抗菌智能材料微型综述:抵御伤口感染的未来之选

M. B. Monroe, David Fikhman
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引用次数: 0

摘要

由于过度使用抗生素治疗细菌感染以及细菌形成生物膜群落的倾向,导致耐药微生物的数量急剧上升。目前监测伤口感染和清除生物膜的方法非常有限,需要基于生物材料的新策略来解决这一问题。为此,人们开发了一系列抗菌智能材料,这些材料可根据细菌引起的外部刺激改变自身特性,为抵御微生物提供了更复杂的工具。研究人员试图利用能对伤口中细菌诱发的独特 pH 值、温度和酶变化做出反应的材料来解决这一问题。这些环境反应与杀死周围细菌和/或发出感染信号的机制相结合。例如,细菌响应型生物材料的溶解(从非溶解固体材料转变为溶解液体溶液)、膨胀(由于吸收周围介质而体积增大)、消肿、降解或形状变化可与药物释放和/或激活或生物膜破坏、抑制或摧毁相结合。这些材料为今后的工作和改进提供了基础,有助于加强感染监控、提高感染反应的特异性以及有效清除伤口表面的生物膜。
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Mini-review antimicrobial smart materials: the future’s defense against wound infections
The overuse of antibiotics to treat bacterial infections along with bacteria’s propensity to form biofilm communities has resulted in an alarming rise in drug-resistant microbes. Current approaches to infection surveillance and biofilm clearance in wounds are severely limited, requiring new biomaterials-based strategies to address this problem. To that end, a range of antimicrobial smart materials have been developed that change their properties in response to bacteria-induced external stimuli, providing tools with an additional level of complexity for defending against microbes. Researchers have tried to tackle this issue using materials that respond to the unique pH, temperature, and enzymatic changes that are induced by bacteria in wounds. These environmental responses are coupled with mechanisms to kill surrounding bacteria and/or to signal infection. For example, bacteria-responsive biomaterial solubilization (transition from non-solubilized solid material to solubilized liquid solution), swelling (volumetric increase due to absorption of surrounding media), de-swelling, degradation, or shape change can be coupled with drug release and/or activation or biofilm disruption, inhibition, or destruction. These materials provide a foundation for future work and improvements related to enhanced infection surveillance, increased specificity of infection response, and effective clearance of biofilms from wound surfaces.
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