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利用微流体限制来提高检测的灵敏度和选择性。

Leveraging microfluidic confinement to boost assay sensitivity and selectivity.

作者信息

Kang Shaoyu, Davis Jason J

机构信息

Department of Chemistry, University of Oxford South Parks Road Oxford OX1 3QZ UK

出版信息

Chem Sci. 2025 Mar 11;16(16):6965-6974. doi: 10.1039/d5sc00199d. eCollection 2025 Apr 16.

Abstract

The native and tunable microscale fluid manipulation accessible within 3D-printed configurations can be a transformative tool in biosensing, promoting mass transport and sample mixing to boost assay performance. In this study, we demonstrate that channel height restrictions can support a 2000% acceleration in target recruitment kinetics, a notable 600% improvement in target response magnitude, and a 300% enhancement in assay selectivity within an entirely reagentless format that requires neither catalytic amplification nor the employment of specialized nanomaterials. This highly accessible experimental configuration supports robust target detection from serum at simple, untreated, and un-passivated sensor surfaces. The underlying operational principles have been elucidated through a combination of theoretical analysis and COMSOL simulation; the enhanced analyte flux leveraged by channel confinement is directly responsible for these effects, which also scale with both bioreceptor surface density and target binding affinity. The operational simplicity of this assay format with its resolved channel and flux promoted assay performance, holds significant value not only for biosensing but also for broader microfluidic-integrated applications, such as biosynthesis and catalysis.

摘要

在3D打印结构中实现的原生且可调节的微尺度流体操控,可成为生物传感领域的变革性工具,促进传质和样品混合以提升检测性能。在本研究中,我们证明,在完全无需试剂的形式下,无需催化扩增也无需使用特殊纳米材料,通道高度限制可使目标物捕获动力学加快2000%,目标物响应幅度显著提高600%,检测选择性增强300%。这种高度易用的实验配置支持在简单、未经处理且未钝化的传感器表面对血清中的目标物进行可靠检测。通过理论分析和COMSOL模拟相结合,阐明了其潜在的操作原理;通道限制所利用的增强分析物通量直接导致了这些效应,这些效应也与生物受体表面密度和目标物结合亲和力相关。这种检测形式操作简单,其解析通道和通量提升了检测性能,不仅对生物传感具有重要价值,对更广泛的微流体集成应用(如生物合成和催化)也具有重要价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/870c/12001890/a9f874c6c854/d5sc00199d-f1.jpg

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