Atila Deniz, Kumaravel Vignesh
International Centre for Research on Innovative Biobased Materials (ICRI-BioM) - International Research Agenda, Lodz University of Technology, Żeromskiego 116, 90-924, Lodz, Poland.
Biomater Sci. 2023 Oct 10;11(20):6711-6747. doi: 10.1039/d3bm00719g.
Dental tissue infections have been affecting millions of patients globally leading to pain, severe tissue damage, or even tooth loss. Commercial sterilizers may not be adequate to prevent frequent dental infections. Antimicrobial hydrogels have been introduced as an effective therapeutic strategy for endodontics and periodontics since they have the capability of imitating the native extracellular matrix of soft tissues. Hydrogel networks are considered excellent drug delivery platforms due to their high-water retention capacity. In this regard, drugs or nanoparticles can be incorporated into the hydrogels to endow antimicrobial properties as well as to improve their regenerative potential, once biocompatibility criteria are met avoiding high dosages. Herein, novel antimicrobial hydrogel formulations were discussed for the first time in the scope of endodontics and periodontics. Such hydrogels seem outstanding candidates especially when designed not only as simple volume fillers but also as smart biomaterials with condition-specific adaptability within the dynamic microenvironment of the defect site. Multifunctional hydrogels play a pivotal role against infections, inflammation, oxidative stress, along the way of dental regeneration. Modern techniques (, 3D and 4D-printing) hold promise to develop the next generation of antimicrobial hydrogels together with their limitations such as infeasibility of implantation.
牙齿组织感染一直影响着全球数百万患者,导致疼痛、严重的组织损伤甚至牙齿脱落。商业消毒器可能不足以预防频繁的牙齿感染。抗菌水凝胶已被引入作为牙髓病学和牙周病学的一种有效治疗策略,因为它们有能力模仿软组织的天然细胞外基质。水凝胶网络因其高保水能力而被认为是优秀的药物递送平台。在这方面,一旦满足生物相容性标准并避免高剂量,药物或纳米颗粒可以被纳入水凝胶中,以赋予其抗菌性能并提高其再生潜力。在此,首次在牙髓病学和牙周病学范围内讨论了新型抗菌水凝胶制剂。这种水凝胶似乎是优秀的候选者,特别是当它们不仅被设计为简单的体积填充剂,而且被设计为在缺损部位的动态微环境中具有特定条件适应性的智能生物材料时。多功能水凝胶在牙齿再生过程中对感染、炎症、氧化应激起着关键作用。现代技术(如3D和4D打印)有望开发下一代抗菌水凝胶,但也存在诸如植入不可行等局限性。