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Silbermann, L.-M.

Publications and source records attributed to Silbermann, L.-M..

2 recordsLinked to original sources

Multi-barrier unfolding of the double-knotted protein, TrmD-Tm1570, revealed by single-molecule force spectroscopy and molecular dynamics

The doubly knotted motif is one of the least expected features in proteins, occurring in both globular and transmembrane forms. Here, we focus on globular protein members of the methyltransferase family: the TrmD-Tm1570 protein, which contains two deep 31 knots, and the single-knotted proteins TrmD and Tm1570, all from Calditerrivibrio nitroreducens. Using various biophysical experimental techniques and computer simulations with AI-based methods, we studied their thermal and thermodynamic stability, as well as their mechanical unfolding. Based on molecular dynamics (MD) simulations, with the Structure-Based C Model (SBM-C) and UNRES (coarse-grained), we show that native contacts alone are not sufficient to fold double-knotted proteins. However, native contacts are sufficient to fold the single-knotted proteins TrmD and Tm1570 into their native conformations. Using the same model, we identified four possible unfolding and untying pathways, in which each domain can self-tie independently at some stage of the process. Optical tweezers (OT) experiments show that this process is also reversible, although the stretched state remains knotted. In addition, we observed higher thermal and mechanical stability in Tm1570 compared with TrmD, which is partly attributable to the position of the knot core. Overall, our results suggest that double-knotted protein from the SPOUT family can only partially self-fold, and that full knotting may require the assistance of a chaperone.

biophysics↗

One-Pot Dual Protein Labelling for Simultaneous Mechanical and Fluorescent Readouts in Optical Tweezers

Optical tweezers are widely used in the study of biological macromolecules but are limited by their one-directional probing capability, potentially missing critical conformational changes. Combining fluorescence microscopy with optical tweezers, employing Forster resonance energy transfer (FRET) pairs, addresses this issue. Moreover, attaching one FRET probe to a tethered protein and the other to a protein in solution allows precise localisation of interaction sites, while probing mechanical properties. When integrating fluorescence microscopy with optical tweezers, orthogonal protein conjugation methods are needed to enable simultaneous, site-specific attachment of fluorophores and DNA handles, commonly used to apply force to molecules of interest. In this study, we utilized commercially available reagents for dual site-specific labelling of the homodimeric heat shock protein 90 (Hsp90) using thiol-maleimide and inverse electron demand Diels-Alder cycloaddition (IEDDAC) bioorthogonal reactions. In a one-pot approach, Hsp90 modified with a cysteine mutation and the non-canonical amino acid cyclopropene-L-lysine (CpK) was labelled with the FRET pair maleimide-Atto550 and maleimide-Atto647N, alongside single- stranded methyltetrazine-modified DNA oligonucleotide. Optical tweezers experiments with this labelled Hsp90 construct revealed structural transitions consistent with previous studies, validating the approach. Fluorescence measurements confirmed the proximity of FRET pairs in the N-terminally closed state of Hsp90 in this experimental setup. This integrative method provides a powerful tool for probing protein conformational dynamics and protein interactions beyond the limitations of traditional optical tweezers. StatementThe developed method combines fluorescence microscopy with optical tweezers, enhancing single-molecule protein studies by overcoming the limitations of one- directional mechanical probing. Utilizing two orthogonal protein conjugation methods for one-pot dual labelling, the heat shock protein 90 was labelled with a FRET pair and single-stranded DNA oligonucleotides. Validated by comparison with published conformational changes, mechanical unfolding signatures, and FRET pair distances, this approach provides a powerful tool to explore single-molecule conformational dynamics and protein interactions.

biophysics↗