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Exploration of Bioengineered Scaffolds Composed of Thermo-Responsive Polymers for Drug Delivery in Wound Healing

机译:生物工程支架组成的热响应聚合物组成用于伤口愈合中的药物递送

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摘要

Innate and adaptive immune responses lead to wound healing by regulating a complex series of events promoting cellular cross-talk. An inflammatory response is presented with its characteristic clinical symptoms: heat, pain, redness, and swelling. Some smart thermo-responsive polymers like chitosan, polyvinylpyrrolidone, alginate, and poly(ε-caprolactone) can be used to create biocompatible and biodegradable scaffolds. These processed thermo-responsive biomaterials possess 3D architectures similar to human structures, providing physical support for cell growth and tissue regeneration. Furthermore, these structures are used as novel drug delivery systems. Locally heated tumors above the polymer lower the critical solution temperature and can induce its conversion into a hydrophobic form by an entropy-driven process, enhancing drug release. When the thermal stimulus is gone, drug release is reduced due to the swelling of the material. As a result, these systems can contribute to the wound healing process in accelerating tissue healing, avoiding large scar tissue, regulating the inflammatory response, and protecting from bacterial infections. This paper integrates the relevant reported contributions of bioengineered scaffolds composed of smart thermo-responsive polymers for drug delivery applications in wound healing. Therefore, we present a comprehensive review that aims to demonstrate these systems’ capacity to provide spatially and temporally controlled release strategies for one or more drugs used in wound healing. In this sense, the novel manufacturing techniques of 3D printing and electrospinning are explored for the tuning of their physicochemical properties to adjust therapies according to patient convenience and reduce drug toxicity and side effects.
机译:先天和适应性免疫应答通过调节促进细胞交叉谈话的复杂系列事件导致伤口愈合。炎症反应具有其特征临床症状:热,疼痛,发红和肿胀。一些智能热响应性聚合物如壳聚糖,聚乙烯吡咯烷酮,藻酸盐和聚(ε-己内酯)可用于产生生物相容性和可生物降解的支架。这些加工的热响应生物材料具有类似于人体结构的3D架构,为细胞生长和组织再生提供物理支持。此外,这些结构用作新型药物递送系统。聚合物上方的本地加热肿瘤降低了临界溶液温度,并且可以通过熵驱动的方法诱导其转化成疏水形式,增强药物释放。当热刺激消失时,由于材料的溶胀,药物释放减少。结果,这些系统可以有助于伤口愈合过程加速组织愈合,避免大瘢痕组织,调节炎症反应,并保护细菌感染。本文综述了由智能热响应聚合物组成的生物工程支架的相关报告贡献,用于伤口愈合中的药物递送应用。因此,我们提出了全面的审查,旨在证明这些系统的能力为一种或多种用于伤口愈合使用的药物提供空间和时间控制的释放策略。从这个意义上讲,探索了三维印刷和静电纺丝的新型制造技术,用于调整它们的物理化学性质,以根据患者的便利性调节疗法,降低药物毒性和副作用。

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