Wireless magnetoelastic sensors for tracking degradation profiles of nitrodopamine-modified poly(ethylene glycol).

Sciencejet Pub Date : 2015-01-01
Jonathan Anderson, Meng-Hsien Lin, Caitlyn Privette, Marissa Flowers, Meridith Murley, Bruce P Lee, Keat Ghee Ong
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Abstract

A critical property for tissue adhesives is a controllable degradation rate so that these adhesives do not act as barriers to wound healing. Typical degradation tests require large amount of samples, which can be tedious and expensive to perform. Additionally, current degradation tests are carried out in vitro under simulated physiological conditions and may not accurately reflect the complex environment that an adhesive would experience in vivo. As a means to develop a simple technique for testing tissue adhesive, a rapidly degrading adhesive hydrogel that mimics mussel adhesive proteins was coated onto magnetoelastic (ME) sensor strips to track the degradation of the adhesive remotely and in real time. Adhesive-coated ME sensors were submerged in phosphate buffer saline solution (pH 7.4) at body temperature (37 °C). Based on the change in the resonant amplitude, the degradation time was determined to be 22 min, which was in agreement with qualitative monitoring of the bulk adhesive hydrogel. Additionally, when the adhesive-coated ME sensor was incubated in a slightly acidic medium (pH 5.7), the degradation rate was drastically lengthened (3 hrs) as the hydrolysis of ester bonds is faster under basic conditions. Oscillatory rheological testing confirmed the formation and degradation of the adhesive. However, rheological test results did not accurately reflect the degradation rate of the adhesive hydrogel, potentially due to a slow exchange of acidic degradation products with the surrounding medium. ME sensor was demonstrated as a potential useful tool for evaluating the degradation rate of bioadhesives.

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用于跟踪硝基多巴胺改性聚乙二醇降解曲线的无线磁弹性传感器。
组织粘合剂的一个关键特性是降解率可控,这样这些粘合剂就不会成为伤口愈合的障碍。典型的降解测试需要大量样本,操作繁琐且成本高昂。此外,目前的降解测试是在体外模拟生理条件下进行的,可能无法准确反映粘合剂在体内所处的复杂环境。为了开发一种测试组织粘合剂的简单技术,我们在磁弹性(ME)传感器条上涂覆了一种模拟贻贝粘合蛋白的快速降解粘合剂水凝胶,以远程实时跟踪粘合剂的降解情况。将涂有粘合剂的 ME 传感器浸没在体温(37 °C)下的磷酸盐缓冲盐溶液(pH 值为 7.4)中。根据共振频率的变化,确定降解时间为 22 分钟,这与对块状粘合剂水凝胶的定性监测结果一致。此外,将涂有粘合剂的 ME 传感器放在微酸性介质(pH 值为 5.7)中培养时,降解速率会急剧延长(3 小时),因为酯键在碱性条件下水解速度更快。摆动流变测试证实了粘合剂的形成和降解。不过,流变测试结果并不能准确反映粘合剂水凝胶的降解速率,这可能是由于酸性降解产物与周围介质的交换速度较慢。ME 传感器被证明是评估生物粘合剂降解率的潜在有用工具。
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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