ArticleJournal of chemical information and modeling2026
Barrel Shape and Chromophore Rigidity Predict Fluorescent-Protein Photophysics.
Article in Journal of chemical information and modeling, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
The 11-stranded β-barrel of fluorescent proteins (FPs) is universally conserved, yet its quantitative geometry has not been systematically characterized. We analyzed cross-sectional barrel geometry across 908 FP crystal structures in the RCSB PDB by principal component analysis (PCA)-based axis determination and convex hull analysis of protein-atom slices at the chromophore plane; 780 structures (210-245 residues, with the chromophore-containing chain selected in FP-complex cocrystals) form the canonical analysis cohort. Barrel shape, but not size, correlates with emission wavelength: red-shifted proteins have narrower, more elliptical barrels (ρ = -0.328 for minor axis, p = 2.2 × 10-17). Fluorescence quantum yield, by contrast, is not governed by barrel size: it tracks how rigidly the barrel holds the chromophore (chromophore-to-barrel B-factor ratio, ρ = -0.49 per unique FP), together with the chromophore's ground-state planarity (ρ = -0.42) as an independent signal of comparable strength. The planarity term is most pronounced among red fluorescent proteins, which span the widest range of ground-state twist. Principal correlations survive Benjamini-Hochberg correction and partial correlation controlling for resolution. The barrel is not a passive scaffold: it constrains chromophore rigidity and thereby shapes photophysical output. The pipeline was developed with Claude (Anthropic) via Claude Code.
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