Department of Orthopedics , Shanghai Tenth People's Hospital Affiliated to Tongji University , 301 Yanchang Road , Shanghai 200072 , China.
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Chemistry, Chemical Engineering and Biotechnology , Donghua University , 2999 North Renmin Road , Shanghai 201620 , China.
ACS Appl Mater Interfaces. 2020 Jan 15;12(2):2023-2038. doi: 10.1021/acsami.9b17180. Epub 2020 Jan 2.
In the management of accelerating wound healing, moist environments play an important role. Compared with other scaffolds of various forms, hydrogels can maintain a moist environment in the wound area. They are cross-linked hydrophilic polymeric networks that resemble natural soft tissues and extracellular matrices. Among them, injectable hydrogels have attracted great attention in wound repair, as they can be injected into irregular-shaped skin defects and formed in situ to shape the contour of different dimensions. The excellent compliance makes hydrogels easy to adapt to the wound under different conditions of skin movement. Here, we oxidized hydroxyethyl starch (O-HES) and modified carboxymethyl chitosan (M-CMCS) to fabricate an in situ forming hydrogel with excellent self-recoverable extensibility-compressibility, biocompatibility, biodegradability, and transparency for accelerating wound healing. The oxidation degree of O-HES was 74%. The amino modification degree of M-CMCS was 63%. M-CMCS/O-HES hydrogels were formed through the Schiff base reaction. The physicochemical properties of M-CMCS/O-HES hydrogels with various ratios were investigated, and M-CMCS/O-HES hydrogel with a volume ratio of 5:5 exhibited appropriate gelation time, notable water-retaining capacity, self-recoverable conformal deformation, suitable biodegradability, and good biocompatibility for wound-healing application. Then, skin wound-healing experimental studies were carried out in Sprague-Dawley rats with full-thickness skin defects. Significant outcomes were achieved in the M-CMCS/O-HES hydrogel-treated group including higher wound closure percentage, more granulation tissue formation, faster epithelialization, and decreased collagen deposition. These findings demonstrate that using the obtained M-CMCS/O-HES hydrogels is a promising therapeutic strategy for wound healing.
在促进伤口愈合的管理中,湿润环境发挥着重要作用。与各种形式的其他支架相比,水凝胶可以在伤口区域保持湿润环境。它们是交联的亲水性聚合物网络,类似于天然软组织和细胞外基质。其中,可注射水凝胶在伤口修复中引起了极大的关注,因为它们可以注射到形状不规则的皮肤缺损部位,并在原位形成以塑造不同尺寸的轮廓。优异的顺应性使水凝胶易于适应皮肤在不同运动条件下的状态。在这里,我们氧化羟乙基淀粉(O-HES)并修饰羧甲基壳聚糖(M-CMCS),以制造一种具有出色的自修复可拉伸性-可压缩性、生物相容性、生物降解性和透明度的原位形成水凝胶,用于加速伤口愈合。O-HES 的氧化程度为 74%。M-CMCS 的氨基修饰程度为 63%。M-CMCS/O-HES 水凝胶通过席夫碱反应形成。研究了具有不同比例的 M-CMCS/O-HES 水凝胶的物理化学性质,并且体积比为 5:5 的 M-CMCS/O-HES 水凝胶具有适当的胶凝时间、显著的保水能力、自修复的顺应性变形、合适的生物降解性和良好的伤口愈合应用的生物相容性。然后,在全层皮肤缺损的 Sprague-Dawley 大鼠中进行了皮肤伤口愈合实验研究。在 M-CMCS/O-HES 水凝胶处理组中取得了显著的结果,包括更高的伤口闭合百分比、更多的肉芽组织形成、更快的上皮化和减少的胶原蛋白沉积。这些发现表明,使用获得的 M-CMCS/O-HES 水凝胶是一种有前途的伤口愈合治疗策略。