Functional-hydrogel-based electronic-skin patch for accelerated healing and monitoring of skin wounds

IF 12.8 1区 医学 Q1 ENGINEERING, BIOMEDICAL
Yoonsoo Shin , Hyun Su Lee , Jeong-Uk Kim , Young-Hyeon An , Ye-Sol Kim , Nathaniel S. Hwang , Dae-Hyeong Kim
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引用次数: 0

Abstract

Conductive hydrogels feature reasonable electrical performance as well as tissue-like mechanical softness, thus positioning them as promising material candidates for soft bio-integrated electronics. Despite recent advances in materials and their processing technologies, however, facile patterning and monolithic integration of functional hydrogels (e.g., conductive, low-impedance, adhesive, and insulative hydrogels) for all-hydrogel-based soft bioelectronics still poses significant challenges. Here, we report material design, fabrication, and integration strategies for an electronic-skin (e-skin) patch based on functional hydrogels. The e-skin patch was fabricated by using photolithography-compatible functional hydrogels, such as poly(2-hydroxyethyl acrylate) (PHEA) hydrogel (substrate), Ag flake hydrogel (interconnection; conductivity: ∼571.43 S/cm), poly(3,4-ethylenedioxythiophene:polystyrene) (PEDOT:PSS) hydrogel (working electrode; impedance: ∼69.84 Ω @ 1 Hz), polydopamine (PDA) hydrogel (tissue adhesive; shear strength: ∼725.1 kPa), and poly(vinyl alcohol) (PVA) hydrogel (encapsulation). The properties of these functional hydrogels closely resemble those of human tissues in terms of water content and Young's modulus, enabling stable tissue-device interfacing in dynamically changing physiological environments. We demonstrated the efficacy of the e-skin patch through its application to accelerated healing and monitoring of skin wounds in mouse models − efficient fibroblast migration, proliferation, and differentiation promoted by electric field (EF) stimulation and iontophoretic drug delivery, and monitoring of the accelerated healing process through impedance mapping. The all-hydrogel-based e-skin patch is expected to create new opportunities for various clinically-relevant tissue interfacing applications.

基于功能性水凝胶的电子皮肤贴片,用于加速皮肤伤口愈合和监测
导电水凝胶具有合理的电气性能以及类似于组织的机械柔软性,因此有望成为软性生物集成电子元件的候选材料。然而,尽管材料及其加工技术取得了最新进展,但要将功能性水凝胶(如导电性、低阻抗性、粘合性和绝缘性水凝胶)简单地图案化和单片集成到基于全水凝胶的软生物电子器件中,仍然面临着巨大挑战。在此,我们报告了基于功能性水凝胶的电子皮肤(e-skin)贴片的材料设计、制造和集成策略。电子皮肤贴片是利用与光刻兼容的功能水凝胶制成的,如聚(2-羟乙基丙烯酸酯)(PHEA)水凝胶(基底)、片状银水凝胶(互连;电导率:∼571.43 S/cm)、聚(3,4-亚乙二氧基噻吩:聚苯乙烯)(PEDOT:PSS)水凝胶(工作电极;阻抗:∼69.84 Ω @ 1 Hz)、聚多巴胺(PDA)水凝胶(组织粘合剂;剪切强度:∼725.1 kPa)和聚乙烯醇(PVA)水凝胶(封装)。这些功能性水凝胶在含水量和杨氏模量方面的特性与人体组织非常相似,可在动态变化的生理环境中实现稳定的组织-设备界面。我们将电子皮肤贴片应用于小鼠模型皮肤伤口的加速愈合和监测,证明了它的功效--通过电场(EF)刺激和离子渗透给药促进成纤维细胞的高效迁移、增殖和分化,并通过阻抗图监测加速愈合过程。基于全水凝胶的电子皮肤贴片有望为各种临床相关的组织接口应用创造新的机遇。
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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来源期刊
Biomaterials
Biomaterials 工程技术-材料科学:生物材料
CiteScore
26.00
自引率
2.90%
发文量
565
审稿时长
46 days
期刊介绍: Biomaterials is an international journal covering the science and clinical application of biomaterials. A biomaterial is now defined as a substance that has been engineered to take a form which, alone or as part of a complex system, is used to direct, by control of interactions with components of living systems, the course of any therapeutic or diagnostic procedure. It is the aim of the journal to provide a peer-reviewed forum for the publication of original papers and authoritative review and opinion papers dealing with the most important issues facing the use of biomaterials in clinical practice. The scope of the journal covers the wide range of physical, biological and chemical sciences that underpin the design of biomaterials and the clinical disciplines in which they are used. These sciences include polymer synthesis and characterization, drug and gene vector design, the biology of the host response, immunology and toxicology and self assembly at the nanoscale. Clinical applications include the therapies of medical technology and regenerative medicine in all clinical disciplines, and diagnostic systems that reply on innovative contrast and sensing agents. The journal is relevant to areas such as cancer diagnosis and therapy, implantable devices, drug delivery systems, gene vectors, bionanotechnology and tissue engineering.
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