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arXiv · 2609.36251

Gel-Confined Rolling-Circle Amplification Enables Sensitive Single-Cell Proteoform Analysis

Abstract

Protein abundance alone does not capture the molecular diversity generated by protein processing and post-translational modification, yet most single-cell protein assays do not resolve these proteoform states. Here, we develop RCAmp-scWB, a post-separation amplification strategy that performs rolling-circle amplification directly within the polyacrylamide gel after single-cell protein electrophoresis. Reaction-transport modeling identifies a balance between reagent access and confinement of the template-associated amplification product that supports signal amplification while retaining the electrophoretically encoded spatial readout. Using purified protein standards, RCAmp-scWB produced a 4.0-7.8-fold steeper concentration-response slope than conventional single-cell western blotting. Across six human cancer cell lines, RCAmp-scWB quantified protein abundance and resolved distinct Vimentin and PD-L1 proteoform states whose relative abundance and single-cell distributions were not captured by total protein measurements alone. Extension to individual small extracellular vesicles further revealed source-dependent shifts in Vimentin proteoform composition despite comparatively similar abundance of one major Vimentin species. By separating electrophoretic molecular discrimination from signal amplification, RCAmp-scWB enables proteoform-resolved analysis of heterogeneous cells and small extracellular vesicles.

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Luyao Zhao, Yanjun Yang, Yaochao Zheng, Yuhao Zhang, Zhengfu Huang, William Teng, Lucas Yatcyshyn, Jiahwei Cheong, Jonathan Arnold, Jin Xie, Kenan Song, Xianqiao Wang, Yiping Zhao, Xianyan Chen, Yao Yao, Leidong Mao, Yang Liu. 2026-09-28. Gel-Confined Rolling-Circle Amplification Enables Sensitive Single-Cell Proteoform Analysis. https://arxiv.org/abs/2609.36251

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