6QFA image
Entry Detail
PDB ID:
6QFA
EMDB ID:
Title:
CryoEM structure of a beta3K279T GABA(A)R homomer in complex with histamine and megabody Mb25
Biological Source:
PDB Version:
Deposition Date:
2019-01-09
Release Date:
2021-08-04
Method Details:
Experimental Method:
Resolution:
2.49 Å
Aggregation State:
PARTICLE
Reconstruction Method:
SINGLE PARTICLE
Macromolecular Entities
Polymer Type:polypeptide(L)
Description:Gamma-aminobutyric acid receptor subunit beta-3,Gamma-aminobutyric acid receptor subunit beta-3
Mutations:K279T
Chain IDs:A (auth: B), G (auth: C), H (auth: D), I (auth: E), J (auth: A)
Chain Length:341
Number of Molecules:5
Biological Source:Homo sapiens
Polymer Type:polypeptide(L)
Description:Outer membrane protein,Outer membrane protein,Outer membrane protein,Outer membrane protein,Uncharacterized protein,Uncharacterized protein,Mb-c7HopQ-Nb25
Chain IDs:B (auth: K), C (auth: O), D (auth: N), E (auth: M), F (auth: L)
Chain Length:522
Number of Molecules:5
Biological Source:Helicobacter pylori (strain G27), Lama glama
Primary Citation
Megabodies expand the nanobody toolkit for protein structure determination by single-particle cryo-EM.
Nat.Methods 18 60 68 (2021)
PMID: 33408403 DOI: 10.1038/s41592-020-01001-6

Abstact

Nanobodies are popular and versatile tools for structural biology. They have a compact single immunoglobulin domain organization, bind target proteins with high affinities while reducing their conformational heterogeneity and stabilize multi-protein complexes. Here we demonstrate that engineered nanobodies can also help overcome two major obstacles that limit the resolution of single-particle cryo-electron microscopy reconstructions: particle size and preferential orientation at the water-air interfaces. We have developed and characterized constructs, termed megabodies, by grafting nanobodies onto selected protein scaffolds to increase their molecular weight while retaining the full antigen-binding specificity and affinity. We show that the megabody design principles are applicable to different scaffold proteins and recognition domains of compatible geometries and are amenable for efficient selection from yeast display libraries. Moreover, we demonstrate that megabodies can be used to obtain three-dimensional reconstructions for membrane proteins that suffer from severe preferential orientation or are otherwise too small to allow accurate particle alignment.

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