Real-time monitoring of vancomycin using split-aptamer surface plasmon resonance biosensor

IF 3.6 3区 化学 Q2 CHEMISTRY, ANALYTICAL
Analyst Pub Date : 2024-11-14 DOI:10.1039/d4an01226g
Cátia Santa, Soohyun Park, Artur Gejt, Heather A Clark, Bastian Hengerer, Khulan Sergelen
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Abstract

Real-time monitoring of therapeutic drugs is crucial for treatment management and pharmacokinetic studies. We present the optimization and affinity tuning of split-aptamer sandwich assay for real-time monitoring of the narrow therapeutic window drug vancomycin, using surface plasmon resonance (SPR). To achieve reversible, label-free sensing of small molecules by SPR, we adapted the vancomycin binding aptamer in a sandwich assay format through split-aptamer approach. By evaluating multiple split sites within the secondary structure of the original aptamer, we identified position 27 (P27) as optimal for preserving target affinity, ensuring reversibility, and maximizing sensitivity. The assay demonstrated robust performance under physiologically relevant ranges of pH and divalent cations and the specific ternary complex formation of the aptamer split segments with the analyte was confirmed by circular dichroism spectroscopy. Subsequently, we engineered a series of split-aptamer pairs with increasing complementarity in the stem regions, improving both the affinity and limit of detection up to 10-fold, as compared to the primary P27 pair. The kinetics of the engineered split-aptamer pairs were evaluated, revealing fast association and dissociation rates, confirming improved affinity and detection limits across variants. Most importantly, the reversibility of the assay, essential for real-time monitoring, was maintained in all pairs. Finally, the assay was further validated in complex biological matrices, including cerebrospinal fluid from dog and diluted plasma from rat, demonstrating functionality in biological environments, and stability exceeding 9 hours. Our study paves the way for applications of split-aptamers in real-time monitoring of small molecules, with potential implications for in vivo therapeutic drug monitoring and pharmacokinetic studies.
利用分裂aptamer表面等离子体共振生物传感器实时监测万古霉素
实时监测治疗药物对于治疗管理和药代动力学研究至关重要。我们利用表面等离子体共振(SPR)技术,对用于实时监测治疗窗口期较窄的药物万古霉素的分离式吸附剂夹心检测法进行了优化和亲和力调谐。为了通过 SPR 实现对小分子的可逆、无标记传感,我们将万古霉素结合适配体通过分裂适配体方法改装成夹心测定格式。通过评估原始适配体二级结构中的多个分裂位点,我们确定第 27 位(P27)是保持目标亲和力、确保可逆性和最大灵敏度的最佳位置。该检测方法在生理相关的 pH 值和二价阳离子范围内表现出了强大的性能,并且通过圆二色性光谱证实了合体分裂片段与分析物形成的特异性三元复合物。随后,我们又设计了一系列拆分适配体对,其干区的互补性不断增加,与原始的 P27 对相比,亲和力和检测限均提高了 10 倍。对工程化拆分aptamer对的动力学进行了评估,发现其结合和解离速率很快,证实了不同变体的亲和力和检测限均有所提高。最重要的是,所有配对都保持了检测的可逆性,这对实时监测至关重要。最后,该检测方法在复杂的生物基质中得到了进一步验证,包括狗的脑脊液和大鼠的稀释血浆,证明了其在生物环境中的功能性和超过 9 小时的稳定性。我们的研究为在小分子实时监测中应用拆分触媒铺平了道路,对体内治疗药物监测和药代动力学研究具有潜在的意义。
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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来源期刊
Analyst
Analyst 化学-分析化学
CiteScore
7.80
自引率
4.80%
发文量
636
审稿时长
1.9 months
期刊介绍: The home of premier fundamental discoveries, inventions and applications in the analytical and bioanalytical sciences
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