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Updated: Jan 7, 2026

Colorectal Cancer Cell Surface Protein Profiling Using an Antibody Microarray and Fluorescence Multiplexing
Published on: September 25, 2011
Cell Surface Ion-Seq: Potassium Ion Monitoring in the Colorectal Cancer Cellular Microenvironment Based on Split
Zhiyong Huang1,2, Xuyang Shi3, Yunben Yang1
1Department of Clinical Laboratory, Zhejiang Cancer Hospital, The Key Laboratory of Zhejiang Province for Aptamers and Theranostics, Hangzhou Institute of Medicine (HIM), Chinese Academy of Sciences, Hangzhou 310022, P. R. China.
Abstract:
Potassium ions (K+) are vital for biological systems and essential cellular functions, making their homeostasis monitoring crucial for investigating electrolyte imbalance symptoms. Antibody-based high-throughput single-cell sequencing enables simultaneous phenotype and genotype profiling in individual cells; however, its application to ion monitoring encounters inherent limitations. The subnanometer scale of K+ ions precludes antibody-based detection, creating a significant technical barrier for correlating ionic activity with cellular phenotypes at single-cell resolution. In this study, we report a cell surface biosensor for single-cell ion sequencing (Ion-seq) to monitor K+ homeostasis in clinical samples. The design utilizes split G-quadruplex (G4), where two guanine-rich DNA oligonucleotides cofold into four-stranded noncanonical secondary structures upon K+ binding. Specifically, a lipid-labeled capture probe anchors to the cell membrane. Upon drug-stimulated release of K+ from cells, the free sensing probe is captured, forming a complete G-quadruplex with the capture probe. Sequencing the sensing probe then enables monitoring of potassium homeostasis at single-cell resolution, allowing ionic phenotyping within the context of cellular heterogeneity and function. Moreover, this biosensor holds potential for broader bioapplications in analyzing other ions at the single-cell resolution, advancing disease diagnosis and personalized medicine.

