Summary for 28XH
| Entry DOI | 10.2210/pdb28xh/pdb |
| EMDB information | 56939 |
| Descriptor | nanofibril peptide (RVKVSQINM) (1 entity in total) |
| Functional Keywords | nanofibrils, synthetic peptide, peptide origami, structural protein |
| Biological source | synthetic construct |
| Total number of polymer chains | 96 |
| Total formula weight | 103326.05 |
| Authors | Stoyanov, N.,Schmidt, M.,Faendrich, M. (deposition date: 2026-02-26, release date: 2026-09-30, Last modification date: 2026-10-07) |
| Primary citation | Gacanin, J.,Mazzotta, F.,Baptista, L.A.,Stoyanov, N.,Schmidt, M.,Alleva, N.,Thummaraj, T.,Bonnicel, F.,Zhou, C.,Gao, L.,Munch, J.,Bonn, M.,Fandrich, M.,Lieberwirth, I.,Cortes-Huerto, R.,Landfester, K.,Weil, T. Sequence-encoded hexagonal lattices in multichannel peptide nanofibrils. Nature, 657:935-943, 2026 Cited by PubMed Abstract: Structural complexity in biological matter arises from molecular information that encodes supramolecular assembly across length scales. Here we show that minimal nine-residue peptides can encode discrete lateral interaction motifs that direct supramolecular organization. These motifs generate hexagonal pores and hierarchically tile into multichannel nanofibrils with defined topology. Sequence-encoded amphiphilicity combines a cross-β-dimer, an inversion point and a trimeric junction to create complementary interfaces that couple lateral growth to axial stacking, yielding honeycomb lattices with continuous approximately 5-nm solvent-accessible nanochannels. Cryo-electron microscopy resolves the supramolecular architecture and shows that lattice symmetry and pore geometry are preserved across variants. Systematic perturbations establish sequence-structure rules linking residue position to supramolecular symmetry, lattice propagation and channel topology. Molecular dynamics simulations and vibrational spectroscopy show that the channels remain water accessible and show sequence-tunable hydration. These findings establish that a minimal, sequence-encoded interaction hierarchy can programme long-range supramolecular order, providing a general framework for how short peptides can encode complex, symmetry-defined architectures. PubMed: 42778700DOI: 10.1038/s41586-026-11016-2 PDB entries with the same primary citation |
| Experimental method | ELECTRON MICROSCOPY (1.91 Å) |
Structure validation
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