EMD-15516
Cryo-EM Snapshots of Nanodisc-Embedded Native Eukaryotic Membrane Proteins
EMD-15516
Single-particle18.59 Å

Map released: 08/02/2023
Last modified: 08/02/2023
Sample Organism:
Thermochaetoides thermophila
Sample: SB-DIBMA solubilized Chaetomium thermophilum membranes mMW fraction
Raw data: EMPIAR-11252
Deposition Authors: Janson K
,
Kyrilis FL
,
Tueting C
,
Alfes M
,
Das M
,
Traeger TK
,
Schmidt C
,
Hamdi F
,
Keller S
,
Meister A
,
Kastritis PL
Sample: SB-DIBMA solubilized Chaetomium thermophilum membranes mMW fraction
Raw data: EMPIAR-11252
Deposition Authors: Janson K











Cryo-Electron Microscopy Snapshots of Eukaryotic Membrane Proteins in Native Lipid-Bilayer Nanodiscs.
Janson K
,
Kyrilis FL
,
Tuting C,
Alfes M
,
Das M
,
Trager TK,
Schmidt C
,
Hamdi F
,
Vargas C,
Keller S
,
Meister A
,
Kastritis PL
(2022) Biomacromolecules , 23 , 5084 - 5094









(2022) Biomacromolecules , 23 , 5084 - 5094
Abstract:
New technologies for purifying membrane-bound protein complexes in combination with cryo-electron microscopy (EM) have recently allowed the exploration of such complexes under near-native conditions. In particular, polymer-encapsulated nanodiscs enable the study of membrane proteins at high resolution while retaining protein-protein and protein-lipid interactions within a lipid bilayer. However, this powerful technology has not been exploited to address the important question of how endogenous─as opposed to overexpressed─membrane proteins are organized within a lipid environment. In this work, we demonstrate that biochemical enrichment protocols for native membrane-protein complexes from Chaetomium thermophilum in combination with polymer-based lipid-bilayer nanodiscs provide a substantial improvement in the quality of recovered endogenous membrane-protein complexes. Mass spectrometry results revealed ∼1123 proteins, while multiple 2D class averages and two 3D reconstructions from cryo-EM data furnished prominent structural signatures. This integrated methodological approach to enriching endogenous membrane-protein complexes provides unprecedented opportunities for a deeper understanding of eukaryotic membrane proteomes.
New technologies for purifying membrane-bound protein complexes in combination with cryo-electron microscopy (EM) have recently allowed the exploration of such complexes under near-native conditions. In particular, polymer-encapsulated nanodiscs enable the study of membrane proteins at high resolution while retaining protein-protein and protein-lipid interactions within a lipid bilayer. However, this powerful technology has not been exploited to address the important question of how endogenous─as opposed to overexpressed─membrane proteins are organized within a lipid environment. In this work, we demonstrate that biochemical enrichment protocols for native membrane-protein complexes from Chaetomium thermophilum in combination with polymer-based lipid-bilayer nanodiscs provide a substantial improvement in the quality of recovered endogenous membrane-protein complexes. Mass spectrometry results revealed ∼1123 proteins, while multiple 2D class averages and two 3D reconstructions from cryo-EM data furnished prominent structural signatures. This integrated methodological approach to enriching endogenous membrane-protein complexes provides unprecedented opportunities for a deeper understanding of eukaryotic membrane proteomes.