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冷等离体物理强化载血小板光热响应甲基纤维素复合物体恢复烧伤创面。

Cold atmospheric plasma physically reinforced substances of platelets-laden photothermal-responsive methylcellulose complex  restores burn wounds.

机构信息

Center for Plasma and Thin Film Technologies, Ming-Chi University of Technology, New Taipei City, Taiwan.

Graduate Institute of Biomedical Materials and Tissue Engineering, International Ph.D. Program in Biomedical Engineering, Taipei Medical University, Taipei 11031, Taiwan.

出版信息

Int J Biol Macromol. 2021 Dec 1;192:506-515. doi: 10.1016/j.ijbiomac.2021.09.168. Epub 2021 Sep 30.

Abstract

Patients with irregular, huge burn wounds require time-consuming healing. The skin has an epithelial barrier mechanism. Hence, the penetration and retention of therapeutics across the skin to deep lesion is generally quite difficult and these usually constrain the delivery/therapeutic efficacies for wound healing. Effective burn wound healing also necessitates proper circulation. Conventional polymeric dressing usually exhibits weak mechanical behaviors, obstructing their load-bearing applications. Cold atmospheric plasma (CAP) was used as an efficient, environmentally friendly, and biocompatible process to crosslink methylcellulose (MC) designed for topical administration such as therapeutic substances of platelets (SP) and polyethyleneimine-polypyrrole nanoparticle (PEI-PPy NP)-laden MC hydrogel carriers, and wound dressings. The roles of framework parameters for CAP-treated SP-PEI-PPy NP-MC polymeric complex system; chemical, physical, and photothermal effects; morphological, spectroscopical, mechanical, rheological, and surface properties; in vitro drug release; and hydrophobicity are discussed. Furthermore, CAP-treated SP-PEI-PPy NP-MC polymeric complex possessed augmented mechanical properties, biocompatibility, sustainable drug release, drug-retention effects, and near-infrared (NIR)-induced hyperthermia effects that drove heat-shock protein (HSP) expression with drug permeation to deep lesions. This work sheds light on the CAP crosslinking polymeric technology and the efficacy of combining sustained drug release with photothermal therapy in burn wound bioengineering carrier designs.

摘要

患有不规则、巨大烧伤创面的患者需要耗费时间进行愈合。皮肤具有上皮屏障机制。因此,治疗剂穿过皮肤渗透到深部病变的能力通常相当困难,这通常会限制治疗效果。有效的烧伤创面愈合还需要适当的循环。传统的聚合体敷料通常表现出较弱的机械性能,阻碍了它们的承载应用。冷等离体(CAP)被用作一种高效、环保和生物相容的工艺,来交联甲基纤维素(MC),设计用于局部给药,如血小板(SP)和聚乙烯亚胺-聚吡咯纳米颗粒(PEI-PPy NP)负载的 MC 水凝胶载体和伤口敷料。讨论了 CAP 处理的 SP-PEI-PPy NP-MC 聚合体复合体系的框架参数的作用;化学、物理和光热效应;形态、光谱、力学、流变学和表面性能;体外药物释放;和疏水性。此外,CAP 处理的 SP-PEI-PPy NP-MC 聚合体复合物具有增强的机械性能、生物相容性、可持续药物释放、药物保留效果以及近红外(NIR)诱导的热疗效应,从而驱动热休克蛋白(HSP)的表达,同时将药物渗透到深部病变。这项工作阐明了 CAP 交联聚合体技术以及将持续药物释放与光热疗法相结合在烧伤创面生物工程载体设计中的功效。

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