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Citrate-based fluorescent materials for low-cost chloride sensing in the diagnosis of cystic fibrosis

机译:基于柠檬酸盐的荧光材料可用于低成本氯离子检测用于诊断囊性纤维化

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摘要

Chloride is an essential electrolyte that maintains homeostasis within the body, where abnormal chloride levels in biological fluids may indicate various diseases such as cystic fibrosis. However, current analytical solutions for chloride detection fail to meet the clinical needs of both high performance and low material or labor costs, hindering translation into clinical settings. Here we present a new class of fluorescence chloride sensors derived from a facile citrate-based synthesis platform that utilize dynamic quenching mechanisms. Based on this low-cost platform, we demonstrate for the first time a selective sensing strategy that uses a single fluorophore to detect multiple halides simultaneously, promising both selectivity and automation to improve performance and reduce labor costs. We also demonstrate the clinical utility of citrate-based sensors as a new sweat chloride test method for the diagnosis of cystic fibrosis by performing analytical validation with sweat controls and clinical validation with sweat from individuals with or without cystic fibrosis. Lastly, molecular modeling studies reveal the structural mechanism behind chloride sensing, serving to expand this class of fluorescence sensors with improved chloride sensitivities. Thus citrate-based fluorescent materials may enable low-cost, automated multi-analysis systems for simpler, yet accurate, point-of-care diagnostics that can be readily translated into clinical settings. More broadly, a wide range of medical, industrial, and environmental applications can be achieved with such a facile synthesis platform, demonstrated in our citrate-based biodegradable polymers with intrinsic fluorescence sensing.
机译:氯化物是维持体内动态平衡的必需电解质,其中生物液中的氯化物含量异常可能表明各种疾病,例如囊性纤维化。然而,当前用于氯化物检测的分析解决方案不能满足高性能和低材料或人工成本的临床需求,从而阻碍了其转化为临床环境。在这里,我们提出了一种新的荧光氯化物传感器类,它来自利用动态猝灭机制的基于柠檬酸盐的合成平台。基于此低成本平台,我们首次展示了使用单个荧光团同时检测多种卤化物的选择性传感策略,有望实现选择性和自动化,从而提高性能并降低人工成本。我们还证明了柠檬酸盐基传感器作为一种新的汗液氯化物测试方法在诊断囊性纤维化中的临床实用性,方法是通过汗液控制进行分析验证,并以患有或不患有囊性纤维化的人的汗液进行临床验证。最后,分子建模研究揭示了氯化物感测背后的结构机制,有助于通过改进的氯化物敏感性来扩展此类荧光传感器。因此,基于柠檬酸盐的荧光材料可以实现低成本,自动化的多重分析系统,以实现更简单但准确的即时诊断,可以轻松地转换为临床设置。更广泛地讲,这种便捷的合成平台可以实现广泛的医学,工业和环境应用,这在我们基于柠檬酸盐的具有固有荧光传感功能的可生物降解聚合物中得到了证明。

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