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9LQM

Crystal structure of synthetic ubiquitin variant R4 designed by ProteinMPNN

Summary for 9LQM
Entry DOI10.2210/pdb9lqm/pdb
Related9LQK
Descriptorubiquitin variant R4, SULFATE ION (3 entities in total)
Functional Keywordsubiquitin variant, proteinmpnn, rsp5, de novo protein
Biological sourcesynthetic construct
Total number of polymer chains2
Total formula weight23908.72
Authors
Lu, W.-L.,Ko, T.-P.,Wu, K.-P. (deposition date: 2025-01-28, release date: 2025-02-12, Last modification date: 2026-03-11)
Primary citationChen, L.Y.,Lu, W.L.,Pathania, T.,Chu, I.H.,Ho, M.R.,Chuang, W.C.,Lou, Y.C.,Hung, T.I.,Miyanoiri, Y.,Chang, C.A.,Wu, K.P.
Mesostructured Water Enhances Stability of ProteinMPNN-Designed Ubiquitin-Fold Proteins.
J.Am.Chem.Soc., 148:7363-7377, 2026
Cited by
PubMed Abstract: AI-designed protein variants have demonstrated remarkable resistance to heat and chemical stress, yet the molecular mechanisms underlying this stability remain unclear. Here, we present a comprehensive biophysical and nuclear magnetic resonance (NMR) analysis of thermally stable ubiquitin and its ProteinMPNN-designed variants, R4 and R10, together with a second system based on the less stable ISG15 C-terminal domain (ISG15-CTD). Both R4/R10 and ProteinMPNN-designed ISG15-CTD variants (ICVs) exhibit extraordinary thermostability beyond 120 °C, and resist extreme denaturation at pH 3.0 in 8 M urea. NMR relaxation and hydrogen-deuterium exchange, and molecular-dynamics simulations reveal a protective mesostructured hydration shell that strengthens the hydrogen bonding network between protein-bound and bulk water, thereby suppressing unfolding. Sequence and electrostatic analyses indicate that this hydration arises from charge enrichment and clustering on the protein surface. These findings identify mesostructured hydration as a general, sequence-encoded mechanism of ProteinMPNN-driven stability and provide a physical framework for designing highly resilient biomolecules.
PubMed: 41643123
DOI: 10.1021/jacs.5c19875
PDB entries with the same primary citation
Experimental method
X-RAY DIFFRACTION (1.39 Å)
Structure validation

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