Fu Danlan, Huang Junfei, Wu Xiaoqi, Li Yue, Zhang Yufan, Chen Lu, Liu Zhen, He Ye, Zhou Yi, Yang Lunan, Hu Zhiqi, Miao Yong
Department of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical University, Guangzhou, Guangdong 510515, China.
Department of Urology and Andrology, Ren Ji Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai 200001, China.
Acta Biomater. 2024 Jul 15;183:173-190. doi: 10.1016/j.actbio.2024.05.036. Epub 2024 May 29.
The healing of a wound under tension (hereafter, "tension wound") often coincides with the development of hypertrophic scars in clinical settings. Currently, compress bandages offer a potential alternative for the healing of tension wounds; however, their application in surgery is limited due to their prefabricated patch form. To overcome this, a tension-shielding hydrogel system was designed using photocurable catechol-grafted hyaluronic acid and tannic-acid silver nanoparticles (hereafter, "HTA system"). The hydrogel exhibited tension-shielding capacity, reducing wound tension via shape-fixation and ultimately reducing scar formation. The HTA hydrogel exhibited superior photothermal antibacterial efficacy, self-healing properties, and effective dissipation of energy, thereby promoting tissue regeneration. The hydrogel significantly inhibited the mechanotransduction pathway, thus preventing Engrailed-1 activation and reducing the fibrotic response. The HTA hydrogel system, therefore, provides a treatment strategy for tension wounds, burn wounds and other wounds that are prone to form hypertrophic scars via creating a tension-free local environment. STATEMENT OF SIGNIFICANCE: In our study, we presented a wound-dressing hydrogel system (HTA) that exhibit shape-fixing capacity in tension wound model. Here, we designed and modified a tension regulator, applied it to mice, and furthermore, established a tension wound model in mice with adjustable tension. Outcomes showed that the HTA hydrogel system can effectively form a shape-fixed environment on tension wounds and dynamic wounds, thus promoting scarless healing. Additionally, HTA performs injectability, rapid crosslinking, biocompatibility, wet adhesion, hemostasis and photothermal antibacterial properties. We believe this research has various potential clinical applications, including scarless-healing in tension wounds, treatment of acute bleeding, treatment of infected wounds, and even internal organ repair.
张力伤口(以下简称“张力性伤口”)的愈合在临床环境中常常与增生性瘢痕的形成同时发生。目前,加压绷带为张力性伤口的愈合提供了一种潜在的替代方法;然而,由于其预制贴片形式,它们在外科手术中的应用受到限制。为了克服这一问题,使用光固化儿茶酚接枝透明质酸和单宁酸银纳米颗粒(以下简称“HTA系统”)设计了一种张力屏蔽水凝胶系统。该水凝胶具有张力屏蔽能力,通过形状固定降低伤口张力,最终减少瘢痕形成。HTA水凝胶具有优异的光热抗菌功效、自愈性能和有效的能量耗散,从而促进组织再生。该水凝胶显著抑制机械转导途径,从而防止 engrailed-1激活并减少纤维化反应。因此,HTA水凝胶系统通过创造无张力的局部环境,为张力性伤口、烧伤伤口和其他容易形成增生性瘢痕的伤口提供了一种治疗策略。意义声明:在我们的研究中,我们提出了一种伤口敷料水凝胶系统(HTA),其在张力性伤口模型中表现出形状固定能力。在这里,我们设计并改进了一种张力调节器,将其应用于小鼠,并进一步在小鼠中建立了张力可调节的张力性伤口模型。结果表明,HTA水凝胶系统可以在张力性伤口和动态伤口上有效地形成形状固定的环境,从而促进无瘢痕愈合。此外,HTA具有可注射性、快速交联、生物相容性、湿粘附性、止血和光热抗菌性能。我们相信这项研究具有多种潜在的临床应用,包括张力性伤口的无瘢痕愈合、急性出血的治疗、感染伤口的治疗,甚至内部器官修复。