Institute of Fundamental Technological Research, Polish Academy of Sciences, Pawinskiego 5b St., 02-106 Warsaw, Poland.
J Neural Eng. 2018 Oct;15(5):051002. doi: 10.1088/1741-2552/aacbab. Epub 2018 Jun 11.
Injuries of the central nervous system (CNS) can cause serious and permanent disability due to limited regeneration ability of the CNS. Presently available therapies are focused on lesion spreading inhibition rather than on tissue regeneration. Recent investigations in the field of neural tissue engineering indicate extremely promising properties of novel injectable and non-injectable hydrogels which are tailored to serve as biodegradable scaffolds for CNS regeneration.
This review discusses the state-of-the-art and barriers in application of novel polymer-based hydrogels without and with nanoparticles for CNS regeneration.
Pure hydrogels suffer from lack of similarities to natural neural tissue. Many of the biological studies indicated nano-additives in hydrogels may improve their topography, mechanical properties, electroconductivity and biological functions. The most promising biomaterials which meet the requirements of CNS tissue engineering seem to be injectable thermosensitive hydrogels loaded with specific micro-and nanoparticles.
We highlight injectable hydrogels with various micro-and nanoparticles, because of novelty and attractiveness of this type of materials for CNS regeneration and future development perspectives.
由于中枢神经系统(CNS)的再生能力有限,CNS 损伤会导致严重和永久性残疾。目前可用的治疗方法侧重于抑制损伤扩散,而不是组织再生。神经组织工程领域的最新研究表明,新型可注射和不可注射水凝胶具有非常有前景的特性,这些水凝胶被专门设计用作 CNS 再生的可生物降解支架。
本文综述了新型基于聚合物的水凝胶在 CNS 再生中的应用现状和障碍,包括有无纳米颗粒的应用。
纯水凝胶缺乏与天然神经组织相似的特性。许多生物学研究表明,水凝胶中的纳米添加剂可以改善其形貌、机械性能、导电性和生物功能。满足 CNS 组织工程要求的最有前途的生物材料似乎是负载特定微纳米颗粒的可注射温敏水凝胶。
我们强调了具有各种微纳米颗粒的可注射水凝胶,因为这种类型的材料在 CNS 再生方面具有新颖性和吸引力,以及未来的发展前景。