6E9X image
Entry Detail
PDB ID:
6E9X
EMDB ID:
Keywords:
Title:
DHF91 filament
Biological Source:
Source Organism:
Host Organism:
PDB Version:
Deposition Date:
2018-08-01
Release Date:
2018-11-21
Method Details:
Experimental Method:
Resolution:
7.80 Å
Aggregation State:
FILAMENT
Reconstruction Method:
HELICAL
Macromolecular Entities
Polymer Type:polypeptide(L)
Description:DHF91 filament
Chain IDs:A (auth: C), B (auth: A), C (auth: B), D (auth: P), E (auth: D), F (auth: J), G (auth: Q), H (auth: E), I (auth: K), J (auth: R), K (auth: F), L, M (auth: S), N (auth: G), O (auth: M), P (auth: T), Q (auth: H), R (auth: N), S (auth: U), T (auth: I), U (auth: O)
Chain Length:168
Number of Molecules:21
Biological Source:synthetic construct
Ligand Molecules
Primary Citation

Abstact

We describe a general computational approach to designing self-assembling helical filaments from monomeric proteins and use this approach to design proteins that assemble into micrometer-scale filaments with a wide range of geometries in vivo and in vitro. Cryo-electron microscopy structures of six designs are close to the computational design models. The filament building blocks are idealized repeat proteins, and thus the diameter of the filaments can be systematically tuned by varying the number of repeat units. The assembly and disassembly of the filaments can be controlled by engineered anchor and capping units built from monomers lacking one of the interaction surfaces. The ability to generate dynamic, highly ordered structures that span micrometers from protein monomers opens up possibilities for the fabrication of new multiscale metamaterials.

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Primary Citation of related structures