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Kossmann, D.

Publications and source records attributed to Kossmann, D..

2 recordsLinked to original sources

Fluorescence Blinking Patterns Fingerprint the Local Protein Environment

The function of a protein depends not only on its sequence but on post-translational modifications and folding that produce functionally distinct proteoforms. Single-molecule methods for protein identification, such as nanopore sequencing, typically require denaturation or proteolysis, sacrificing conformational information that contributes to proteoform diversity. Here, we identify intact, folded proteins by recording an optical fingerprint of their local surface chemistry using a single covalent label. The signal is produced by a spontaneously blinking fluorophore attached to the protein through established bioconjugation reactions. The thermodynamics and kinetics of its switching between a fluorescent and a dark state are influenced by the immediate protein environment in a chemically interpretable manner. Further discriminative information can be extracted using deep learning to achieve excellent identification accuracy. Using this approach, we distinguish different proteins, different pockets of the same protein, and the presence of a single post-translational modification, in each case tracing the classification back to a distinct physicochemical mechanism. These results establish single-molecule fluorescence blinking as both a protein fingerprinting method and a probe of local chemistry on the surface of folded proteins.

biochemistry↗

A ratiometric pH sensor for Gram-positive and Gram-negative bacteria

Fluctuating environments can lead to phenotypic heterogeneity within a monoclonal bacterial population, especially in response to antibiotics or the human immune system. Methods are required to analyze the physiology of single cells to understand how individual cells interact with their environment and adapt to pH stress. We report a ratiometric, fluorescent probe to sense cytoplasmic pH in bacteria. Our probes are based on hemicyanine dyes and are taken up into both Gram-positive and Gram-negative bacteria. The probes react preferentially with OH- over other nucleophiles in biological systems. The response to pH changes is reversible and rapid, allowing for the real-time tracking of pH fluctuations. The sensing of these probes was tuned to allow for monitoring fluctuations around neutrality and biologically relevant acidifications. These probes were validated for cytoplasmic pH sensing in Escherichia coli, Staphylococcus epidermidis, and a clinically isolated methicillin-resistant Staphylococcus aureus (MRSA) strain. Furthermore, the probes enabled the identification of pH-sensitive phenotypes and monitored phagocytosis of virulent clinical strains in immune cells. Our probes are a promising tool for detecting phenotypic heterogeneity within bacterial populations and may help unravel the physiological state of resistant or persistent strains of clinical relevance.

microbiology↗