外水凝胶膜产生宏观孔隙以抵消植入式葡萄糖传感器的灵敏度损失

S. Vaddiraju, Yan Wang, L. Qiang, D. Burgess, F. Papadimitrakopoulos
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引用次数: 2

摘要

植入式葡萄糖传感器的功能受到植入后的影响,如生物污垢和负组织反应,两者都会导致纤维包封性降低。使用基于含地塞米松的聚乳酸-羟基乙酸(PLGA)微球和聚乙烯醇(PVA)水凝胶基质的药物洗脱复合涂层已被证明可以抑制炎症1-3个月。本文表明,这些涂层提供了另一种辅助场所,通过微球降解后产生宏观孔隙来抵消蛋白质吸附的负面影响。在血清中的长期研究表明,虽然生物污垢堵塞了水凝胶的微孔隙,但它已被微球降解后产生的宏观孔隙所抵消。与对照组相比,传感器灵敏度恢复了两倍。这些发现表明,使用宏观孔隙可以减少生物污垢引起的敏感性损失,这是一种与基于药物传递的方法协同作用的方法,可以减轻组织的负面反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Macroscopic porosity generation in outer hydrogel membranes to offset sensitivity loss in implantable glucose sensors
The function of implantable glucose sensor is hindered by post-implantation effects such as biofouling and negative tissue responses both of which lead to permeability reducing fibrous encapsulation. Utilization of drug-eluting composite coatings based on dexamethasone-containing poly (lactic-co-glycolic) acid (PLGA) microspheres and poly (vinyl alcohol) (PVA) hydrogel matrix has been shown to suppress inflammation over a period of 1–3 months. Herein, it is shown that these coatings provide another auxiliary venue to offset the negative effects of protein adsorption through generation of macroscopic porosity following microsphere degradation. Long-term studies in serum have indicated that, while biofouling clogs the microporosity of the hydrogel, it has been offset by the generated macroscopic porosity following microsphere degradation. This resulted in a two-fold recovery in sensor sensitivity as compared to controls. These findings suggest that the use of macroscopic porosity can reduce biofouling-induced sensitivity losses, an approach synergistic with drug-delivery based methodologies to mitigate negative tissue responses.
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