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Updated: May 19, 2026

Digital Microfluidics for Automated Proteomic Processing
Published on: November 6, 2009
A Miniaturized, Automated Proteomic Sample Preparation Platform for High-Throughput Target Deconvolution of Natural
Qiong Wu1, Yue Lin1, Jiayi Chen1,2
1School of Basic Medical Sciences, State Key Laboratory of Respiratory Disease, The First Affiliated Hospital of Guangzhou Medical University, Guangzhou National Laboratory, Guangzhou Medical University, Guangzhou 511436, China.
Abstract:
Natural products (NPs) are a major source of bioactive molecules for drug discovery, yet their development and translation are often limited by inefficient and ambiguous target identification. Although mass spectrometry-based proteomics has advanced rapidly, upstream sample preparation remains a critical bottleneck for high-throughput target deconvolution. Here, we report μPAS (micro proteomics automation system), an automated and miniaturized proteomic sample preparation platform that integrates protein reduction, alkylation, digestion, and TMTpro labeling into a single streamlined workflow. By achieving a 3- to 7-fold reduction in digestion and labeling volumes, μPAS improves throughput and cost efficiency, reducing TMT reagent consumption by 2-7.5-fold while maintaining high digestion efficiency (>90% within 4 h) and TMTpro labeling efficiency (>96%). The platform demonstrates consistent intra- and inter-batch reproducibility, with Pearson correlation coefficients exceeding 0.96. Using three model compounds, μPAS was benchmarked against three complementary target identification strategies, enabling automated target discovery. Application of μPAS to a 96-sample workflow enabled systematic target deconvolution for 18 NPs lacking well-defined targets. Key candidate targets, including HIF1AN, FECH, and TXNRD1, were further validated using Western blot-based thermal shift assays, confirming target engagement. Collectively, these results establish μPAS as a robust and scalable platform for high-throughput NP target discovery, facilitating mechanistic elucidation of NP bioactivity.
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