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Honc, O.

Publications and source records attributed to Honc, O..

2 recordsLinked to original sources

A chemically reactive and Raman-active non-canonical amino acid reveals photocycle complexity in a blue-light receptor

Photosensory protein function spans multiple time and length scales, demanding integrative approaches. We introduce 4-diacetylenyl-phenylalanine (DAF), a dual-purpose non-canonical amino acid (ncAA) that enables both chemical control and spectroscopic readout of photoreceptor dynamics. Genetically encoded in E. coli, DAF combines a reactive diyne for bioorthogonal ligations (thiols, azides, tetrazines) with a strong, solvatochromic Raman signal in the cell-silent region. Applied to the light-oxygen-voltage (LOV) transcription factor EL222, DAF enables multifaceted interrogation of its photocycle. We engineer a covalently cross-linked variant that suppresses light-driven conformational changes and DNA binding, and generate a donor-acceptor construct for Forster resonance energy transfer (FRET) tracking of photoinduced structural dynamics. Time-resolved stimulated Raman spectroscopy following flavin mononucleotide (FMN) excitation reveals additional processes -from vibrational energy transfer to local unfolding-spanning femtoseconds to milliseconds. DAF thus constitutes a versatile tool to resolve protein dynamics with high spatiotemporal resolution.

biochemistry↗

High-throughput selection of human de novo-emerged sORFs with high folding potential

De novo genes emerge from previously non-coding stretches of the genome. Their en-coded de novo proteins are generally expected to be similar to random sequences and, accordingly, with no stable tertiary fold and high predicted disorder. However, structural properties of de novo proteins and whether they differ during the stages of emergence and fixation have not been studied in depth and rely heavily on predictions. Here we generated a library of short human putative de novo proteins of varying lengths and ages and sorted the candidates according to their structural compactness and disorder propensity. Using Forster resonance energy transfer (FRET) combined with Fluorescence-activated cell sorting (FACS) we were able to screen the library for most compact protein structures, as well as most elongated and flexible structures. Compact de novo proteins are on average slightly shorter and contain lower predicted disorder than less compact ones. The predicted structures for most and least compact de novo proteins correspond to expectations in that they contain more secondary structure content or higher disorder content, respectively. Our experiments indicate that older de novo proteins have higher compactness and structural propensity compared to young ones. We discuss possible evolutionary scenarios and their implications underlying the age-dependencies of compactness and structural content of putative de novo proteins.

evolutionary biology↗