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Edwardson, J. M.

Publications and source records attributed to Edwardson, J. M..

2 recordsLinked to original sources

Syncollin secreted by activated human neutrophils targets bacteria

Syncollin is a 16-kDa protein that was originally isolated from the pancreatic zymogen granule. Syncollin is also found in human neutrophils and is secreted from promyelocytic HL-60 cells upon stimulation. Recently, we reported that syncollin is able to bind to bacterial peptidoglycan, to damage the bacterial envelope and to restrict bacterial growth. Here, we show that syncollin is secreted from activated primary human neutrophils, and interacts with extracellular neutrophil traps (NETs) in a similar manner to the well-characterized granular protein myeloperoxidase. In addition, secreted syncollin is able to coat the surface of E. coli in co-cultures of neutrophils and bacteria. On the basis of our findings, we suggest that syncollin plays a role in host defence in the blood.

cell biology↗

Direct Visualization of Protein Kinase A Activation on DNA Origami using Fast-Scan Atomic Force Microscopy

DNA origami nanostructures provide a unique platform for the direct observation of protein-protein interactions at the single-molecule level. Here, we used DNA origami in combination with fast-scan atomic force microscopy to observe the activation-induced dissociation of individual protein kinase A (PKA) holoenzymes. The PKA holoenzyme consists of two regulatory (R) and two catalytic (C) subunits. When cAMP binds to the R subunits it causes dissociation of the C subunits from the R subunit dimer and activation of the enzyme. Using a DNA origami platform, we were able to observe the activation of PKA in response to photolysis of caged cAMP. Furthermore, exploiting the potential of DNA origami for precise positioning of biomolecules, we were able to position the catalytic subunit of adenylyl cyclase in close proximity to PKA and to observe the activation of PKA in response to cAMP produced by adenylyl cyclase. We provide tools for the observation of signalling pathways at the single-molecule level and show that the C subunits of PKA dissociate from the holoenzyme but stay within ~10 nm of the R subunit dimer upon activation.

molecular biology↗