty of Natural Sciences, Comenius University, Ilkovicova 6, 842 15 Bratislava, Slovakia.
Materials (Basel). 2023 Mar 10;16(6):2235. doi: 10.3390/ma16062235.
Conventional intake of drugs and active substances is most often based on oral intake of an appropriate dose to achieve the desired effect in the affected area or source of pain. In this case, controlling their distribution in the body is difficult, as the substance also reaches other tissues. This phenomenon results in the occurrence of side effects and the need to increase the concentration of the therapeutic substance to ensure it has the desired effect. The scientific field of tissue engineering proposes a solution to this problem, which creates the possibility of designing intelligent systems for delivering active substances precisely to the site of disease conversion. The following review discusses significant current research strategies as well as examples of polymeric and composite carriers for protein and non-protein biomolecules designed for bone tissue regeneration.
传统的药物和活性物质摄入方式大多基于口服适当剂量,以在受影响区域或疼痛源处达到预期效果。在这种情况下,很难控制它们在体内的分布,因为该物质也会到达其他组织。这种现象导致了副作用的出现,以及需要提高治疗物质的浓度以确保其具有预期效果。组织工程科学领域提出了一个解决这个问题的方案,即创造了设计智能系统的可能性,以便将活性物质精确地输送到疾病转化部位。以下综述讨论了当前重要的研究策略,以及用于骨组织再生的蛋白质和非蛋白质生物分子的聚合物和复合载体实例。