A photothermal-enhanced thermoelectric nanosheet incorporated with zwitterionic hydrogels for wound repair and bioelectronics.

Jiamu Xiao, Wei Lu, Ziyi Li, Song Zhang, Xiaolong Zhu, Jiang Yuan, Donglin Gan, Jian Shen, Mingqian Wang
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Abstract

The new generation of smart wound dressings aims to encompass sensory restoration capabilities through multi-stimulation rather than merely focusing on skin rebuilding and repair. Wound dressings integrated with real-time measurement of wound motion can improve healing efficiency considerably by providing crucial guidance during the skin regeneration process. Herein, we report a conductive zwitterionic hydrogel dressing with photothermal and thermoelectric properties prepared using a poly(3,4-ethylenedioxythiophene)-modified polydopamine-functionalized bismuth telluride (PEDOT@PBT) sandwich-like nanosheet-incorporated poly(sulfobetaine methacrylate)/silk fibroin (PEDOT@PBT-PSBMA/SF) semi-interpenetrating polymer network hydrogel, which can accelerate chronic wound healing and monitor motion. With the incorporation of PEDOT@PBT nanosheets, the hydrogel exhibits remarkable photothermal and thermoelectric effects, endowing it with broad-spectrum antibacterial properties against Escherichia coli (E. coli, 99.02 %), Staphylococcus aureus (S. aureus, 99.14 %), and methicillin-resistant Staphylococcus aureus (MRSA, 97.70 %). Additionally, the PEDOT@PBT-PSBMA/SF hydrogel can be employed in bioelectronics because of its good conductivity (0.13 S/m). In-vivo experiments show that the PEDOT@PBT-PSBMA/SF hydrogel actively promotes the regeneration of MRSA-infected wounds through immunomodulation, collagen deposition, and vascularization. Consequently, this study presents a promising strategy for the development of next-generation multifunctional hydrogel dressings with considerable potential for application in chronic skin wound therapy and bioelectronics. STATEMENT OF SIGNIFICANCE: Thermoelectric materials are increasingly being incorporated into hydrogels to enhance tissue regeneration. However, improving the thermoelectric efficiency while effectively harnessing the generated electricity for tissue regeneration remains a significant challenge. This study presents a multifunctional hydrogel dressing that integrates advanced photothermal and thermoelectric properties with real-time motion sensing, offering a breakthrough in chronic wound therapy. The PEDOT@PBT-PSBMA/SF hydrogel demonstrates exceptional antibacterial efficacy against E. coli, S. aureus, and MRSA, along with remarkable conductivity suitable for bioelectronic applications. In vivo results highlight its ability to accelerate wound healing through immunomodulation, enhanced collagen deposition, and improved vascularization. In conclusion, this multifunctional hydrogel holds great promise for future development as an integrated platform for diabetic skin wound repair and real-time monitoring.

一种结合两性离子水凝胶的光热增强热电纳米片,用于伤口修复和生物电子学。
新一代智能伤口敷料的目标是通过多种刺激来包含感官恢复能力,而不仅仅是专注于皮肤的重建和修复。伤口敷料与伤口运动的实时测量相结合,可以在皮肤再生过程中提供关键的指导,从而大大提高愈合效率。在此,我们报道了一种具有光热和热电性能的导电两性离子水凝胶敷料,该敷料采用聚(3,4-乙烯二氧噻吩)修饰的聚多巴胺功能化碲化铋(PEDOT@PBT)三明治状纳米片,含有聚(甲基丙烯酸亚砜甜菜碱)/丝素(PEDOT@PBT-PSBMA/SF)半互穿聚合物网络水凝胶,可以加速慢性伤口愈合并监测运动。在PEDOT@PBT纳米片的掺入下,水凝胶表现出显著的光热和热电效应,对大肠杆菌(E. coli, 99.02%)、金黄色葡萄球菌(S. aureus, 99.14%)和耐甲氧西林金黄色葡萄球菌(MRSA, 97.70%)具有广谱抗菌性能。此外,PEDOT@PBT-PSBMA/SF水凝胶由于其良好的导电性(0.13 S/m),可用于生物电子学。体内实验表明,PEDOT@PBT-PSBMA/SF水凝胶通过免疫调节、胶原沉积和血管化,积极促进mrsa感染伤口的再生。因此,本研究为下一代多功能水凝胶敷料的开发提供了一个有希望的策略,在慢性皮肤伤口治疗和生物电子学方面具有相当大的应用潜力。意义说明:热电材料越来越多地被加入到水凝胶中,以增强组织再生。然而,提高热电效率,同时有效地利用产生的电力进行组织再生仍然是一个重大挑战。本研究提出了一种多功能水凝胶敷料,将先进的光热和热电性能与实时运动传感相结合,为慢性伤口治疗提供了突破。PEDOT@PBT-PSBMA/SF水凝胶对大肠杆菌、金黄色葡萄球菌和MRSA具有卓越的抗菌效果,同时具有适合生物电子应用的卓越导电性。体内实验结果强调了其通过免疫调节、增强胶原沉积和改善血管化来加速伤口愈合的能力。总之,这种多功能水凝胶作为糖尿病皮肤伤口修复和实时监测的综合平台具有很大的发展前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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