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Biology subjects

Wippermann, E.

Publications and source records attributed to Wippermann, E..

2 recordsLinked to original sources

kontakteUR: transforming coordinates to chemical intuition to focus on essential interactions in biomolecular systems

Molecular interactions govern cellular function, making them essential to discover biomolecular mechanisms by unravelling structure-function relationships. The rapid growth of AI-based prediction, experimental determination, and molecular dynamics simulations generates structural data at an unprecedented scale. However, structural information is typically represented as Cartesian coordinates, leaving chemical interactions and conformational relationships largely implicit. We introduce a high-throughput framework transforming structural geometry into a standardized, compact contact space. Moving beyond simple distance cutoffs, it provides a chemically and geometrically informed representation of various residue-residue interactions, their temporal changes, and conformations at residue-level resolution. Our contact-space representation enables systematic comparison and classification even for large-scale analysis. Case studies spanning structure comparison or studies of protein-protein, protein-ligand, protein-RNA, and antibody-antigen complexes, demonstrate how contact-space analysis reveals interaction patterns, identifies key mutation sites, and links structural features to experimental observations. With these and further applications, kontakteUR elucidates biomolecular function and assists targeted protein design, with results suited for further processing by artificial intelligence algorithms.

biochemistry↗

Mutagenesis study of a Bacteriophytochrome - insights for the development of labels for optical imaging.

Bacteriophytochromes (BphPs) find increasing interest as near-infrared (NIR) labels for imaging. Applications range from whole animal imaging to cell-to super-resolution microscopy. Here we present a comprehensive study of a BphP from Rhizobium etli (ReBphP) allowing mutant-based insights into BphP photophysics. This is complemented by QM/MM-optimized deep-learning structure predictions of ReBphP and variants in their photoswitched states, rationalizing the effects of variants. Pertaining to imaging, based on our study we identify a bright and far red-shifted BphP for imaging in mammalian cells as well as a fluorescent photoswitching BphP. Utilizing the latter, we introduce photoswitching fluorescence background suppression for in vivo whole animal fluorescence imaging achieving higher contrast over background than possible utilizing non-switching labels.

biochemistry↗