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Biology subjects

Numoto, N.

Publications and source records attributed to Numoto, N..

2 recordsLinked to original sources

Intrinsically Dominant Conformational Diversity in PDZ1 within the Tandem PDZ1-PDZ2 of Human Syntenin-1 Underlined by Crystal Structures.

The intrinsic dynamic asymmetry between homologous PDZ domains in multidomain scaffold proteins offers critical insights into evolutionary mechanisms enabling multivalent partner recognition. Through systematic X-ray crystallographic analysis of human syntenin-1s PDZ1-PDZ2 tandem, we resolve nine high-resolution structures that uncover fundamental differences in conformational plasticity between these sequentially similar domains. Pairwise root-mean-squared deviation (RMSD) analysis of 20 PDZ1 structures across multiple crystal forms reveals substantial structural variability concentrated in the Lys119-Ile125 and Ala181-Glu184 loops - key regions governing ligand specificity within PDZ1s binding cleft. In stark contrast, PDZ2 maintains remarkable structural conservation across all crystallographic environments, indicating divergent evolutionary constraints on these tandem domains. Crucially, comparative analysis of isotropic B-factors demonstrates their inadequacy in capturing the full scope of conformational heterogeneity, emphasizing the necessity of multi-structure comparisons for mapping dynamic landscapes. Molecular dynamics (MD) simulations implemented through GROMACS corroborate these crystallographic observations, showing elevated residue-specific fluctuation (RMSF) values in PDZ1s ligand-binding interface compared to analogous PDZ2 regions. This consistency across experimental and computational approaches confirms that PDZ1s conformational diversity represents an inherent biophysical property rather than crystallographic artifact. The observed dynamic asymmetry suggests a functional division of labor: PDZ1s structural plasticity enables broad ligand recognition via conformational selection mechanisms, while PDZ2s rigid architecture likely stabilizes the tandem domain arrangement. These findings provide an atomic-level rationale for syntenin-1s pleiotropic roles in cellular signaling and establish a structural blueprint for developing domain-selective therapeutics. Given syntenin-1s clinical relevance in cancer metastasis, viral pathogenesis, and neurodevelopmental disorders, our work advances strategies for selectively modulating PDZ1-mediated interactions while preserving PDZ2s scaffolding functions through structure-guided inhibitor design. Highlights{lozenge} Crystal structures of human Syntenin-1s PDZ1-PDZ2 tandem reveal intrinsic conformational plasticity in PDZ1, particularly in ligand-binding loops, contrasting with PDZ2s rigid architecture {lozenge}Pairwise RMSD analysis of 20 PDZ1 structures demonstrates substantial structural variability in the Lys119-Ile125 and Ala181-Glu184 loops, key regions governing ligand specificity {lozenge}Molecular dynamics simulations confirm that PDZ1s conformational diversity is an inherent biophysical property, not a crystallographic artifact {lozenge}The asymmetric dynamics between PDZ1 and PDZ2 suggest a functional division: PDZ1s plasticity enables broad ligand recognition while PDZ2 stabilizes the tandem arrangement {lozenge}These findings provide a structural basis for developing domain-selective Syntenin-1 inhibitors with potential applications in cancer metastasis, viral pathogenesis, and neurodevelopmental disorders

biophysics↗

Improvement of thermostability and activity of PET-degrading enzyme Cut190 towards a detailed understanding and application of the enzymatic reaction mechanism

Enzymes capable of hydrolyzing polyethylene terephthalate (PET) and other plastics are attractive catalysts for application to the recycling of plastic waste due to their generally low environmental impact. Cut190 is a cutinase from a thermophilic actinomycete and shows PET-degrading activity and high thermal stability. We developed a series of Cut190 mutants exhibiting further improvements in thermal stability and activity, and showed that the unique stabilization and activation mechanism was dependent on Ca2+ ions. Two of these mutants, Cut190** and Cut190*SS, differed from the previous mutant Cut190* by deletion of the three C-terminal residues and introduction of five substitutions, including two cysteines forming a disulfide-bond, respectively. These mutants exhibit higher thermal stability and activity, which are often mutually exclusive characteristics. Crystallographic studies of these mutants and their inactivated derivatives demonstrated that they could have a novel ejecting form that would be responsible for releasing products. We also determined the crystal structures of ligand-bound complexes, which revealed the molecular mechanisms of the aromatic-ring recognition and the tetrahedral intermediate during the substrate cleaving, although the ligands had no aromatic ring but a cyclic group. This structural information provides insights into the mechanism of the Ca2+ -dependent PET-cleaving activity of Cut190 and provides a useful basis for further mutant design and computational studies.

biochemistry↗