Dallaev Rashid
Department of Physics, Faculty of Electrical Engineering and Communication, Brno University of Technology, Technická 2848/8, 61600 Brno, Czech Republic.
Polymers (Basel). 2025 Jul 18;17(14):1976. doi: 10.3390/polym17141976.
Recent advancements in polymer science have catalyzed a transformative shift in biomedical engineering, particularly through the development of biodegradable and smart polymers. This review explores the evolution, functionality, and application of these materials in areas such as tissue scaffolding, cardiovascular occluders, and controlled drug delivery systems. Emphasis is placed on shape-memory polymers (SMPs), conductive polymers, and polymer-based composites that combine tunable degradation, mechanical strength, and bioactivity. The synergy between natural and synthetic polymers-augmented by nanotechnology and additive manufacturing-enables the creation of intelligent scaffolds and implantable devices tailored for specific clinical needs. Key fabrication methods, including electrospinning, freeze-drying, and emulsion-based techniques, are discussed in relation to pore structure and functionalization strategies. Finally, the review highlights emerging trends, including ionic doping, 3D printing, and multifunctional nanocarriers, outlining their roles in the future of regenerative medicine and personalized therapeutics.
聚合物科学的最新进展推动了生物医学工程的变革性转变,特别是通过可生物降解和智能聚合物的发展。本综述探讨了这些材料在组织支架、心血管封堵器和可控药物递送系统等领域的演变、功能和应用。重点关注形状记忆聚合物(SMP)、导电聚合物以及结合了可调降解性、机械强度和生物活性的聚合物基复合材料。天然聚合物与合成聚合物之间的协同作用——通过纳米技术和增材制造得到增强——能够制造出针对特定临床需求定制的智能支架和可植入装置。讨论了包括静电纺丝、冷冻干燥和乳液基技术在内的关键制造方法与孔结构和功能化策略的关系。最后,本综述强调了新兴趋势,包括离子掺杂、3D打印和多功能纳米载体,概述了它们在再生医学和个性化治疗未来发展中的作用。