CAmp-scWB, a post-separation amplification strategy that performs rolling-circle amplification directly within the polyacrylamide gel after single-cell protein electrophoresis, enables proteoform-resolved analysis of heterogeneous cells and small extracellular vesicles.
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.
Using RAPID, it is found that SFPQ-NEAT1 interactions exhibited distinct spatial organization and dynamic changes upon cellular stimulation, indicating that the SFPQ-NEAT1 axis is closely associated with nuclear reorganization and stimulus-responsive gene regulation.
Yuncong Wu, Qiu-Shuang Zhang, Yi-Cong Dai et al.· Angewandte Chemie· 0 citations
Heteroduplex Assay via Recombinant Tn5 provides a rapid, scalable route to full-length single-cell transcript profiling with gene-programme and candidate isoform resolution and results remain exploratory because independent biological replicates were unavailable.
Wen-Yi Zhang, Ai-Qun Chen, Kai-Qiang Ye et al.· bioRxiv· 0 citations
SCISSOR (Single-Cell Inference of Structural States of Ribosomes), a strategy that infers global translation activity in individual cells from the differential protection of ribosomal RNA against nuclease digestion, is introduced, establishing a framework for studying global translation control at single-cell resolutio...
Euan Joly-Smith, Michael VanInsberghe, Kseniia Sarieva et al.· bioRxiv· 0 citations
Proteins exist as diverse proteoforms resulting from a combination of genetic variation, alternative splicing and post-translational modifications. Current methods struggle to capture this complexity at the single-molecule level. Here we introduce Iterative Mapping of proteoforms, a method that enables massively parall...
James Joly, V. Budamagunta, Zheng-Jian Zhang et al.· Nature Methods· 1 citation
Single-cell proteomics (SCP) has emerged as a powerful approach to quantify protein expression variability at cellular resolution, yet most state-of-the-art workflows are tailored to eukaryotic cells with only one study exploring how single bacteria can be analyzed by mass spectrometry. Here, we established bacSCP, a p...
Julia Leodolter, Tim Thierer, K. Mechtler et al.· Nature Communications· 0 citations
A new machine-learning framework aims to improve the success rate of computational protein design while moving away from results that reproduce sequences found in nature.