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Profiling of Single Cells on a Droplet Microfluidics-SERS Platform for Multiplexed Analysis of Oxidative and
Xin Wang1, Wenyi Qi1, Jiaqi Wang1
1State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University, Changchun 130012, P. R. China.
Abstract:
Breast cancer is a highly heterogeneous disease, with subtypes such as triple-negative (TNBC) and HER2-positive (HER2+) exhibiting distinct therapeutic responses and prognoses. Cellular stress and inflammatory signaling critically influence tumor progression and treatment outcomes. Here, we present a droplet microfluidics-SERS platform for single-cell analysis of oxidative stress and inflammatory signaling in TNBC (MDA-MB-231) and HER2+ (SK-BR-3) cells under combined electrical stimulation and cisplatin treatment. A SERS-based system was designed for simultaneous detection of H2O2, selected as a representative indicator of oxidative stress, and IL-6, selected as a representative inflammatory cytokine. H2O2 was monitored through the responsive spectral changes of 4-MPBA on the reporter probe, whereas IL-6 detection relied on target-mediated sandwich immunocomplex formation between the reporter and capture probes, resulting in SERS signal amplification. Single-cell measurements reveal pronounced oxidative and inflammatory activation in MDA-MB-231 cells, whereas SK-BR-3 cells display attenuated responses, highlighting subtype-specific heterogeneity. In addition, cisplatin treatment further modulated the stress-response patterns induced by electrical stimulation, indicating distinct subtype-dependent adaptability to combined physical and chemical perturbations. This platform demonstrates potential for broader applications in single-cell analysis, providing a powerful tool for dissecting cell-specific stress and inflammatory dynamics.

