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Updated: Aug 13, 2026

Fully Automated Centrifugal Microfluidic Device for Ultrasensitive Protein Detection from Whole Blood
Published on: April 16, 2016
Biomimetic fluidic lipid-engineered nanofluidic platform for ultrasensitive discrimination of multiprotein in
1State Key Laboratory of Microbial Technology, Nanjing Drum Tower Hospital, Jiangsu Collaborative Innovation Center of Biomedical Functional Materials, School of Chemistry and Materials Science, Nanjing Normal University Nanjing 210023 China wangchen@njnu.edu.cn.
Abstract:
Accurate multiprotein discrimination in complex biofluids remains challenging due to static recognition interfaces, severe biofouling, and ambiguous size-exclusion effects in conventional solid-state sensors. Herein, we develop a fluidic lipid-based antifouling and rectification-engineered (FLARE) system, a dynamic nanofluidic platform that enables electrochemical fingerprint-based multiprotein discrimination. Constructed via in situ self-assembly of a biomimetic lipid membrane on nanochannel arrays, FLARE establishes a covalently stabilized yet laterally fluid and programmable interface, enabling adaptive target recognition while minimizing nonspecific adsorption. Upon protein binding, target-dependent interfacial charge perturbations arising from distinct isoelectric properties are nonlinearly amplified via ion current rectification (ICR), generating characteristic voltage-dependent electrochemical fingerprints. This ICR-governed signal encoding mechanism converts subtle molecular differences into high-dimensional readouts, enabling intrinsic discrimination beyond conventional intensity-based sensing. By integrating sensitive capture with encoded signal transduction, FLARE achieves ultrasensitive detection of protein biomarkers, with detection limits of 0.192 pM (TNF-α), 1.51 pM (lysozyme), 2.44 pM (APE1), and 3.39 pM (IL-1β). Coupled with principal component analysis, FLARE enables accurate discrimination of six proteins spiked in whole blood. This work establishes a dynamic and chemically adaptable nanofluidic interface for multiplexed protein analysis in complex biological matrices, demonstrating strong potential for clinical diagnostics.
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