Expanded Proteome Coverage Powered by Advanced Ion Processing Enables Deep Single-Cell Drug Response Subtyping in Human Stem Cell Derived Cardiomyocytes
Janssens, J. V.; Binek, A.; Ai, L.; Bhardwaj, A.; Arzt, M.; Assis, D.; Willetts, M.; Krawitzky, M.; Hornburg, D.; Sharma, A.; Stotland, A.; Van Eyk, J. E.
Show abstract
Single-cell proteomics (SCP) enables the study of cellular heterogeneity at the functional level but remains limited by incomplete proteome coverage and high data missingness. Here, we present an enhanced label-free SCP workflow that leverages the timsUltra AIP mass spectrometry platform equipped with the Athena Ion Processor (AIP). Across a controlled dilution series of human induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs), AIP-enabled acquisition consistently increased proteome depth and detection consistency across cells at all input levels. In single iPSC-CMs, the timsUltra AIP quantified up to 3,858 protein groups, averaging [~]1,300 proteins per cell, enabling robust proteome-level classification of cardiomyocyte subtypes. Using a reference-based protein classifier, cells were stratified into mature cardiomyocytes and less differentiated cell states, revealing substantial baseline heterogeneity. Importantly, increased single-cell sensitivity translated directly into biological insight, as approximately 30% of differentially expressed proteins associated with subtype-specific drug responses were detected exclusively by timsUltra AIP. Application of this workflow to PR-364 (a mitophagy boosting drug) dose-response experiment uncovered distinct, subtype-dependent pathway adaptations. Mature cardiomyocytes exhibited dose-dependent increases in mitochondrial and metabolic pathway activity, while immature cells showed enrichment of cytoskeletal and developmental programs. These effects were partially obscured in simulated bulk analyses, highlighting the value of single-cell resolution. Together, these results demonstrate that improved fragment ion transmission and utilization translate directly into enhanced biological insight, enabling more comprehensive and functionally relevant single-cell proteomics.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Simultaneous proteome localization and turnover analysis reveals spatiotemporal dynamics of unfolded protein responses 95%
- Systematic detection of functional proteoform groups from bottom-up proteomic datasets 94%
- Imputation of label-free quantitative mass spectrometry-based proteomics data using self-supervised deep learning 94%
Similar papers in this journal
- A proximity proteomics pipeline with improved reproducibility and throughput 94%
- Automated sample preparation with SP3 for low-input clinical proteomics 94%
- Limited proteolysis-coupled mass spectrometry captures proteome-wide protein structural alterations and biomolecular condensation in living cells 94%
Similar papers in this journal
- Reference glycan structure libraries of primary human cardiomyocytes and pluripotent stem cell-derived cardiomyocytes reveal cell-type and culture stage-specific glycan phenotypes 94%
- In-depth Characterization of S-Glutathionylation in Ventricular Myosin Light Chain 1 Across Species by Top-Down Proteomics 93%
- dATP Elevation Induces Myocardial Metabolic Remodeling to Support Improved Cardiac Function 91%
Similar papers in this journal
- Parallelization with Dual-Trap Single-Column Configuration Maximizes Throughput of Proteomic Analysis 95%
- High Throughput Single Cell Proteomic Analysis of Organ Derived Heterogeneous Cell Populations by Nanoflow Dual Trap Single Column Liquid Chromatography 95%
- Development and Comparative Evaluation of Endolysosomal Proximity Labeling-based Proteomic Methods in Human iPSC-derived Neurons 94%