Pushing the limits of single-cell proteomics to investigate bacterial heterogeneity using bacSCP

Abstract 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 protocol extending SCP to bacterial cells, facing analytical challenges such as the thick bacterial cell wall hampering lysis, the extremely small cell size and resultant low protein content, and the comparatively high level of contaminating proteins from external sources. Using this bacSCP pipeline, we quantified more than 50 bacterial proteins from single Bacillus subtilis and Escherichia coli cells. Upon heat stress, we reproducibly observed up to 8-fold upregulation of chaperones including GroEL, GroES, and ClpC for a B. subtilis ΔmcsB strain. Importantly, single-cell measurements revealed potential heterogeneity within the heat-stressed subpopulation, enabling interrogation of stress-response variability at the proteome level. These results demonstrate the feasibility of bacSCP and provide a foundation for studying bacterial stress adaptation and phenotypic diversity with single-cell proteomic resolution.

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Publication Details

Journal
Nature Communications
Published
2026-09-01
DOI
https://doi.org/10.1038/s41467-026-77426-y
Primary Topic
Advanced Proteomics Techniques and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Pushing the limits of single-cell proteomics to investigate bacterial heterogeneity using bacSCP

Julia Leodolter, Karl Mechtler, Manuel Matzinger, Tim Thierer
Nature Communications
Advanced Proteomics Techniques and Applications
article

Pushing the limits of single-cell proteomics to investigate bacterial heterogeneity using bacSCP

Julia Leodolter, Karl Mechtler, Manuel Matzinger, Tim Thierer
article en

Abstract

Abstract 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 protocol extending SCP to bacterial cells, facing analytical challenges such as the thick bacterial cell wall hampering lysis, the extremely small cell size and resultant low protein content, and the comparatively high level of contaminating proteins from external sources. Using this bacSCP pipeline, we quantified more than 50 bacterial proteins from single Bacillus subtilis and Escherichia coli cells. Upon heat stress, we reproducibly observed up to 8-fold upregulation of chaperones including GroEL, GroES, and ClpC for a B. subtilis ΔmcsB strain. Importantly, single-cell measurements revealed potential heterogeneity within the heat-stressed subpopulation, enabling interrogation of stress-response variability at the proteome level. These results demonstrate the feasibility of bacSCP and provide a foundation for studying bacterial stress adaptation and phenotypic diversity with single-cell proteomic resolution.

Nature Communications
Institute of Molecular Biotechnology (AT), Gregor Mendel Institute of Molecular Plant Biology (AT), Austrian Academy of Sciences (AT), Research Institute of Molecular Pathology (AT)
Austrian Science Fund, Österreichische Forschungsförderungsgesellschaft
Openalex Percentile: Top 21%
Advanced Proteomics Techniques and Applications
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Pushing the limits of single-cell proteomics to investigate bacterial heterogeneity using bacSCP — Julia Leodolter, Karl Mechtler, et al. · Nature Communications (2026) | TGRS Research Map | TGRS