College of Chemistry and Chemical Engineering, Yantai University, Yantai, 264005, Shandong Province, China.
College of Chemistry and Chemical Engineering, Yantai University, Yantai, 264005, Shandong Province, China.
Acta Biomater. 2024 Aug;184:186-200. doi: 10.1016/j.actbio.2024.06.030. Epub 2024 Jun 25.
Integrated wound care through sequentially promoting hemostasis, sealing, and healing holds great promise in clinical practice. However, it remains challenging for regular bioadhesives to achieve integrated care of dynamic wounds due to the difficulties in adapting to dynamic mechanical and wet wound environments. Herein, we reported a type of dehydrated, physical double crosslinked microgels (DPDMs) which were capable of in situ forming highly stretchable, compressible and tissue-adhesive hydrogels for integrated care of dynamic wounds. The DPDMs were designed by the rational integration of the reversible crosslinks and double crosslinks into micronized gels. The reversible physical crosslinks enabled the DPDMs to integrate together, and the double crosslinked characteristics further strengthen the formed macroscopical networks (DPDM-Gels). We demonstrated that the DPDM-Gels simultaneously possess outstanding tensile (∼940 kJ/m) and compressive (∼270 kJ/m) toughness, commercial bioadhesives-comparable tissue-adhesive strength, together with stable performance under hundreds of deformations. In vivo results further revealed that the DPDM-Gels could effectively stop bleeding in various bleeding models, even in an actual dynamic environment, and enable the integrated care of dynamic skin wounds. On the basis of the remarkable mechanical and appropriate adhesive properties, together with impressive integrated care capacities, the DPDM-Gels may provide a new approach for the smart care of dynamic wounds. STATEMENT OF SIGNIFICANCE: Integrated care of dynamic wounds holds great significance in clinical practice. However, the dynamic and wet wound environments pose great challenges for existing hydrogels to achieve it. This work developed robust adhesive hydrogels for integrated care of dynamic wounds by designing dehydrated, physical double crosslinked microgels (DPDMs). The reversible and double crosslinks enabled DPDMs to integrate into macroscopic hydrogels with high mechanical properties, appropriate adhesive strength and stable performance under hundreds of external deformations. Upon application at the injury site, DPDM-Gels efficiently stopped bleeding, even in an actual dynamic environment and showed effectiveness in integrated care of dynamic wounds. With the fascinating properties, DPDMs may become an effective tool for smart wound care.
通过依次促进止血、密封和愈合来实现综合伤口护理在临床实践中具有很大的前景。然而,由于常规生物黏合剂难以适应动态机械和湿性伤口环境,因此很难实现对动态伤口的综合护理。在此,我们报道了一种脱水的物理双重交联微凝胶(DPDMs),它能够原位形成高拉伸、高压缩和组织黏附性水凝胶,实现对动态伤口的综合护理。DPDMs 通过将可逆交联和双重交联合理地整合到微米化凝胶中设计而成。可逆的物理交联使 DPDMs 能够集成在一起,而双重交联的特性进一步增强了形成的宏观网络(DPDM-Gels)。我们证明了 DPDM-Gels 同时具有出色的拉伸(940 kJ/m)和压缩(270 kJ/m)韧性、与商业生物黏合剂相当的组织黏附强度,以及在数百次变形下的稳定性能。体内结果进一步表明,DPDM-Gels 可以有效地在各种出血模型中止血,甚至在实际的动态环境中,实现对动态皮肤伤口的综合护理。基于显著的机械性能和适当的黏附性能,以及令人印象深刻的综合护理能力,DPDM-Gels 可能为动态伤口的智能护理提供一种新方法。